WO2001017040A1 - A solvent annealing process for forming a thin semiconductor film with advantageous properties - Google Patents

A solvent annealing process for forming a thin semiconductor film with advantageous properties Download PDF

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Publication number
WO2001017040A1
WO2001017040A1 PCT/US2000/023895 US0023895W WO0117040A1 WO 2001017040 A1 WO2001017040 A1 WO 2001017040A1 US 0023895 W US0023895 W US 0023895W WO 0117040 A1 WO0117040 A1 WO 0117040A1
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Prior art keywords
solvent
substrate
semiconductor film
organic semiconductor
vapor
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PCT/US2000/023895
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French (fr)
Inventor
Karl Amundson
Jianna Wang
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E Ink Corporation
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Priority to AU70944/00A priority Critical patent/AU7094400A/en
Publication of WO2001017040A1 publication Critical patent/WO2001017040A1/en

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    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10KORGANIC ELECTRIC SOLID-STATE DEVICES
    • H10K10/00Organic devices specially adapted for rectifying, amplifying, oscillating or switching; Organic capacitors or resistors having a potential-jump barrier or a surface barrier
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10KORGANIC ELECTRIC SOLID-STATE DEVICES
    • H10K10/00Organic devices specially adapted for rectifying, amplifying, oscillating or switching; Organic capacitors or resistors having a potential-jump barrier or a surface barrier
    • H10K10/40Organic transistors
    • H10K10/46Field-effect transistors, e.g. organic thin-film transistors [OTFT]
    • H10K10/462Insulated gate field-effect transistors [IGFETs]
    • H10K10/464Lateral top-gate IGFETs comprising only a single gate
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10KORGANIC ELECTRIC SOLID-STATE DEVICES
    • H10K10/00Organic devices specially adapted for rectifying, amplifying, oscillating or switching; Organic capacitors or resistors having a potential-jump barrier or a surface barrier
    • H10K10/40Organic transistors
    • H10K10/46Field-effect transistors, e.g. organic thin-film transistors [OTFT]
    • H10K10/462Insulated gate field-effect transistors [IGFETs]
    • H10K10/466Lateral bottom-gate IGFETs comprising only a single gate
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10KORGANIC ELECTRIC SOLID-STATE DEVICES
    • H10K19/00Integrated devices, or assemblies of multiple devices, comprising at least one organic element specially adapted for rectifying, amplifying, oscillating or switching, covered by group H10K10/00
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10KORGANIC ELECTRIC SOLID-STATE DEVICES
    • H10K71/00Manufacture or treatment specially adapted for the organic devices covered by this subclass
    • H10K71/10Deposition of organic active material
    • H10K71/12Deposition of organic active material using liquid deposition, e.g. spin coating
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10KORGANIC ELECTRIC SOLID-STATE DEVICES
    • H10K71/00Manufacture or treatment specially adapted for the organic devices covered by this subclass
    • H10K71/10Deposition of organic active material
    • H10K71/12Deposition of organic active material using liquid deposition, e.g. spin coating
    • H10K71/13Deposition of organic active material using liquid deposition, e.g. spin coating using printing techniques, e.g. ink-jet printing or screen printing
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10KORGANIC ELECTRIC SOLID-STATE DEVICES
    • H10K71/00Manufacture or treatment specially adapted for the organic devices covered by this subclass
    • H10K71/30Doping active layers, e.g. electron transporting layers
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10KORGANIC ELECTRIC SOLID-STATE DEVICES
    • H10K71/00Manufacture or treatment specially adapted for the organic devices covered by this subclass
    • H10K71/40Thermal treatment, e.g. annealing in the presence of a solvent vapour
    • H10K71/441Thermal treatment, e.g. annealing in the presence of a solvent vapour in the presence of solvent vapors, e.g. solvent vapour annealing
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10KORGANIC ELECTRIC SOLID-STATE DEVICES
    • H10K85/00Organic materials used in the body or electrodes of devices covered by this subclass
    • H10K85/10Organic polymers or oligomers
    • H10K85/111Organic polymers or oligomers comprising aromatic, heteroaromatic, or aryl chains, e.g. polyaniline, polyphenylene or polyphenylene vinylene
    • H10K85/113Heteroaromatic compounds comprising sulfur or selene, e.g. polythiophene
    • HELECTRICITY
    • H10SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
    • H10KORGANIC ELECTRIC SOLID-STATE DEVICES
    • H10K85/00Organic materials used in the body or electrodes of devices covered by this subclass
    • H10K85/60Organic compounds having low molecular weight
    • H10K85/615Polycyclic condensed aromatic hydrocarbons, e.g. anthracene
    • H10K85/621Aromatic anhydride or imide compounds, e.g. perylene tetra-carboxylic dianhydride or perylene tetracarboxylic di-imide

Definitions

  • the invention relates generally to manufacturing of semiconductor devices and more particularly to the manufacture of patterned organic layers in organic material-based electronic devices.
  • Thin films of organic semiconductor material can be used in the construction of thin-film transistors (TFT).
  • Performance of organic TFT's characterized by parameters such as the field effect mobility and threshold voltage, depends in part upon the molecular structure of the semiconductor film. Factors such as interfacial structure, the degree of molecular order and crystalline orientation of the thin film affect film properties.
  • Ordering of the semiconductor depends in turn on how the thin film is deposited. It is generally believed that increasing the amount of molecular order - by increasing crystal size, reducing the density of crystalline defects, or improving short-range molecular order - permits charge carriers, i.e. electrons or holes, to more efficiently move between molecules. This can increase the field effect mobility.
  • a solvent cast film that is permitted to slowly dry often exhibits a relatively high field effect mobility when incorporated into an OTFT.
  • some deposition techniques that are more amenable to manufacturing do not readily permit slow evaporation of solvent.
  • spin coating can yield relatively uniform thin films, the solvent usually leaves the film relatively quickly, generally leading to a low degree of crystal order.
  • Field-effect mobility for example, can be a factor of about 10 to 100 smaller than for cast films.
  • Other manufacturing processes such as screen printing or various thin-film coating methods may yield desirable film morphology, but not desirable molecular order.
  • the invention relates to the manufacture of displays that utilize arrays of OTFT's.
  • the invention is of particular use in the production of displays with an electrophoretic display medium and mitigates the problem of poor quality organic layers obtained by lower cost manufacturing processes.
  • the invention permits manufacturing of higher quality organic semiconductor layers while still utilizing lower cost organic film deposition methods.
  • the film is annealed under the influence of a vapor derived from a solvent.
  • the solvent is chosen for its ability to assist molecular rearrangement after diffusing into the organic semiconductor film.
  • Annealing conditions are selected to provide molecular rearrangement that improves electrical properties while avoiding conditions that damage the film.
  • Annealing conditions in some embodiments are determined by systematically varying the solvent temperature, the organic semiconductor film temperature, and the annealing time until an appropriate level of improvement in electrical properties is obtained.
  • a substrate is formed by depositing an organic semiconductor film via a lower cost method such as printing or spin coating on a support substrate.
  • a portion of a solvent is vaporized to bring the vapor into contact with the film.
  • the chemical potential of the vapor molecules is controlled to provide an interaction with the organic semiconductor film to alter the molecular arrangement of the film.
  • Some embodiments further entail placing the substrate on a first temperature controlled stage and placing the solvent on a second temperature controlled stage.
  • the chemical potential of the vapor is adjusted by controlling the temperature of the solvent. Appropriate annealing conditions are obtained by adjusting the temperature of the solvent, the substrate, and the anneal time. This process can assist manufacturing of lower cost displays that utilize arrays of organic thin-film transistors.
  • Figure 1 shows a cross-sectional view of a substrate undergoing annealing.
  • Figure 2 shows a cross-sectional view of an embodiment of a chamber for annealing of substrates.
  • Figure 3 shows a cross-sectional view of an embodiment of a device having multiple chambers for annealing of substrates.
  • Figure 4 shows a cross-sectional view of an embodiment of an electronic device at an intermediate stage of fabrication.
  • Solvent annealing is here understood to mean the subjecting of a material to the influence of a solvent for a period of time with the goal of a desirable change in the material.
  • a substrate 110 comprising an organic semiconductor film 111 is provided.
  • provision of the substrate 110 comprises depositing the organic semiconductor film 111 on a support substrate 112.
  • the organic semiconductor film 111 is one which has utility in fabrication of electronic devices, for example, organic thin-film transistors (OTFT).
  • One such organic semiconductor film 111 is comprised of poly(alkylthiophene).
  • Other possible organic semiconductor films 111 include solution processable dihexyl-alfa- sexithiophene, dihexyl-quinquethiophene, and alkyl or fluoroalkyl substituted naphthalenetetracarboxylic diimides.
  • the organic semiconductor film 111 is printed.
  • printing includes all forms of printing and coating, including, but not limited to, pre-metered coatings such as patch die coating, slot or extrusion coating, slide or cascade coating, and curtain coating: roll coating such as knife over roll coating, forward and reverse roll coating, gravure coating, dip coating, spray coating, meniscus coating, spin coating, brush coating, air knife coating, silk screen printing processes, electrostatic printing processes, thermal printing processes, ink jet printing processes and other similar techniques.
  • roll coating such as knife over roll coating, forward and reverse roll coating, gravure coating, dip coating, spray coating, meniscus coating, spin coating, brush coating, air knife coating, silk screen printing processes, electrostatic printing processes, thermal printing processes, ink jet printing processes and other similar techniques.
  • This will typically produce a film with relatively poor molecular ordering and, consequently, relatively poor electrical properties.
  • the organic semiconductor film 1 11 is next subjected to a solvent vapor 120.
  • the solvent vapor may be obtained by vaporizing a portion of liquid solvent (not shown in Fig. 1).
  • solvent when used alone is understood to refer to the liquid phase of the solvent while “vapor” is understood to refer to the gas phase of the solvent.
  • the vapor molecules diffuse into the organic semiconductor film 111.
  • An appropriate solvent is chosen such that the solvent is capable of causing desirable molecular rearrangement in the particular organic semiconductor film 111.
  • the organic semiconductor film 111 comprises poly(alkylthiophene)
  • an appropriate solvent is selected from the group comprising toluene, chloroform, and xylene.
  • the presence of solvent in the organic semiconductor film 111 contributes to a desirable, relatively local, rearrangement of the molecular structure of a relatively poor, as-deposited organic semiconductor film 111.
  • optimum annealing conditions are determined empirically. For example, for a particular organic semiconductor film 111 and solvent pair, substrate temperature, vapor 120 chemical potential, and annealing time are systematically varied, using samples of the particular organic semiconductor film 111. Electrical measurements are made on the samples and an optimum or preferable annealing condition is determined. In an alternative embodiment, a production organic semiconductor film 111 is electrically monitored during annealing. When a desired level of improvement in electrical properties is attained, the annealing treatment is ended.
  • Varying the chemical potential of the vapor 120 will typically vary the density of solvent molecules in the organic semiconductor film 111. In some embodiments, the combination of varying the chemical potential of the vapor 120 and selecting an appropriate annealing time can suffice to provide a preferable annealing condition. In other embodiments, varying the temperature of the organic semiconductor film 111 is also useful in obtaining desirable molecular rearrangements and a preferable annealing condition.
  • solvents with an appreciable vapor pressure relative to other solvents are considered for use during annealing.
  • the chemical potential must be high enough so that sufficient solvent molecules enter the organic semiconductor film 111 to enable desirable molecular rearrangements.
  • the chemical potential must not be so high as to lead to undesirable molecular rearrangements, for example, gross disordering.
  • too high a chemical potential can also lead to de wetting of the organic semiconductor film 111.
  • the chemical potential of the vapor 120 is controlled by selecting a solvent temperature in a range of about 0°C to about 50°C.
  • the organic semiconductor film 111 temperature is in a range of about 80°C to about 150°C. In another embodiment, the temperature difference between the organic semiconductor film 111 and the solvent is kept substantially small, for example not more
  • annealing conditions are selected to
  • a chamber 210 is provided as an enclosure for the annealing of the organic semiconductor film 111.
  • the chamber 210 is sufficiently sealed to prevent undesirable leakage of vapor 120 or other gases.
  • the chamber further comprises a gas outlet 215 for removal of gases from the chamber 210 and a gas inlet 216 for admission of gases to the chamber.
  • the outlet 215 and the inlet 216 can each comprise a valve.
  • the outlet 215 and the inlet 216 are provided by a single port in the chamber 210.
  • the embodiment illustrated by Figure 2 further comprises a first stage 221 on which resides the organic semiconductor film 111 and a second stage 222 on which resides a reservoir 240, for example a beaker, for holding solvent 240.
  • the stages 221, 222 in preferred embodiments are each provided with heating or cooling means for control of the temperatures of the organic semiconductor film 11 1 and the solvent 240.
  • Means for distributing vapor 120 within the chamber 210 (not shown), for example, via use of a fan, can be utilized.
  • a portion of the walls of the chamber 210 is cooled or heated to control the temperature of the vapor 120.
  • the solvent 240 resides outside the chamber 210 and the vapor 120 diffuses or is pumped into the chamber 210.
  • the chamber 210 provides for confinement of vapor 120 during the annealing process. Since the vapor 120 is typically flammable, safety precautions are desirable during annealing processing. Purging of air via outlet 215 prior to annealing can reduce the mixing of oxygen with the vapor 120.
  • the chamber can be evacuated followed by admission of an inert gas, for example nitrogen or argon, via the inlet 216. During annealing, the mixture of the vapor 120 with an inert gas can reduce the chance of fire or explosion occurring within the chamber.
  • an inert gas for example nitrogen or argon
  • the chamber 120 preferably is sufficiently gas tight so that flammable mixtures of air and vapor 120 do not form outside the chamber 120. Risk of sparking from electrical devices, for example from some types of heating means, can be minimized to further improve safety.
  • the chamber 210 can be purged of vapor 120 via the outlet 215 to avoid release of flammable vapor 120 into the air in the vicinity of the chamber 210. Avoidance of glass materials in the construction of the chamber 210 and use of explosion guards can further improve safety.
  • the organic semiconductor film 11 1 will typically emit vapor 120 for a period of time.
  • this period of time can be allowed to lapse with the organic semiconductor film 111 still residing within the chamber 210. In some embodiments, this period of time can be accommodated by placing the organic semiconductor film 111 in a drying chamber (not shown).
  • the organic semiconductor film 111 is heated while in the drying chamber to reduce the period of time that vapor 120 is emitted by the organic semiconductor film 111.
  • the drying temperature is below the boiling point of the solvent at the pressure to which it is exposed.
  • a solvent 240 can first be selected from those known to potentially swell or dissolve the organic semiconductor film 111 to be annealed. This characteristic is typically indicative of a solvent's ability to promote molecular rearrangements in the organic semiconductor film 111.
  • the solvent 240 is preferably chosen from those not damaging to other materials comprised by the substrate 110.
  • test anneals can be conducted for various temperatures of the solvent 240 and the organic semiconductor film 111 for varying anneal times.
  • Systematic variation of parameters is preferred to derive appropriate annealing conditions in an efficient manner.
  • one begins with relatively low solvent 240 temperatures and anneal times so that the same sample of the organic semiconductor film 111 can be retested until a regime of appropriate annealing conditions is found. This approach can reduce waste of sample material used for determination of annealing conditions.
  • a multiple chamber apparatus 300 for higher throughput annealing comprises a first chamber 305 for preloading of substrates 110, a second chamber 310 for annealing, and a third chamber 315 for drying or removal of the substrate 110.
  • the first chamber 305 can be a loadlock.
  • the organic semiconductor film 111 can be sealed in the first chamber.
  • the first chamber 305 is then evacuated and an inert gas is admitted to the first chamber 305 to match the level of inert gas in the second chamber 310.
  • the substrate 110 can be heated while in the first chamber 305.
  • the organic semiconductor film 111 is then transported to a first stage 321 in the second chamber and the second chamber 321 is sealed. Annealing conditions can then be applied to the organic semiconductor film 111.
  • the organic semiconductor film 111 can be transferred to the third chamber 315 for removal from the multiple chamber apparatus 300 or to allow for removal of solvent from the organic semiconductor film 111.
  • Heat can be applied to the organic semiconductor film 111 while in the third chamber 315 for this purpose.
  • Matching of inert gas type and level can be used, as for transfers from the first chamber 305 to the second chamber 310, when transferring the organic semiconductor film 111 from the second chamber 310 to the third chamber 315.
  • solvent 240 temperature can be maintained during transfer of wafers without substantial release of vapor 120 into the surrounding air.
  • the first chamber 305 is sealed from the second chamber 310 and evacuated to remove vapor 120 prior to opening of the first chamber 305 to room air for placement of another organic semiconductor film 111 for processing.
  • FIG. 1 An apparatus with greater numbers of chambers can be employed.
  • Turntables or conveyor belt systems can be employed to anneal more than one organic semiconductor film 11 1 at one time.
  • More than one organic semiconductor film 111 can be stacked vertically or horizontally as further alternatives to permit processing of more than one organic semiconductor film 111 at one time.
  • OTFT organic thin-film transistors
  • arrays of OTFTs are produced as one stage in the production of display devices.
  • Lower cost and higher quality organic semiconductor films 111 can be produced to aid in the manufacture of larger and lower cost displays.
  • a further embodiment incorporates a mask 113 to delineate annealed and unannealed regions on the organic semiconductor film 111.
  • the mask material is a barrier to the solvent 140 and is applied to the organic semiconductor film 1 11 prior to annealing.
  • the mask is designed to admit vapor 120 to regions of the organic semiconductor film 111 where OTFTs will be formed while excluding vapor 120 from regions of organic semiconductor film 111 that lie between the OTFT locations. In this way, regions of the organic semiconductor film 111 that separate OTFTs can be produced with poorer conductivity than possessed by regions from which OTFTs are formed. In this manner, leakage currents between neighboring OTFTs can be reduced.
  • the above described method is of use in the manufacture of electrophoretic displays, in particular for application in the fabrication of active matrix addressing logic comprising an OTFT array.
  • a display manufactured with relatively high quality OTFT's and a microencapsulated electrophoretic display medium has the advantages of large size potential, relatively low cost manufacturing, and a resulting thin, flexible, low-power consumption display.
  • a detailed description of methods and materials of relevance to the manufacture of electrophoretic displays follows.
  • an encapsulated electrophoretic display assembly is manufactured with use of printing or coating steps on a wide variety of flexible substrates.
  • printing herein includes all forms of printing and coating, including, but not limited to, pre-metered coatings such as patch die coating, slot or extrusion coating, slide or cascade coating, and curtain coating: roll coating such as knife over roll coating, forward and reverse roll coating, gravure coating, dip coating, spray coating, meniscus coating, spin coating, brush coating, air knife coating, silk screen printing processes, electrostatic printing processes, thermal printing processes, and other similar techniques.
  • pre-metered coatings such as patch die coating, slot or extrusion coating, slide or cascade coating, and curtain coating: roll coating such as knife over roll coating, forward and reverse roll coating, gravure coating, dip coating, spray coating, meniscus coating, spin coating, brush coating, air knife coating, silk screen printing processes, electrostatic printing processes, thermal printing processes, and other similar techniques.
  • a rear conductor (“rear” referring to a side of a display that is opposite to that viewed by a user) can be ether opaque or transparent. This allows the use of a variety of printed rear conductors, including graphite inks, silver inks, or conductive polymers.
  • the front conductor ("front” referring to a side of a display that is viewed by a user) must be transparent, but need not have excellent conductivity. Even materials with relatively poor conductivity, though amenable to printing, can be employed, for example conductive colloidal suspensions and conductive polymers such as are commonly used in anti-static applications.
  • a microencapsulated electrophoretic medium unlike a liquid crystal medium, is amendable to use with a wide number of intrinsically conductive polymer systems, including derivatives of polyaniline, polypyrrole, polythiophene, and polyphenylenevinylene.
  • the present invention permits a more advantageous use of cost savings allowed by use of printing methods for formation of conducting materials in a display assembly.
  • the following describes in detail various embodiments of materials with applications to the electrophoretic display medium.
  • a particle is any component that is charged or capable of acquiring a charge (i.e., has or is capable of acquiring electrophoretic mobility), and, in some cases, this mobility may be zero or close to zero (i.e., the particles will not move).
  • the particles may be neat pigments, dyed (laked) pigments or pigment/polymer composites, or any other component that is charged or capable of acquiring a charge.
  • Typical considerations for the electrophoretic particle are its optical properties, electrical properties, and surface chemistry.
  • the particles may be organic or inorganic compounds, and they may either absorb light or scatter light.
  • the particles for use in the invention may further include scattering pigments, absorbing pigments and luminescent particles.
  • the particles may be retroreflective, such as corner cubes, or they may be electroluminescent, such as zinc sulfide particles, which emit light when excited by an AC field, or they may be photoluminescent.
  • the particles may be surface treated so as to improve charging or interaction with a charging agent, or to improve dispersibility.
  • a preferred particle for use in electrophoretic displays of the invention is Titania.
  • the titania particles may be coated with a metal oxide, such as aluminum oxide or silicon oxide, for example.
  • the titania particles may have one, two, or more layers of metal-oxide coating.
  • a titania particle for use in electrophoretic displays of the invention may have a coating of aluminum oxide and a coating of silicon oxide. The coatings may be added to the particle in any order.
  • the electrophoretic particle is usually a pigment, a polymer, a laked pigment, or some combination of the above.
  • a neat pigment can be any pigment, and, usually for a light colored particle, pigments such as, for example, rutile (titania), anatase (titania), barium sulfate, kaolin, or zinc oxide are useful. Some typical particles have high refractive indices, high scattering coefficients, and low absorption coefficients. Other particles are absorptive, such as carbon black or colored pigments used in paints and inks. The pigment should also be insoluble in the suspending fluid. Yellow pigments such as diarylide yellow, hansa yellow, and benzidin yellow have also found use in similar displays. Any other reflective material can be employed for a light colored particle, including non-pigment materials, such as metallic particles.
  • Useful neat pigments include, but are not limited to, PbCrO 4 , Cyan blue GT 55-3295 (American Cyanamid Company, Wayne, NJ), Cibacron Black BG (Ciba Company, Inc., Newport, DE), Cibacron Turquoise Blue G (Ciba), Cibalon Black BGL (Ciba), Orasol Black BRG (Ciba), Orasol Black RBL (Ciba), Acetamine Blac, CBS (E. I. du Pont de Nemours and Company, Inc., Wilmington, DE), Crocein Scarlet N Ex (du Pont) (27290), Fiber Black VF (DuPont) (30235), Luxol Fast Black L (DuPont) (Solv.
  • Indanthrene Black BBK Powd. (59850), Indocarbon CLGS Cone. CF (GAF) (53295),
  • Raven 11 Cold Carbon Company, Atlanta, GA
  • Laked pigments are particles that have a dye precipitated on them or which are stained.
  • Lakes are metal salts of readily soluble anionic dyes. These are dyes of azo, triphenylmethane or anthraquinone structure containing one or more sulphonic or carboxylic acid groupings. They are usually precipitated by a calcium, barium or aluminum salt onto a substrate. Typical examples are peacock blue lake (CI Pigment Blue 24) and Persian orange (lake of CI Acid Orange 7), Black M Toner (GAF) (a mixture of carbon black and black dye precipitated on a lake).
  • a dark particle of the dyed type may be constructed from any light absorbing material, such as carbon black, or inorganic black materials.
  • the dark material may also be selectively absorbing.
  • a dark green pigment may be used.
  • Black particles may also be formed by staining latices with metal oxides, such latex copolymers consisting of any of butadiene, styrene, isoprene, methacrylic acid, methyl methacrylate, acrylonitrile, vinyl chloride, acrylic acid, sodium styrene sulfonate, vinyl acetate, chlorostyrene, dimethylaminopropylmethacrylamide, isocyanoethyl methacrylate and N- (isobutoxymethacrylamide), and optionally including conjugated diene compounds such as diacrylate, triacrylate, dimethylacrylate and trimethacrylate.
  • Black particles may also be formed by a dispersion polymerization technique.
  • the pigments and polymers may form multiple domains within the electrophoretic particle, or be aggregates of smaller pigment/polymer combined particles.
  • a central pigment core may be surrounded by a polymer shell.
  • the pigment, polymer, or both can contain a dye.
  • the optical purpose of the particle may be to scatter light, absorb light, or both. Useful sizes may range from 1 nm up to
  • the density of the electrophoretic particle may be substantially matched to that of the suspending (i.e., electrophoretic) fluid.
  • a suspending fluid has a density that is "substantially matched" to the density of the particle if the difference in their respective densities is between about zero and about two g/ml. This difference is preferably between about zero and about 0.5 g/ml.
  • Useful polymers for the particles include, but are not limited to: polystyrene, polyethylene, polypropylene, phenolic resins, Du Pont Elvax resins (ethylene-vinyl acetate copolymers), polyesters, polyacrylates, polymethacrylates, ethylene acrylic acid or methacrylic acid copolymers (Nucrel Resins - DuPont, Primacor Resins- Dow Chemical), acrylic copolymers and terpolymers (Elvacite Resins, DuPont) and PMMA.
  • Useful materials for homopolymer / pigment phase separation in high shear melt include, but are not limited to, polyethylene, polypropylene, polymethylmethacrylate, polyisobutylmethacrylate, polystyrene, polybutadiene, polyisoprene, polyisobutylene, polylauryl methacrylate, polystearyl methacrylate, polyisobomyl methacrylate, poly-t-butyl methacrylate, polyethyl methacrylate, polymethyl acrylate, polyethyl acrylate, polyacrylonitrile, and copolymers of two or more of these materials.
  • Some useful pigment/polymer complexes that are commercially available include, but are not limited to, Process Magenta PM 1776 (Magruder Color Company, Inc., Elizabeth, NJ), Methyl Violet PMA VM6223 (Magruder Color Company, Inc., Elizabeth, NJ), and Naphthol FGR RF6257 (Magruder Color Company, Inc., Elizabeth, NJ).
  • the pigment-polymer composite may be formed by a physical process, (e.g., attrition or ball milling), a chemical process (e.g., microencapsulation or dispersion polymerization), or any other process known in the art of particle production. From the following non-limiting examples, it may be seen that the processes and materials for both the fabrication of particles and the charging thereof are generally derived from the art of liquid toner, or liquid immersion development. Thus any of the known processes from liquid development are particularly, but not exclusively, relevant.
  • liquid toners and encapsulated electrophoretic inks are similar, in that the pigment or dye must be easily incorporated therein, either by a physical, chemical, or physicochemical process, may aid in the colloidal stability, and may contain charging sites or may be able to incorporate materials which contain charging sites.
  • One general requirement from the liquid toner industry that is not shared by encapsulated electrophoretic inks is that the toner must be capable of "fixing" the image, i.e., heat fusing together to create a uniform film after the deposition of the toner particles.
  • Typical manufacturing techniques for particles are drawn from the liquid toner and other arts and include ball milling, attrition, jet milling, etc. The process will be illustrated for the case of a pigmented polymeric particle.
  • the pigment is compounded in the polymer, usually in some kind of high shear mechanism such as a screw extruder.
  • the composite material
  • liquid for example ISOPAR ® (Exxon, Houston, TX), optionally with some charge control agent(s), and milled under high shear for several hours down to a final particle size and/or size distribution.
  • Another manufacturing technique for particles drawn from the liquid toner field is to add the polymer, pigment, and suspending fluid to a media mill. The mill is started and simultaneously heated to temperature at which the polymer swells substantially with the solvent.
  • This temperature is typically near 100°C.
  • the pigment is easily encapsulated into the swollen polymer.
  • the mill is gradually cooled back to ambient temperature while stirring. The milling may be continued for some time to achieve a small enough particle size, typically a few microns in diameter.
  • the charging agents may be added at this time.
  • more suspending fluid may be added.
  • Chemical processes such as dispersion polymerization, mini- or micro-emulsion polymerization, suspension polymerization precipitation, phase separation, solvent evaporation, in situ polymerization, seeded emulsion polymerization, or any process which falls under the general category of microencapsulation may be used.
  • a typical process of this type is a phase separation process wherein a dissolved polymeric material is precipitated out of solution onto a dispersed pigment surface through solvent dilution, evaporation, or a thermal change.
  • Other processes include chemical means for staining polymeric latices, for example with metal oxides or dyes.
  • the suspending fluid containing the particles can be chosen based on properties such as density, refractive index, and solubility.
  • a preferred suspending fluid has a low dielectric constant (about 2), high volume resistivity (about 10 ⁇ 15 ohm-cm), low viscosity (less than 5 cst), low toxicity and environmental impact, low water solubility (less than 10 ppm), high specific
  • suspending fluid may be based on concerns of chemical inertness, density matching to the electrophoretic particle, or chemical compatibility with both the electrophoretic particle and bounding capsule.
  • the viscosity of the fluid should be low when you want the particles to move.
  • the refractive index of the suspending fluid may also be substantially matched to that of the particles.
  • the refractive index of a suspending fluid "is substantially matched" to that of a particle if the difference between their respective refractive indices is between about zero and about 0.3, and is preferably between about 0.05 and about 0.2.
  • the fluid may be chosen to be a poor solvent for some polymers, which is advantageous for use in the fabrication of microparticles because it increases the range of polymeric materials useful in fabricating particles of polymers and pigments.
  • Organic solvents such as halogenated organic solvents, saturated linear or branched hydrocarbons, silicone oils, and low molecular weight halogen-containing polymers are some useful suspending fluids.
  • the suspending fluid may comprise a single fluid.
  • the fluid will, however, often be a blend of more than one fluid in order to tune its chemical and physical properties.
  • the fluid may contain surface modifiers to modify the surface energy or charge of the electrophoretic particle or bounding capsule. Reactants or solvents for the microencapsulation process (oil soluble monomers, for example) can also be contained in the suspending fluid. Charge control agents can also be added to the suspending fluid.
  • Useful organic solvents include, but are not limited to, epoxides, such as, for example, decane epoxide and dodecane epoxide; vinyl ethers, such as, for example, cyclohexyl vinyl ether and Decave ® (International Flavors & Fragrances, Inc., New York, NY); and aromatic hydrocarbons, such as, for example, toluene and naphthalene.
  • Useful halogenated organic solvents include, but are not limited to, tetrafluorodibromoethylene, tetrachloroethylene, trifluorochloroethylene, 1,2,4-trichlorobenzene, carbon tetrachloride. These materials have high densities.
  • Useful hydrocarbons include, but are not limited to, dodecane, tetradecane, the aliphatic hydrocarbons in the Isopar ® series (Exxon, Houston, TX), Norpar ® ( series of normal paraffinic liquids), Shell-Sol ® (Shell, Houston, TX), and Sol-Trol ® (Shell), naphtha, and other petroleum solvents. These materials usually have low densities.
  • Useful examples of silicone oils include, but are not limited to, octamethyl cyclosiloxane and higher molecular weight cyclic siloxanes, poly (methyl phenyl siloxane), hexamethyldisiloxane, and polydimethylsiloxane.
  • Useful low molecular weight halogen-containing polymers include, but are not limited to, poly(chlorotrifluoroethylene) polymer (Halogenated hydrocarbon Inc., River Edge, NJ), Galden (a perfluorinated ether from Ausimont, Morristown,
  • this fluid is a poly(chlorotrifluoroethylene) polymer.
  • this polymer has a degree of polymerization from about 2 to about 10.
  • Many of the above materials are available in a range of viscosities, densities, and boiling points.
  • the fluid must be capable of being formed into small droplets prior to a capsule being formed.
  • Processes for forming small droplets include flow-through jets, membranes, nozzles, or orifices, as well as shear-based emulsifying schemes.
  • the formation of small drops may be assisted by electrical or sonic fields.
  • Surfactants and polymers can be used to aid in the stabilization and emulsification of the droplets in the case of an emulsion type encapsulation.
  • a preferred surfactant for use in displays of the invention is sodium dodecylsulfate.
  • the suspending fluid can contain an optically absorbing dye.
  • This dye must be soluble in the fluid, but will generally be insoluble in the other components of the capsule.
  • the dye can be a pure compound, or blends of dyes to achieve a particular color, including black.
  • the dyes can be fluorescent, which would produce a display in which the fluorescence properties depend on the position of the particles.
  • the dyes can be photoactive, changing to another color or becoming colorless upon irradiation with either visible or ultraviolet light, providing another means for obtaining an optical response. Dyes could also be polymerizable, forming a solid absorbing polymer inside the bounding shell. There are many dyes that can be chosen for use in encapsulated electrophoretic display.
  • Properties important here include light fastness, solubility in the suspending liquid, color, and cost. These are generally from the class of azo, anthraquinone, and triphenylmethane type dyes and may be chemically modified so as to increase the solubility in the oil phase and reduce the adsorption by the particle surface.
  • Useful azo dyes include, but are not limited to: the Oil Red dyes, and the Sudan Red and Sudan Black series of dyes.
  • Useful anthraquinone dyes include, but are not limited to: the Oil Blue dyes, and the Macrolex Blue series of dyes.
  • Useful triphenylmethane dyes include, but are not limited to, Michler's hydrol, Malachite Green, Crystal Violet, and Auramine O.
  • Charge control agents are used to provide good electrophoretic mobility to the electrophoretic particles.
  • Stabilizers are used to prevent agglomeration of the electrophoretic particles, as well as prevent the electrophoretic particles from irreversibly depositing onto the capsule wall.
  • Either component can be constructed from materials across a wide range of molecular weights (low molecular weight, oligomeric, or polymeric), and may be pure or a mixture.
  • suitable charge control agents are generally adapted from the liquid toner art.
  • the charge control agent used to modify and/or stabilize the particle surface charge is applied as generally known in the arts of liquid toners, electrophoretic displays, non-aqueous paint dispersions, and engine-oil additives.
  • charging species may be added to non-aqueous media in order to increase electrophoretic mobility or increase electrostatic stabilization.
  • the materials can improve steric stabilization as well. Different theories of charging are postulated, including selective ion adsorption, proton transfer, and contact electrification.
  • An optional charge control agent or charge director may be used. These constituents typically consist of low molecular weight surfactants, polymeric agents, or blends of one or more components and serve to stabilize or otherwise modify the sign and/or magnitude of the charge on the electrophoretic particles.
  • the charging properties of the pigment itself may be accounted for by taking into account the acidic or basic surface properties of the pigment, or the charging sites may take place on the carrier resin surface (if present), or a combination of the two.
  • Additional pigment properties which may be relevant are the particle size distribution, the chemical composition, and the lightfastness.
  • the charge control agent used to modify and/or stabilize the particle surface charge is applied as generally known in the arts of liquid toners, electrophoretic displays, non-aqueous paint dispersions, and engine-oil additives. In all of these arts, charging species may be added to non-aqueous media in order to increase electrophoretic mobility or increase electrostatic stabilization. The materials can improve steric stabilization as well. Different theories of charging are postulated, including selective ion adsorption, proton transfer, and contact electrification. Charge adjuvants may also be added. These materials increase the effectiveness of the charge control agents or charge directors.
  • the charge adjuvant may be a polyhydroxy compound or an aminoalcohol compound, which are preferably soluble in the suspending fluid in an amount of at least 2% by weight.
  • polyhydroxy compounds which contain at least two hydroxyl groups include, but are not limited to, ethylene glycol, 2,4,7,9-tetramethyl-decyne-4,7- diol, poly(propylene glycol), pentaethylene glycol, tripropylene glycol, triethylene glycol, glycerol, pentaerythritol, glycerol tris(12-hydroxystearate), propylene glycerol monohydroxystearate, and ethylene glycol monohydroxystearate.
  • the charge adjuvant is preferably present in the suspending fluid in an amount of about
  • the surface of the particle may also be chemically modified to aid dispersion, to improve surface charge, and to improve the stability of the dispersion, for example.
  • Surface modifiers include organic siloxanes, organohalogen silanes and other functional silane coupling agents
  • hydrophobing agents such as long chain (C12 to C50) alkyl and alkyl benzene sulphonic acids, fatty amines or diamines and their salts or quarternary derivatives; and amphipathic polymers which can be covalently bonded to the particle surface.
  • charging results as an acid-base reaction between some moiety present in the continuous phase and the particle surface.
  • useful materials are those which are capable of participating in such a reaction, or any other charging reaction as known in the art.
  • charge control agents which are useful include organic sulfates or sulfonates, metal soaps, block or comb copolymers, organic amides, organic zwitterions, and organic phosphates and phosphonates.
  • Useful organic sulfates and sulfonates include, but are not limited to, sodium bis(2-ethyl hexyl) sulfosuccinate, calcium dodecyl benzene sulfonate, calcium petroleum sulfonate, neutral or basic barium dinonylnaphthalene sulfonate, neutral or basic calcium dinonylnaphthalene sulfonate, dodecylbenzenesulfonic acid sodium salt, and ammonium lauryl sulphate.
  • Useful metal soaps include, but are not limited to, basic or neutral barium petronate, calcium petronate, Co-, Ca-, Cu-, Mn-, Ni-, Zn-, and Fe- salts of naphthenic acid, Ba-, A1-, Zn-, Cu-, Pb-, and Fe- salts of stearic acid, divalent and trivalent metal carboxylates, such as aluminum tristearate, aluminum octanoate, lithium heptanoate, iron stearate, iron distearate, barium stearate, chromium stearate, magnesium octanoate, calcium stearate, iron naphthenate, and zinc naphthenate, Mn- and Zn- heptanoate, and Ba-, A1-, Co-,
  • Useful block or comb copolymers include, but are not limited to, AB diblock copolymers of (A) polymers of 2-(N,N)-dimethylaminoethyl methacrylate quaternized with methyl-p-toluenesulfonate and (B) poly-2-ethylhexyl methacrylate, and comb graft copolymers with oil soluble tails of poly (12-hydroxystearic acid) and having a molecular weight of about 1800, pendant on an oil-soluble anchor group of poly (methyl methacrylate-methacrylic acid).
  • Useful organic amides include, but are not limited to, polyisobutylene succinimides such as OLOA 371 and 1200, and N-vinyl pyrrolidone polymers.
  • Useful organic zwitterions include, but are not limited to, lecithin.
  • Useful organic phosphates and phosphonates include, but are not limited to, the sodium salts of phosphated mono- and di-glycerides with saturated and unsaturated acid substituents.
  • Particle dispersion stabilizers may be added to prevent particle flocculation or attachment to the capsule walls.
  • nonaqueous surfactants include, but are not limited to, glycol ethers, acetylenic glycols, alkanolamides, sorbitol derivatives, alkyl amines, quaternary amines, imidazolines, dialkyl oxides, and sulfosuccinates.
  • Encapsulation of the internal phase may be accomplished in a number of different ways. Numerous suitable procedures for microencapsulation are detailed in both Microencapsulation, Processes and Applications, (I. E. Vandegaer, ed.), Plenum Press, New York, NY (1974) and Gutcho, Microcapsules and Mircroencapsulation Techniques, Nuyes Data Corp., Park Ridge, N.J. (1976).
  • interfacial polymerization interfacial polymerization
  • in situ polymerization physical processes, such as coextrusion and other phase separation processes, in-liquid curing, and simple/complex coacervation.
  • Useful materials for simple coacervation processes include, but are not limited to, gelatin, polyvinyl alcohol, polyvinyl acetate, and cellulosic derivatives, such as, for example, carboxymethylcellulose.
  • Useful materials for complex coacervation processes include, but are not limited to, gelatin, acacia, carageenan, carboxymethylcellulose, hydrolyzed styrene anhydride copolymers, agar, alginate, casein, albumin, methyl vinyl ether co-maleic anhydride, and cellulose phthalate.
  • Useful materials for phase separation processes include, but are not limited to, polystyrene, PMMA, polyethyl methacrylate, polybutyl methacrylate, ethyl cellulose, polyvinyl pyridine, and poly acrylonitrile.
  • Useful materials for in situ polymerization processes include, but are not limited to, polyhydroxyamides, with aldehydes, melamine, or urea and formaldehyde; water-soluble oligomers of the condensate of melamine, or urea and formaldehyde; and vinyl monomers, such as, for example, styrene, MMA and acrylonitrile.
  • useful materials for interfacial polymerization processes include, but are not limited to, diacyl chlorides, such as, for example, sebacoyl, adipoyl, and di- or poly- amines or alcohols, and isocyanates.
  • useful emulsion polymerization materials may include, but are not limited to, styrene, vinyl acetate, acrylic acid, butyl acrylate, t-butyl acrylate, methyl methacrylate, and butyl methacrylate.
  • Capsules produced may be dispersed into a curable carrier, resulting in an ink which may be printed or coated on large and arbitrarily shaped or curved surfaces using conventional printing and coating techniques.
  • capsule properties include the distribution of capsule radii; electrical, mechanical, diffusion, and optical properties of the capsule wall; and chemical compatibility with the internal phase of the capsule.
  • the capsule wall generally has a high electrical resistivity. Although it is possible to use walls with relatively low resistivities, this may limit performance in requiring relatively higher addressing voltages.
  • the capsule wall should also be mechanically strong (although if the finished capsule powder is to be dispersed in a curable polymeric binder for coating, mechanical strength is not as critical).
  • the capsule wall should generally not be porous. If, however, it is desired to use an encapsulation procedure that produces porous capsules, these can be overcoated in a post-processing step (i.e., a second encapsulation). Moreover, if the capsules are to be dispersed in a curable binder, the binder will serve to close the pores.
  • the capsule walls should be optically clear.
  • the wall material may, however, be chosen to match the refractive index of the internal phase of the capsule (i.e., the suspending fluid) or a binder in which the capsules are to be dispersed. For some applications (e.g., interposition between two fixed electrodes), monodispersed capsule radii are desirable.
  • An encapsulation procedure involves a polymerization between urea and formaldehyde in an aqueous phase of an oil/water emulsion in the presence of a negatively charged, carboxyl- substituted, linear hydrocarbon polyelectrolyte material.
  • the resulting capsule wall is a urea/formaldehyde copolymer, which discretely encloses the internal phase.
  • the capsule is clear, mechanically strong, and has good resistivity properties.
  • the related technique of in situ polymerization utilizes an oil/water emulsion, which is formed by dispersing the electrophoretic composition (i. e. , the dielectric liquid containing a suspension of the pigment particles) in an aqueous environment.
  • the monomers polymerize to form a polymer with higher affinity for the internal phase than for the aqueous phase, thus condensing around the emulsified oily droplets.
  • urea and formaldehyde condense in the presence of poly( acrylic acid) (See, e.g., U.S. Patent No. 4,001 , 140).
  • any of a variety of cross-linking agents borne in aqueous solution is deposited around microscopic oil droplets.
  • Such cross-linking agents include aldehydes, especially formaldehyde, glyoxal, or glutaraldehyde; alum; zirconium salts; and poly isocyanates.
  • the coacervation approach also utilizes an oil/water emulsion.
  • One or more colloids are coacervated (i.e., agglomerated) out of the aqueous phase and deposited as shells around the oily droplets through control of temperature, pH and/or relative concentrations, thereby creating the microcapsule.
  • Materials suitable for coacervation include gelatins and gum arable.
  • the interfacial polymerization approach relies on the presence of an oil-soluble monomer in the electrophoretic composition, which once again is present as an emulsion in an aqueous phase.
  • the monomers in the minute hydrophobic droplets react with a monomer introduced into the aqueous phase, polymerizing at the interface between the droplets and the surrounding aqueous medium and forming shells around the droplets.
  • the resulting walls are relatively thin and may be permeable, this process does not require the elevated temperatures characteristic of some other processes, and therefore affords greater flexibility in terms of choosing the dielectric liquid.
  • Coating aids can be used to improve the uniformity and quality of the coated or printed electrophoretic ink material.
  • Wetting agents are typically added to adjust the interfacial tension at the coating/substrate interface and to adjust the liquid/air surface tension.
  • Wetting agents include, but are not limited to, anionic and cationic surfactants, and nonionic species, such as silicone or fluoropolymer based materials.
  • Dispersing agents may be used to modify the interfacial tension between the capsules and binder, providing control over flocculation and particle settling.
  • Surface tension modifiers can be added to adjust the air/ink interfacial tension.
  • Polysiloxanes are typically used in such an application to improve surface leveling while minimizing other defects within the coating.
  • Surface tension modifiers include, but are not limited to, fluorinated surfactants, such as, for example, the Zonyl series from DuPont (Wilmington, DE), the Fluorod ® series from 3M (St. Paul, MN), and the fluoroakyl series from Autochem (Glen Rock, NJ); siloxanes, such as, for example, Silwet from Union Carbide (Danbury, CT); and polyethoxy and polypropoxy alcohols.
  • fluorinated surfactants such as, for example, the Zonyl series from DuPont (Wilmington, DE), the Fluorod ® series from 3M (St. Paul, MN), and the fluoroakyl series from Autochem (Glen Rock, NJ
  • siloxanes such as, for example, Silwet from Union Carbide (Danbury, CT); and polyethoxy and
  • Antifoams such as silicone and silicone-free polymeric materials, may be added to enhance the movement of air from within the ink to the surface and to facilitate the rupture of bubbles at the coating surface.
  • Other useful antifoams include, but are not limited to, glyceryl esters, polyhydric alcohols, compounded antifoams, such as oil solutions of alkyl benzenes, natural fats, fatty acids, and metallic soaps, and silicone antifoaming agents made from the combination of dimethyl siloxane polymers and silica.
  • Stabilizers such as uv-absorbers and antioxidants may also be added to improve the lifetime of the ink.
  • Other additives to control properties like coating viscosity and foaming can also be used in the coating fluid. Stabilizers (UV-absorbers, antioxidants) and other additives which could prove useful in practical materials.
  • Stabilizers UV-absorbers, antioxidants
  • the binder is used as a non-conducting, adhesive medium supporting and protecting the capsules, as well as binding the electrode materials to the capsule dispersion. Binders are available in many forms and chemical types. Among these are water-soluble polymers, water- borne polymers, oil-soluble polymers, thermoset and thermoplastic polymers, and radiation- cured polymers.
  • water-soluble polymers are the various polysaccharides, the polyvinyl alcohols, N-methylpyrrolidone, N-vinylpyrrolidone, the various Carbowax ® species (Union Carbide, Danbury, CT), and poly-2-hydroxyethylacrylate.
  • the water-dispersed or water-bome systems are generally latex compositions, typified by the Neorez ® and Neocryl ® resins (Zeneca Resins, Wilmington, MA), Acrysol ® (Rohm and Haas,
  • a typical application of a water-borne resin and aqueous capsules follows. A volume of particles is centrifuged at low speed to separate excess water. After a given centrifugation process, for example 10 minutes at 60 x G, the capsules are found at the bottom of the centrifuge tube, while the water portion is at the top. The water portion is carefully removed (by decanting or pipetting). The mass of the remaining capsules is measured, and a mass of resin is added such that the mass of resin is between one eighth and one tenth of the weight of the capsules. This mixture is gently mixed on an oscillating mixer for approximately one half hour. After about one half hour, the mixture is ready to be coated onto the appropriate substrate.
  • thermoset systems are exemplified by the family of epoxies. These binary systems can vary greatly in viscosity, and the reactivity of the pair determines the "pot life" of the mixture. If the pot life is long enough to allow a coating operation, capsules may be coated in an ordered arrangement in a coating process prior to the resin curing and hardening. Thermoplastic polymers, which are often polyesters, are molten at high temperatures. A typical application of this type of product is hot-melt glue. A dispersion of heat-resistant capsules could be coated in such a medium. The solidification process begins during cooling, and the final hardness, clarity and flexibility are affected by the branching and molecular weight of the polymer.
  • Oil or solvent-soluble polymers are often similar in composition to the water-borne system, with the obvious exception of the water itself.
  • the latitude in formulation for solvent systems is enormous, limited only by solvent choices and polymer solubility.
  • Of considerable concern in solvent-based systems is the viability of the capsule itself - the integrity of the capsule wall cannot be compromised in any way by the solvent.
  • Radiation cure resins are generally found among the solvent-based systems. Capsules may be dispersed in such a medium and coated, and the resin may then be cured by a timed exposure to a threshold level of ultraviolet radiation, either long or short wavelength. As in all cases of curing polymer resins, final properties are determined by the branching and molecular weights of the monomers, oligomers and crosslinkers.
  • water-reducible monomers and oligomers are, however, marketed. In the strictest sense, they are not water soluble, but water is an acceptable diluent at low concentrations and can be dispersed relatively easily in the mixture. Under these circumstances, water is used to reduce the viscosity (initially from thousands to hundreds of thousands centipoise).
  • Water-based capsules such as those made from a protein or polysaccharide material, for example, could be dispersed in such a medium and coated, provided the viscosity could be sufficiently lowered. Curing in such systems is generally by ultraviolet radiation.

Abstract

A process for forming a relatively high quality, lower cost organic semiconductor film is provided. A substrate is formed by depositing an organic semiconductor film via a lower cost method such as printing or spin coating on a support substrate. A portion of a solvent is vaporized to bring the vapor into contact with the film. The chemical potential of the vapor molecules is controlled to provide an interaction with the organic semiconductor film to alter the molecular arrangement of the film. The process further entails placing the substrate on a first temperature controlled stage and placing the solvent on a second temperature controlled stage. The chemical potential of the vapor is adjusted by controlling the temperature of the solvent. Appropriate annealing conditions are obtained by adjusting the temperature of the solvent, the substrate, and the anneal time. The process can assist manufacturing of lower cost displays that utilize arrays of organic thin-film transistors.

Description

A SOLVENT ANNEALING PROCESS FOR FORMING A THIN SEMICONDUCTOR FILM WITH ADVANTAGEOUS PROPERTIES
Related Applications
This application claims the benefit of provisional application U.S.S.N. 60/151,547 filed on August 31, 1999 the entire contents of which are incorporated herein by reference.
Technical Field The invention relates generally to manufacturing of semiconductor devices and more particularly to the manufacture of patterned organic layers in organic material-based electronic devices.
Background of the Invention Thin films of organic semiconductor material can be used in the construction of thin-film transistors (TFT). Performance of organic TFT's (OTFT), characterized by parameters such as the field effect mobility and threshold voltage, depends in part upon the molecular structure of the semiconductor film. Factors such as interfacial structure, the degree of molecular order and crystalline orientation of the thin film affect film properties.
Ordering of the semiconductor depends in turn on how the thin film is deposited. It is generally believed that increasing the amount of molecular order - by increasing crystal size, reducing the density of crystalline defects, or improving short-range molecular order - permits charge carriers, i.e. electrons or holes, to more efficiently move between molecules. This can increase the field effect mobility.
Advantageous molecular order that gives high field effect mobility can be achieved using some relatively expensive deposition techniques. In contrast, deposition techniques that enable inexpensive production or production of films of a desired uniformity and thickness can produce films that exhibit a relatively small field-effect mobility.
For example, a solvent cast film that is permitted to slowly dry often exhibits a relatively high field effect mobility when incorporated into an OTFT. Unfortunately, some deposition techniques that are more amenable to manufacturing do not readily permit slow evaporation of solvent. For example, though spin coating can yield relatively uniform thin films, the solvent usually leaves the film relatively quickly, generally leading to a low degree of crystal order. Field-effect mobility, for example, can be a factor of about 10 to 100 smaller than for cast films. Other manufacturing processes such as screen printing or various thin-film coating methods may yield desirable film morphology, but not desirable molecular order.
What are needed are lower cost manufacturing methods that produce relatively high quality organic semiconductor films.
Summary of the Invention In one aspect, the invention relates to the manufacture of displays that utilize arrays of OTFT's. The invention is of particular use in the production of displays with an electrophoretic display medium and mitigates the problem of poor quality organic layers obtained by lower cost manufacturing processes. The invention permits manufacturing of higher quality organic semiconductor layers while still utilizing lower cost organic film deposition methods.
In one aspect, after deposition of the organic semiconductor film, the film is annealed under the influence of a vapor derived from a solvent. The solvent is chosen for its ability to assist molecular rearrangement after diffusing into the organic semiconductor film. Annealing conditions are selected to provide molecular rearrangement that improves electrical properties while avoiding conditions that damage the film. Annealing conditions in some embodiments are determined by systematically varying the solvent temperature, the organic semiconductor film temperature, and the annealing time until an appropriate level of improvement in electrical properties is obtained.
In one embodiment, a substrate is formed by depositing an organic semiconductor film via a lower cost method such as printing or spin coating on a support substrate. A portion of a solvent is vaporized to bring the vapor into contact with the film. The chemical potential of the vapor molecules is controlled to provide an interaction with the organic semiconductor film to alter the molecular arrangement of the film. Some embodiments further entail placing the substrate on a first temperature controlled stage and placing the solvent on a second temperature controlled stage. The chemical potential of the vapor is adjusted by controlling the temperature of the solvent. Appropriate annealing conditions are obtained by adjusting the temperature of the solvent, the substrate, and the anneal time. This process can assist manufacturing of lower cost displays that utilize arrays of organic thin-film transistors.
Brief Description of the Drawings
The invention, in accordance with preferred and exemplary embodiments, together with further advantages thereof, is more particularly described in the following detailed description, taken in conjunction with the accompanying drawings.
In the drawings, like reference characters generally refer to the same parts throughout the different views. Also, the drawings are not necessarily to scale, emphasis instead generally being placed upon illustrating principles of the invention.
Figure 1 shows a cross-sectional view of a substrate undergoing annealing.
Figure 2 shows a cross-sectional view of an embodiment of a chamber for annealing of substrates.
Figure 3 shows a cross-sectional view of an embodiment of a device having multiple chambers for annealing of substrates. Figure 4 shows a cross-sectional view of an embodiment of an electronic device at an intermediate stage of fabrication.
Detailed Description of the Invention In broad overview, an embodiment of a method of solvent annealing of an organic semiconductor film is shown in Figure 1. Solvent annealing is here understood to mean the subjecting of a material to the influence of a solvent for a period of time with the goal of a desirable change in the material. A substrate 110 comprising an organic semiconductor film 111 is provided. In the embodiment shown in Figure 1 , provision of the substrate 110 comprises depositing the organic semiconductor film 111 on a support substrate 112. In preferred embodiments, the organic semiconductor film 111 is one which has utility in fabrication of electronic devices, for example, organic thin-film transistors (OTFT).
One such organic semiconductor film 111 is comprised of poly(alkylthiophene). Other possible organic semiconductor films 111 include solution processable dihexyl-alfa- sexithiophene, dihexyl-quinquethiophene, and alkyl or fluoroalkyl substituted naphthalenetetracarboxylic diimides.
In preferred embodiments, the organic semiconductor film 111 is printed. As used herein, the term "printing" includes all forms of printing and coating, including, but not limited to, pre-metered coatings such as patch die coating, slot or extrusion coating, slide or cascade coating, and curtain coating: roll coating such as knife over roll coating, forward and reverse roll coating, gravure coating, dip coating, spray coating, meniscus coating, spin coating, brush coating, air knife coating, silk screen printing processes, electrostatic printing processes, thermal printing processes, ink jet printing processes and other similar techniques. This will typically produce a film with relatively poor molecular ordering and, consequently, relatively poor electrical properties. To improve the molecular ordering, the organic semiconductor film 1 11 is next subjected to a solvent vapor 120. The solvent vapor may be obtained by vaporizing a portion of liquid solvent (not shown in Fig. 1). In the present description, the word "solvent" when used alone is understood to refer to the liquid phase of the solvent while "vapor" is understood to refer to the gas phase of the solvent.
The vapor molecules diffuse into the organic semiconductor film 111. An appropriate solvent is chosen such that the solvent is capable of causing desirable molecular rearrangement in the particular organic semiconductor film 111. For example, if the organic semiconductor film 111 comprises poly(alkylthiophene), an appropriate solvent is selected from the group comprising toluene, chloroform, and xylene.
For a give semiconductor, an appropriate solvent is experimentally screened. There are several ways to characterize the properties of the annealed films. Molecular crystallinity can be detected by X-ray diffraction. Alternatively, performance of transistors based on the annealed semiconductor is a direct indicator of film morphology.
By selecting appropriate annealing conditions, the presence of solvent in the organic semiconductor film 111 contributes to a desirable, relatively local, rearrangement of the molecular structure of a relatively poor, as-deposited organic semiconductor film 111.
By selecting an appropriate chemical potential for the vapor 120, temperature for the organic semiconductor film 111, and annealing time, optimized improvement of molecular order via molecular rearrangement is obtained. In general, two alternatives are a consequence of inappropriate selection of annealing conditions. Firstly, inappropriate conditions can lead to insubstantial changes in molecular structure and related insubstantial improvements in electrical properties. This situation can occur, for example, when the chemical potential of the vapor 120 is too low and insufficient vapor molecules enter the organic semiconductor film 111. Secondly, inappropriate conditions can lead to excessive molecular rearrangements and potential degradation in electrical properties of the organic semiconductor film 111. Too high a chemical potential of the vapor 120, for example, can lead to excessive entry of vapor molecules into the organic semiconductor film 111 and gross changes in structure.
In one embodiment, optimum annealing conditions are determined empirically. For example, for a particular organic semiconductor film 111 and solvent pair, substrate temperature, vapor 120 chemical potential, and annealing time are systematically varied, using samples of the particular organic semiconductor film 111. Electrical measurements are made on the samples and an optimum or preferable annealing condition is determined. In an alternative embodiment, a production organic semiconductor film 111 is electrically monitored during annealing. When a desired level of improvement in electrical properties is attained, the annealing treatment is ended.
Varying the chemical potential of the vapor 120 will typically vary the density of solvent molecules in the organic semiconductor film 111. In some embodiments, the combination of varying the chemical potential of the vapor 120 and selecting an appropriate annealing time can suffice to provide a preferable annealing condition. In other embodiments, varying the temperature of the organic semiconductor film 111 is also useful in obtaining desirable molecular rearrangements and a preferable annealing condition.
Further considerations can assist in appropriate selection and use of a solvent. In some embodiments, solvents with an appreciable vapor pressure relative to other solvents are considered for use during annealing. Generally, the chemical potential must be high enough so that sufficient solvent molecules enter the organic semiconductor film 111 to enable desirable molecular rearrangements. Conversely, the chemical potential must not be so high as to lead to undesirable molecular rearrangements, for example, gross disordering. In particular, too high a chemical potential can also lead to de wetting of the organic semiconductor film 111. In one embodiment, the chemical potential of the vapor 120 is controlled by selecting a solvent temperature in a range of about 0°C to about 50°C.
Further, too great a disparity in the solvent temperature, where applied to increase the chemical potential of the vapor 120, and the temperature of the organic semiconductor film 111 can lead to condensation of solvent on the organic semiconductor film 111. This can lead to localized or wide scale dissolution of the organic semiconductor film 111, causing a decline rather than the desired improvement in electrical properties. This situation can be remedied by raising the temperature of the organic semiconductor film 111 or decreasing the temperature of the solvent. In one embodiment, the organic semiconductor film 111 temperature is in a range of about 80°C to about 150°C. In another embodiment, the temperature difference between the organic semiconductor film 111 and the solvent is kept substantially small, for example not more
than about 10-15°C. Again, in preferred embodiments, annealing conditions are selected to
provide desired improvements in electrical properties.
Referring to Figure 2, a more detailed embodiment of a method of annealing the organic semiconductor film 111 is now described. A chamber 210 is provided as an enclosure for the annealing of the organic semiconductor film 111. The chamber 210 is sufficiently sealed to prevent undesirable leakage of vapor 120 or other gases. The chamber further comprises a gas outlet 215 for removal of gases from the chamber 210 and a gas inlet 216 for admission of gases to the chamber. For example the outlet 215 and the inlet 216 can each comprise a valve. In some embodiments, the outlet 215 and the inlet 216 are provided by a single port in the chamber 210.
The embodiment illustrated by Figure 2 further comprises a first stage 221 on which resides the organic semiconductor film 111 and a second stage 222 on which resides a reservoir 240, for example a beaker, for holding solvent 240. The stages 221, 222 in preferred embodiments are each provided with heating or cooling means for control of the temperatures of the organic semiconductor film 11 1 and the solvent 240. Means for distributing vapor 120 within the chamber 210 (not shown), for example, via use of a fan, can be utilized. In another embodiment, a portion of the walls of the chamber 210 is cooled or heated to control the temperature of the vapor 120.
In another embodiment, the solvent 240 resides outside the chamber 210 and the vapor 120 diffuses or is pumped into the chamber 210.
In one aspect, the chamber 210 provides for confinement of vapor 120 during the annealing process. Since the vapor 120 is typically flammable, safety precautions are desirable during annealing processing. Purging of air via outlet 215 prior to annealing can reduce the mixing of oxygen with the vapor 120. For example, the chamber can be evacuated followed by admission of an inert gas, for example nitrogen or argon, via the inlet 216. During annealing, the mixture of the vapor 120 with an inert gas can reduce the chance of fire or explosion occurring within the chamber.
Similarly, the chamber 120 preferably is sufficiently gas tight so that flammable mixtures of air and vapor 120 do not form outside the chamber 120. Risk of sparking from electrical devices, for example from some types of heating means, can be minimized to further improve safety. After annealing and prior to removal of the organic semiconductor film 111 from the chamber 210, the chamber 210 can be purged of vapor 120 via the outlet 215 to avoid release of flammable vapor 120 into the air in the vicinity of the chamber 210. Avoidance of glass materials in the construction of the chamber 210 and use of explosion guards can further improve safety.
At the conclusion of annealing, the organic semiconductor film 11 1 will typically emit vapor 120 for a period of time. To again avoid the hazards of flammable vapor 120 and air mixtures, this period of time can be allowed to lapse with the organic semiconductor film 111 still residing within the chamber 210. In some embodiments, this period of time can be accommodated by placing the organic semiconductor film 111 in a drying chamber (not shown).
In another embodiment, the organic semiconductor film 111 is heated while in the drying chamber to reduce the period of time that vapor 120 is emitted by the organic semiconductor film 111. Preferably, the drying temperature is below the boiling point of the solvent at the pressure to which it is exposed.
In another embodiment, determination of appropriate annealing conditions for use with the chamber 210 are developed via an iterative process. A solvent 240 can first be selected from those known to potentially swell or dissolve the organic semiconductor film 111 to be annealed. This characteristic is typically indicative of a solvent's ability to promote molecular rearrangements in the organic semiconductor film 111. In contrast, the solvent 240 is preferably chosen from those not damaging to other materials comprised by the substrate 110.
Next, test anneals can be conducted for various temperatures of the solvent 240 and the organic semiconductor film 111 for varying anneal times. Systematic variation of parameters is preferred to derive appropriate annealing conditions in an efficient manner. In one embodiment, one begins with relatively low solvent 240 temperatures and anneal times so that the same sample of the organic semiconductor film 111 can be retested until a regime of appropriate annealing conditions is found. This approach can reduce waste of sample material used for determination of annealing conditions.
With reference to Figure 3, a more detailed embodiment of relevance to larger scale manufacturing is depicted. A multiple chamber apparatus 300 for higher throughput annealing comprises a first chamber 305 for preloading of substrates 110, a second chamber 310 for annealing, and a third chamber 315 for drying or removal of the substrate 110. The first chamber 305 can be a loadlock. The organic semiconductor film 111 can be sealed in the first chamber. In one embodiment, the first chamber 305 is then evacuated and an inert gas is admitted to the first chamber 305 to match the level of inert gas in the second chamber 310. If desired, the substrate 110 can be heated while in the first chamber 305. The organic semiconductor film 111 is then transported to a first stage 321 in the second chamber and the second chamber 321 is sealed. Annealing conditions can then be applied to the organic semiconductor film 111.
Upon completion of annealing, the organic semiconductor film 111 can be transferred to the third chamber 315 for removal from the multiple chamber apparatus 300 or to allow for removal of solvent from the organic semiconductor film 111. Heat can be applied to the organic semiconductor film 111 while in the third chamber 315 for this purpose. Matching of inert gas type and level can be used, as for transfers from the first chamber 305 to the second chamber 310, when transferring the organic semiconductor film 111 from the second chamber 310 to the third chamber 315.
For higher volume manufacturing, samples can occupy all three chambers 305, 310, 315 simultaneously. Further, for greater throughput, solvent 240 temperature can be maintained during transfer of wafers without substantial release of vapor 120 into the surrounding air. For example, after transfer of the organic semiconductor film 111 from the first chamber 305 to the second chamber 310, the first chamber 305 is sealed from the second chamber 310 and evacuated to remove vapor 120 prior to opening of the first chamber 305 to room air for placement of another organic semiconductor film 111 for processing.
Further embodiments provide other alternatives to increase processing ease or throughput. An apparatus with greater numbers of chambers can be employed. Turntables or conveyor belt systems can be employed to anneal more than one organic semiconductor film 11 1 at one time. More than one organic semiconductor film 111 can be stacked vertically or horizontally as further alternatives to permit processing of more than one organic semiconductor film 111 at one time.
The above described method can be advantageously applied to manufacturing of organic thin-film transistors (OTFT). In a preferred embodiment, arrays of OTFTs are produced as one stage in the production of display devices. Lower cost and higher quality organic semiconductor films 111 can be produced to aid in the manufacture of larger and lower cost displays.
Referring to Figure 4, a further embodiment incorporates a mask 113 to delineate annealed and unannealed regions on the organic semiconductor film 111. The mask material is a barrier to the solvent 140 and is applied to the organic semiconductor film 1 11 prior to annealing. The mask is designed to admit vapor 120 to regions of the organic semiconductor film 111 where OTFTs will be formed while excluding vapor 120 from regions of organic semiconductor film 111 that lie between the OTFT locations. In this way, regions of the organic semiconductor film 111 that separate OTFTs can be produced with poorer conductivity than possessed by regions from which OTFTs are formed. In this manner, leakage currents between neighboring OTFTs can be reduced.
The above described method is of use in the manufacture of electrophoretic displays, in particular for application in the fabrication of active matrix addressing logic comprising an OTFT array. A display manufactured with relatively high quality OTFT's and a microencapsulated electrophoretic display medium has the advantages of large size potential, relatively low cost manufacturing, and a resulting thin, flexible, low-power consumption display. A detailed description of methods and materials of relevance to the manufacture of electrophoretic displays follows. Method Of Manufacturing An Electrophoretic Display Assembly
In a preferred embodiment, an encapsulated electrophoretic display assembly is manufactured with use of printing or coating steps on a wide variety of flexible substrates. As noted above, the term "printing" herein includes all forms of printing and coating, including, but not limited to, pre-metered coatings such as patch die coating, slot or extrusion coating, slide or cascade coating, and curtain coating: roll coating such as knife over roll coating, forward and reverse roll coating, gravure coating, dip coating, spray coating, meniscus coating, spin coating, brush coating, air knife coating, silk screen printing processes, electrostatic printing processes, thermal printing processes, and other similar techniques. Thus, the resulting display can be flexible. Further, because the display medium can be printed (using a variety of methods), the display itself can be made inexpensively.
Further, printing methods can be used to form the electrical connections and other conductive portions of a display. A rear conductor ("rear" referring to a side of a display that is opposite to that viewed by a user) can be ether opaque or transparent. This allows the use of a variety of printed rear conductors, including graphite inks, silver inks, or conductive polymers.
The front conductor ("front" referring to a side of a display that is viewed by a user) must be transparent, but need not have excellent conductivity. Even materials with relatively poor conductivity, though amenable to printing, can be employed, for example conductive colloidal suspensions and conductive polymers such as are commonly used in anti-static applications.
A microencapsulated electrophoretic medium, unlike a liquid crystal medium, is amendable to use with a wide number of intrinsically conductive polymer systems, including derivatives of polyaniline, polypyrrole, polythiophene, and polyphenylenevinylene.
In short, the present invention permits a more advantageous use of cost savings allowed by use of printing methods for formation of conducting materials in a display assembly. The following describes in detail various embodiments of materials with applications to the electrophoretic display medium.
Materials for Use in Electrophoretic Displays
Useful materials for constructing the above-described encapsulated electrophoretic displays are discussed in detail below. Many of these materials will be known to those skilled in the art of constructing conventional electrophoretic displays, or those skilled in the art of microencapsulation. A. Particles
There is much flexibility in the choice of particles for use in electrophoretic displays, as described above. For purposes of this invention, a particle is any component that is charged or capable of acquiring a charge (i.e., has or is capable of acquiring electrophoretic mobility), and, in some cases, this mobility may be zero or close to zero (i.e., the particles will not move). The particles may be neat pigments, dyed (laked) pigments or pigment/polymer composites, or any other component that is charged or capable of acquiring a charge. Typical considerations for the electrophoretic particle are its optical properties, electrical properties, and surface chemistry.
The particles may be organic or inorganic compounds, and they may either absorb light or scatter light. The particles for use in the invention may further include scattering pigments, absorbing pigments and luminescent particles. The particles may be retroreflective, such as corner cubes, or they may be electroluminescent, such as zinc sulfide particles, which emit light when excited by an AC field, or they may be photoluminescent. Finally, the particles may be surface treated so as to improve charging or interaction with a charging agent, or to improve dispersibility.
A preferred particle for use in electrophoretic displays of the invention is Titania. The titania particles may be coated with a metal oxide, such as aluminum oxide or silicon oxide, for example. The titania particles may have one, two, or more layers of metal-oxide coating. For example, a titania particle for use in electrophoretic displays of the invention may have a coating of aluminum oxide and a coating of silicon oxide. The coatings may be added to the particle in any order.
The electrophoretic particle is usually a pigment, a polymer, a laked pigment, or some combination of the above. A neat pigment can be any pigment, and, usually for a light colored particle, pigments such as, for example, rutile (titania), anatase (titania), barium sulfate, kaolin, or zinc oxide are useful. Some typical particles have high refractive indices, high scattering coefficients, and low absorption coefficients. Other particles are absorptive, such as carbon black or colored pigments used in paints and inks. The pigment should also be insoluble in the suspending fluid. Yellow pigments such as diarylide yellow, hansa yellow, and benzidin yellow have also found use in similar displays. Any other reflective material can be employed for a light colored particle, including non-pigment materials, such as metallic particles.
Useful neat pigments include, but are not limited to, PbCrO4, Cyan blue GT 55-3295 (American Cyanamid Company, Wayne, NJ), Cibacron Black BG (Ciba Company, Inc., Newport, DE), Cibacron Turquoise Blue G (Ciba), Cibalon Black BGL (Ciba), Orasol Black BRG (Ciba), Orasol Black RBL (Ciba), Acetamine Blac, CBS (E. I. du Pont de Nemours and Company, Inc., Wilmington, DE), Crocein Scarlet N Ex (du Pont) (27290), Fiber Black VF (DuPont) (30235), Luxol Fast Black L (DuPont) (Solv. Black 17), Nirosine Base No. 424 (DuPont) (50415 B), Oil Black BG (DuPont) (Solv. Black 16), Rotalin Black RM (DuPont), Sevron Brilliant Red 3 B (DuPont); Basic Black DSC (Dye Specialties, Inc.), Hectolene Black (Dye Specialties, Inc.), Azosol Brilliant Blue B (GAF, Dyestuff and Chemical Division, Wayne, NJ) (Solv. Blue 9), Azosol Brilliant Green BA (GAF) (Solv. Green 2), Azosol Fast Brilliant Red B (GAF), Azosol Fast Orange RA Cone. (GAF) (Solv. Orange 20), Azosol Fast Yellow GRA Cone. (GAF) (13900 A), Basic Black KMPA (GAF), Benzofix Black CW-CF (GAF) (35435), Cellitazol BNFV Ex Soluble CF (GAF) (Disp. Black 9), Celliton Fast Blue AF Ex Cone (GAF) (Disp. Blue 9), Cyper Black IA (GAF) (Basic Blk. 3), Diamine Black CAP Ex Cone (GAF) (30235), Diamond Black EAN Hi Con. CF (GAF) (15710), Diamond Black PBBA Ex (GAF)
(16505); Direct Deep Black EA Ex CF (GAF) (30235), Hansa Yellow G (GAF) (11680);
Indanthrene Black BBK Powd. (GAF) (59850), Indocarbon CLGS Cone. CF (GAF) (53295),
Katigen Deep Black NND Hi Cone. CF (GAF) (15711), Rapidogen Black 3 G (GAF) (Azoic Blk. 4); Sulphone Cyanine Black BA-CF (GAF) (26370), Zambezi Black VD Ex Cone. (GAF)
(30015); Rubanox Red CP-1495 (The Sherwin-Williams Company, Cleveland, OH) (15630);
Raven 11 (Columbian Carbon Company, Atlanta, GA), (carbon black aggregates with a particle
size of about 25 μm), Statex B-12 (Columbian Carbon Co.) (a furnace black of 33 μm average particle size), and chrome green. Particles may also include laked, or dyed, pigments. Laked pigments are particles that have a dye precipitated on them or which are stained. Lakes are metal salts of readily soluble anionic dyes. These are dyes of azo, triphenylmethane or anthraquinone structure containing one or more sulphonic or carboxylic acid groupings. They are usually precipitated by a calcium, barium or aluminum salt onto a substrate. Typical examples are peacock blue lake (CI Pigment Blue 24) and Persian orange (lake of CI Acid Orange 7), Black M Toner (GAF) (a mixture of carbon black and black dye precipitated on a lake).
A dark particle of the dyed type may be constructed from any light absorbing material, such as carbon black, or inorganic black materials. The dark material may also be selectively absorbing. For example, a dark green pigment may be used. Black particles may also be formed by staining latices with metal oxides, such latex copolymers consisting of any of butadiene, styrene, isoprene, methacrylic acid, methyl methacrylate, acrylonitrile, vinyl chloride, acrylic acid, sodium styrene sulfonate, vinyl acetate, chlorostyrene, dimethylaminopropylmethacrylamide, isocyanoethyl methacrylate and N- (isobutoxymethacrylamide), and optionally including conjugated diene compounds such as diacrylate, triacrylate, dimethylacrylate and trimethacrylate. Black particles may also be formed by a dispersion polymerization technique.
In the systems containing pigments and polymers, the pigments and polymers may form multiple domains within the electrophoretic particle, or be aggregates of smaller pigment/polymer combined particles. Alternatively, a central pigment core may be surrounded by a polymer shell. The pigment, polymer, or both can contain a dye. The optical purpose of the particle may be to scatter light, absorb light, or both. Useful sizes may range from 1 nm up to
about 100 μm, as long as the particles are smaller than the bounding capsule. In a preferred
embodiment, the density of the electrophoretic particle may be substantially matched to that of the suspending (i.e., electrophoretic) fluid. As defined herein, a suspending fluid has a density that is "substantially matched" to the density of the particle if the difference in their respective densities is between about zero and about two g/ml. This difference is preferably between about zero and about 0.5 g/ml.
Useful polymers for the particles include, but are not limited to: polystyrene, polyethylene, polypropylene, phenolic resins, Du Pont Elvax resins (ethylene-vinyl acetate copolymers), polyesters, polyacrylates, polymethacrylates, ethylene acrylic acid or methacrylic acid copolymers (Nucrel Resins - DuPont, Primacor Resins- Dow Chemical), acrylic copolymers and terpolymers (Elvacite Resins, DuPont) and PMMA. Useful materials for homopolymer / pigment phase separation in high shear melt include, but are not limited to, polyethylene, polypropylene, polymethylmethacrylate, polyisobutylmethacrylate, polystyrene, polybutadiene, polyisoprene, polyisobutylene, polylauryl methacrylate, polystearyl methacrylate, polyisobomyl methacrylate, poly-t-butyl methacrylate, polyethyl methacrylate, polymethyl acrylate, polyethyl acrylate, polyacrylonitrile, and copolymers of two or more of these materials. Some useful pigment/polymer complexes that are commercially available include, but are not limited to, Process Magenta PM 1776 (Magruder Color Company, Inc., Elizabeth, NJ), Methyl Violet PMA VM6223 (Magruder Color Company, Inc., Elizabeth, NJ), and Naphthol FGR RF6257 (Magruder Color Company, Inc., Elizabeth, NJ).
The pigment-polymer composite may be formed by a physical process, (e.g., attrition or ball milling), a chemical process (e.g., microencapsulation or dispersion polymerization), or any other process known in the art of particle production. From the following non-limiting examples, it may be seen that the processes and materials for both the fabrication of particles and the charging thereof are generally derived from the art of liquid toner, or liquid immersion development. Thus any of the known processes from liquid development are particularly, but not exclusively, relevant.
New and useful electrophoretic particles may still be discovered, but a number of particles already known to those skilled in the art of electrophoretic displays and liquid toners can also prove useful. In general, the polymer requirements for liquid toners and encapsulated electrophoretic inks are similar, in that the pigment or dye must be easily incorporated therein, either by a physical, chemical, or physicochemical process, may aid in the colloidal stability, and may contain charging sites or may be able to incorporate materials which contain charging sites. One general requirement from the liquid toner industry that is not shared by encapsulated electrophoretic inks is that the toner must be capable of "fixing" the image, i.e., heat fusing together to create a uniform film after the deposition of the toner particles.
Typical manufacturing techniques for particles are drawn from the liquid toner and other arts and include ball milling, attrition, jet milling, etc. The process will be illustrated for the case of a pigmented polymeric particle. In such a case the pigment is compounded in the polymer, usually in some kind of high shear mechanism such as a screw extruder. The composite material
is then (wet or dry) ground to a starting size of around 10 μm. It is then dispersed in a carrier
liquid, for example ISOPAR® (Exxon, Houston, TX), optionally with some charge control agent(s), and milled under high shear for several hours down to a final particle size and/or size distribution. Another manufacturing technique for particles drawn from the liquid toner field is to add the polymer, pigment, and suspending fluid to a media mill. The mill is started and simultaneously heated to temperature at which the polymer swells substantially with the solvent.
This temperature is typically near 100°C. In this state, the pigment is easily encapsulated into the swollen polymer. After a suitable time, typically a few hours, the mill is gradually cooled back to ambient temperature while stirring. The milling may be continued for some time to achieve a small enough particle size, typically a few microns in diameter. The charging agents may be added at this time. Optionally, more suspending fluid may be added.
Chemical processes such as dispersion polymerization, mini- or micro-emulsion polymerization, suspension polymerization precipitation, phase separation, solvent evaporation, in situ polymerization, seeded emulsion polymerization, or any process which falls under the general category of microencapsulation may be used. A typical process of this type is a phase separation process wherein a dissolved polymeric material is precipitated out of solution onto a dispersed pigment surface through solvent dilution, evaporation, or a thermal change. Other processes include chemical means for staining polymeric latices, for example with metal oxides or dyes. B. Suspending Fluid
The suspending fluid containing the particles can be chosen based on properties such as density, refractive index, and solubility. A preferred suspending fluid has a low dielectric constant (about 2), high volume resistivity (about 10Λ15 ohm-cm), low viscosity (less than 5 cst), low toxicity and environmental impact, low water solubility (less than 10 ppm), high specific
gravity (greater than 1.5), a high boiling point (greater than 90°C), and a low refractive index
(less than 1.2).
The choice of suspending fluid may be based on concerns of chemical inertness, density matching to the electrophoretic particle, or chemical compatibility with both the electrophoretic particle and bounding capsule. The viscosity of the fluid should be low when you want the particles to move. The refractive index of the suspending fluid may also be substantially matched to that of the particles. As used herein, the refractive index of a suspending fluid "is substantially matched" to that of a particle if the difference between their respective refractive indices is between about zero and about 0.3, and is preferably between about 0.05 and about 0.2.
Additionally, the fluid may be chosen to be a poor solvent for some polymers, which is advantageous for use in the fabrication of microparticles because it increases the range of polymeric materials useful in fabricating particles of polymers and pigments. Organic solvents, such as halogenated organic solvents, saturated linear or branched hydrocarbons, silicone oils, and low molecular weight halogen-containing polymers are some useful suspending fluids. The suspending fluid may comprise a single fluid. The fluid will, however, often be a blend of more than one fluid in order to tune its chemical and physical properties. Furthermore, the fluid may contain surface modifiers to modify the surface energy or charge of the electrophoretic particle or bounding capsule. Reactants or solvents for the microencapsulation process (oil soluble monomers, for example) can also be contained in the suspending fluid. Charge control agents can also be added to the suspending fluid.
Useful organic solvents include, but are not limited to, epoxides, such as, for example, decane epoxide and dodecane epoxide; vinyl ethers, such as, for example, cyclohexyl vinyl ether and Decave® (International Flavors & Fragrances, Inc., New York, NY); and aromatic hydrocarbons, such as, for example, toluene and naphthalene. Useful halogenated organic solvents include, but are not limited to, tetrafluorodibromoethylene, tetrachloroethylene, trifluorochloroethylene, 1,2,4-trichlorobenzene, carbon tetrachloride. These materials have high densities. Useful hydrocarbons include, but are not limited to, dodecane, tetradecane, the aliphatic hydrocarbons in the Isopar® series (Exxon, Houston, TX), Norpar® ( series of normal paraffinic liquids), Shell-Sol® (Shell, Houston, TX), and Sol-Trol® (Shell), naphtha, and other petroleum solvents. These materials usually have low densities. Useful examples of silicone oils include, but are not limited to, octamethyl cyclosiloxane and higher molecular weight cyclic siloxanes, poly (methyl phenyl siloxane), hexamethyldisiloxane, and polydimethylsiloxane.
These materials usually have low densities. Useful low molecular weight halogen-containing polymers include, but are not limited to, poly(chlorotrifluoroethylene) polymer (Halogenated hydrocarbon Inc., River Edge, NJ), Galden (a perfluorinated ether from Ausimont, Morristown,
NJ), or Krytox® from DuPont (Wilmington, DE). In a preferred embodiment, the suspending
fluid is a poly(chlorotrifluoroethylene) polymer. In a particularly preferred embodiment, this polymer has a degree of polymerization from about 2 to about 10. Many of the above materials are available in a range of viscosities, densities, and boiling points.
The fluid must be capable of being formed into small droplets prior to a capsule being formed. Processes for forming small droplets include flow-through jets, membranes, nozzles, or orifices, as well as shear-based emulsifying schemes. The formation of small drops may be assisted by electrical or sonic fields. Surfactants and polymers can be used to aid in the stabilization and emulsification of the droplets in the case of an emulsion type encapsulation. A preferred surfactant for use in displays of the invention is sodium dodecylsulfate.
It can be advantageous in some displays for the suspending fluid to contain an optically absorbing dye. This dye must be soluble in the fluid, but will generally be insoluble in the other components of the capsule. There is much flexibility in the choice of dye material. The dye can be a pure compound, or blends of dyes to achieve a particular color, including black. The dyes can be fluorescent, which would produce a display in which the fluorescence properties depend on the position of the particles. The dyes can be photoactive, changing to another color or becoming colorless upon irradiation with either visible or ultraviolet light, providing another means for obtaining an optical response. Dyes could also be polymerizable, forming a solid absorbing polymer inside the bounding shell. There are many dyes that can be chosen for use in encapsulated electrophoretic display.
Properties important here include light fastness, solubility in the suspending liquid, color, and cost. These are generally from the class of azo, anthraquinone, and triphenylmethane type dyes and may be chemically modified so as to increase the solubility in the oil phase and reduce the adsorption by the particle surface.
A number of dyes already known to those skilled in the art of electrophoretic displays will prove useful. Useful azo dyes include, but are not limited to: the Oil Red dyes, and the Sudan Red and Sudan Black series of dyes. Useful anthraquinone dyes include, but are not limited to: the Oil Blue dyes, and the Macrolex Blue series of dyes. Useful triphenylmethane dyes include, but are not limited to, Michler's hydrol, Malachite Green, Crystal Violet, and Auramine O. C. Charge Control Agents and Particle Stabilizers
Charge control agents are used to provide good electrophoretic mobility to the electrophoretic particles. Stabilizers are used to prevent agglomeration of the electrophoretic particles, as well as prevent the electrophoretic particles from irreversibly depositing onto the capsule wall. Either component can be constructed from materials across a wide range of molecular weights (low molecular weight, oligomeric, or polymeric), and may be pure or a mixture. In particular, suitable charge control agents are generally adapted from the liquid toner art. The charge control agent used to modify and/or stabilize the particle surface charge is applied as generally known in the arts of liquid toners, electrophoretic displays, non-aqueous paint dispersions, and engine-oil additives. In all of these arts, charging species may be added to non-aqueous media in order to increase electrophoretic mobility or increase electrostatic stabilization. The materials can improve steric stabilization as well. Different theories of charging are postulated, including selective ion adsorption, proton transfer, and contact electrification. An optional charge control agent or charge director may be used. These constituents typically consist of low molecular weight surfactants, polymeric agents, or blends of one or more components and serve to stabilize or otherwise modify the sign and/or magnitude of the charge on the electrophoretic particles. The charging properties of the pigment itself may be accounted for by taking into account the acidic or basic surface properties of the pigment, or the charging sites may take place on the carrier resin surface (if present), or a combination of the two.
Additional pigment properties which may be relevant are the particle size distribution, the chemical composition, and the lightfastness. The charge control agent used to modify and/or stabilize the particle surface charge is applied as generally known in the arts of liquid toners, electrophoretic displays, non-aqueous paint dispersions, and engine-oil additives. In all of these arts, charging species may be added to non-aqueous media in order to increase electrophoretic mobility or increase electrostatic stabilization. The materials can improve steric stabilization as well. Different theories of charging are postulated, including selective ion adsorption, proton transfer, and contact electrification. Charge adjuvants may also be added. These materials increase the effectiveness of the charge control agents or charge directors. The charge adjuvant may be a polyhydroxy compound or an aminoalcohol compound, which are preferably soluble in the suspending fluid in an amount of at least 2% by weight. Examples of polyhydroxy compounds which contain at least two hydroxyl groups include, but are not limited to, ethylene glycol, 2,4,7,9-tetramethyl-decyne-4,7- diol, poly(propylene glycol), pentaethylene glycol, tripropylene glycol, triethylene glycol, glycerol, pentaerythritol, glycerol tris(12-hydroxystearate), propylene glycerol monohydroxystearate, and ethylene glycol monohydroxystearate. Examples of aminoalcohol compounds which contain at least one alcohol function and one amine function in the same molecule include, but are not limited to, triisopropanolamine, triethanolamine, ethanolamine, 3- amino- 1-propanol, o-aminophenol, 5-amino-l-pentanol, and tetrakis(2-hydroxyethyl)ethylene- diamine. The charge adjuvant is preferably present in the suspending fluid in an amount of about
1 to about 100 mg/g of the particle mass, and more preferably about 50 to about 200 mg/g.
The surface of the particle may also be chemically modified to aid dispersion, to improve surface charge, and to improve the stability of the dispersion, for example. Surface modifiers include organic siloxanes, organohalogen silanes and other functional silane coupling agents
(Dow Coming® Z-6070, Z-6124, and 3 additive, Midland, MI); organic titanates and zirconates
(Tyzor® TOT, TBT, and TE Series, DuPont, Wilmington, DE); hydrophobing agents, such as long chain (C12 to C50) alkyl and alkyl benzene sulphonic acids, fatty amines or diamines and their salts or quarternary derivatives; and amphipathic polymers which can be covalently bonded to the particle surface.
In general, it is believed that charging results as an acid-base reaction between some moiety present in the continuous phase and the particle surface. Thus useful materials are those which are capable of participating in such a reaction, or any other charging reaction as known in the art. Different non- limiting classes of charge control agents which are useful include organic sulfates or sulfonates, metal soaps, block or comb copolymers, organic amides, organic zwitterions, and organic phosphates and phosphonates. Useful organic sulfates and sulfonates include, but are not limited to, sodium bis(2-ethyl hexyl) sulfosuccinate, calcium dodecyl benzene sulfonate, calcium petroleum sulfonate, neutral or basic barium dinonylnaphthalene sulfonate, neutral or basic calcium dinonylnaphthalene sulfonate, dodecylbenzenesulfonic acid sodium salt, and ammonium lauryl sulphate. Useful metal soaps include, but are not limited to, basic or neutral barium petronate, calcium petronate, Co-, Ca-, Cu-, Mn-, Ni-, Zn-, and Fe- salts of naphthenic acid, Ba-, A1-, Zn-, Cu-, Pb-, and Fe- salts of stearic acid, divalent and trivalent metal carboxylates, such as aluminum tristearate, aluminum octanoate, lithium heptanoate, iron stearate, iron distearate, barium stearate, chromium stearate, magnesium octanoate, calcium stearate, iron naphthenate, and zinc naphthenate, Mn- and Zn- heptanoate, and Ba-, A1-, Co-,
Mn-, and Zn- octanoate. Useful block or comb copolymers include, but are not limited to, AB diblock copolymers of (A) polymers of 2-(N,N)-dimethylaminoethyl methacrylate quaternized with methyl-p-toluenesulfonate and (B) poly-2-ethylhexyl methacrylate, and comb graft copolymers with oil soluble tails of poly (12-hydroxystearic acid) and having a molecular weight of about 1800, pendant on an oil-soluble anchor group of poly (methyl methacrylate-methacrylic acid). Useful organic amides include, but are not limited to, polyisobutylene succinimides such as OLOA 371 and 1200, and N-vinyl pyrrolidone polymers. Useful organic zwitterions include, but are not limited to, lecithin. Useful organic phosphates and phosphonates include, but are not limited to, the sodium salts of phosphated mono- and di-glycerides with saturated and unsaturated acid substituents.
Particle dispersion stabilizers may be added to prevent particle flocculation or attachment to the capsule walls. For the typical high resistivity liquids used as suspending fluids in electrophoretic displays, nonaqueous surfactants may be used. These include, but are not limited to, glycol ethers, acetylenic glycols, alkanolamides, sorbitol derivatives, alkyl amines, quaternary amines, imidazolines, dialkyl oxides, and sulfosuccinates.
D. Encapsulation
There is a long and rich history to encapsulation, with numerous processes and polymers having proven useful in creating capsules. Encapsulation of the internal phase may be accomplished in a number of different ways. Numerous suitable procedures for microencapsulation are detailed in both Microencapsulation, Processes and Applications, (I. E. Vandegaer, ed.), Plenum Press, New York, NY (1974) and Gutcho, Microcapsules and Mircroencapsulation Techniques, Nuyes Data Corp., Park Ridge, N.J. (1976). The processes fall into several general categories, all of which can be applied to the present invention: interfacial polymerization, in situ polymerization, physical processes, such as coextrusion and other phase separation processes, in-liquid curing, and simple/complex coacervation.
Numerous materials and processes should prove useful in formulating displays of the present invention. Useful materials for simple coacervation processes include, but are not limited to, gelatin, polyvinyl alcohol, polyvinyl acetate, and cellulosic derivatives, such as, for example, carboxymethylcellulose. Useful materials for complex coacervation processes include, but are not limited to, gelatin, acacia, carageenan, carboxymethylcellulose, hydrolyzed styrene anhydride copolymers, agar, alginate, casein, albumin, methyl vinyl ether co-maleic anhydride, and cellulose phthalate. Useful materials for phase separation processes include, but are not limited to, polystyrene, PMMA, polyethyl methacrylate, polybutyl methacrylate, ethyl cellulose, polyvinyl pyridine, and poly acrylonitrile. Useful materials for in situ polymerization processes include, but are not limited to, polyhydroxyamides, with aldehydes, melamine, or urea and formaldehyde; water-soluble oligomers of the condensate of melamine, or urea and formaldehyde; and vinyl monomers, such as, for example, styrene, MMA and acrylonitrile. Finally, useful materials for interfacial polymerization processes include, but are not limited to, diacyl chlorides, such as, for example, sebacoyl, adipoyl, and di- or poly- amines or alcohols, and isocyanates. Useful emulsion polymerization materials may include, but are not limited to, styrene, vinyl acetate, acrylic acid, butyl acrylate, t-butyl acrylate, methyl methacrylate, and butyl methacrylate. Capsules produced may be dispersed into a curable carrier, resulting in an ink which may be printed or coated on large and arbitrarily shaped or curved surfaces using conventional printing and coating techniques.
In the context of the present invention, one skilled in the art will select an encapsulation procedure and wall material based on the desired capsule properties. These properties include the distribution of capsule radii; electrical, mechanical, diffusion, and optical properties of the capsule wall; and chemical compatibility with the internal phase of the capsule.
The capsule wall generally has a high electrical resistivity. Although it is possible to use walls with relatively low resistivities, this may limit performance in requiring relatively higher addressing voltages. The capsule wall should also be mechanically strong (although if the finished capsule powder is to be dispersed in a curable polymeric binder for coating, mechanical strength is not as critical). The capsule wall should generally not be porous. If, however, it is desired to use an encapsulation procedure that produces porous capsules, these can be overcoated in a post-processing step (i.e., a second encapsulation). Moreover, if the capsules are to be dispersed in a curable binder, the binder will serve to close the pores. The capsule walls should be optically clear. The wall material may, however, be chosen to match the refractive index of the internal phase of the capsule (i.e., the suspending fluid) or a binder in which the capsules are to be dispersed. For some applications (e.g., interposition between two fixed electrodes), monodispersed capsule radii are desirable.
An encapsulation procedure involves a polymerization between urea and formaldehyde in an aqueous phase of an oil/water emulsion in the presence of a negatively charged, carboxyl- substituted, linear hydrocarbon polyelectrolyte material. The resulting capsule wall is a urea/formaldehyde copolymer, which discretely encloses the internal phase. The capsule is clear, mechanically strong, and has good resistivity properties.
The related technique of in situ polymerization utilizes an oil/water emulsion, which is formed by dispersing the electrophoretic composition (i. e. , the dielectric liquid containing a suspension of the pigment particles) in an aqueous environment. The monomers polymerize to form a polymer with higher affinity for the internal phase than for the aqueous phase, thus condensing around the emulsified oily droplets. In one especially useful in situ polymerization processes, urea and formaldehyde condense in the presence of poly( acrylic acid) (See, e.g., U.S. Patent No. 4,001 , 140). In other useful process, any of a variety of cross-linking agents borne in aqueous solution is deposited around microscopic oil droplets. Such cross-linking agents include aldehydes, especially formaldehyde, glyoxal, or glutaraldehyde; alum; zirconium salts; and poly isocyanates. The entire disclosures of the 4,001,140 and 4,273,672 patents are hereby incorporated by reference herein.
The coacervation approach also utilizes an oil/water emulsion. One or more colloids are coacervated (i.e., agglomerated) out of the aqueous phase and deposited as shells around the oily droplets through control of temperature, pH and/or relative concentrations, thereby creating the microcapsule. Materials suitable for coacervation include gelatins and gum arable.
The interfacial polymerization approach relies on the presence of an oil-soluble monomer in the electrophoretic composition, which once again is present as an emulsion in an aqueous phase. The monomers in the minute hydrophobic droplets react with a monomer introduced into the aqueous phase, polymerizing at the interface between the droplets and the surrounding aqueous medium and forming shells around the droplets. Although the resulting walls are relatively thin and may be permeable, this process does not require the elevated temperatures characteristic of some other processes, and therefore affords greater flexibility in terms of choosing the dielectric liquid.
Coating aids can be used to improve the uniformity and quality of the coated or printed electrophoretic ink material. Wetting agents are typically added to adjust the interfacial tension at the coating/substrate interface and to adjust the liquid/air surface tension. Wetting agents include, but are not limited to, anionic and cationic surfactants, and nonionic species, such as silicone or fluoropolymer based materials. Dispersing agents may be used to modify the interfacial tension between the capsules and binder, providing control over flocculation and particle settling. Surface tension modifiers can be added to adjust the air/ink interfacial tension.
Polysiloxanes are typically used in such an application to improve surface leveling while minimizing other defects within the coating. Surface tension modifiers include, but are not limited to, fluorinated surfactants, such as, for example, the Zonyl series from DuPont (Wilmington, DE), the Fluorod® series from 3M (St. Paul, MN), and the fluoroakyl series from Autochem (Glen Rock, NJ); siloxanes, such as, for example, Silwet from Union Carbide (Danbury, CT); and polyethoxy and polypropoxy alcohols. Antifoams, such as silicone and silicone-free polymeric materials, may be added to enhance the movement of air from within the ink to the surface and to facilitate the rupture of bubbles at the coating surface. Other useful antifoams include, but are not limited to, glyceryl esters, polyhydric alcohols, compounded antifoams, such as oil solutions of alkyl benzenes, natural fats, fatty acids, and metallic soaps, and silicone antifoaming agents made from the combination of dimethyl siloxane polymers and silica. Stabilizers such as uv-absorbers and antioxidants may also be added to improve the lifetime of the ink. Other additives to control properties like coating viscosity and foaming can also be used in the coating fluid. Stabilizers (UV-absorbers, antioxidants) and other additives which could prove useful in practical materials. E. Binder Material
The binder is used as a non-conducting, adhesive medium supporting and protecting the capsules, as well as binding the electrode materials to the capsule dispersion. Binders are available in many forms and chemical types. Among these are water-soluble polymers, water- borne polymers, oil-soluble polymers, thermoset and thermoplastic polymers, and radiation- cured polymers.
Among the water-soluble polymers are the various polysaccharides, the polyvinyl alcohols, N-methylpyrrolidone, N-vinylpyrrolidone, the various Carbowax® species (Union Carbide, Danbury, CT), and poly-2-hydroxyethylacrylate.
The water-dispersed or water-bome systems are generally latex compositions, typified by the Neorez® and Neocryl® resins (Zeneca Resins, Wilmington, MA), Acrysol® (Rohm and Haas,
Philadelphia, PA), Bayhydrol® (Bayer, Pittsburgh, PA), and the Cytec Industries (West Paterson, NJ) HP line. These are generally latices of polyurethanes, occasionally compounded with one or more of the acrylics, polyesters, polycarbonates or silicones, each lending the final cured resin in a specific set of properties defined by glass transition temperature, degree of "tack," softness, clarity, flexibility, water permeability and solvent resistance, elongation modulus and tensile strength, thermoplastic flow, and solids level. Some water-borne systems can be mixed with reactive monomers and catalyzed to form more complex resins. Some can be further cross- linked by the use of a crosslinking reagent, such as an aziridine, for example, which reacts with carboxyl groups.
A typical application of a water-borne resin and aqueous capsules follows. A volume of particles is centrifuged at low speed to separate excess water. After a given centrifugation process, for example 10 minutes at 60 x G, the capsules are found at the bottom of the centrifuge tube, while the water portion is at the top. The water portion is carefully removed (by decanting or pipetting). The mass of the remaining capsules is measured, and a mass of resin is added such that the mass of resin is between one eighth and one tenth of the weight of the capsules. This mixture is gently mixed on an oscillating mixer for approximately one half hour. After about one half hour, the mixture is ready to be coated onto the appropriate substrate.
The thermoset systems are exemplified by the family of epoxies. These binary systems can vary greatly in viscosity, and the reactivity of the pair determines the "pot life" of the mixture. If the pot life is long enough to allow a coating operation, capsules may be coated in an ordered arrangement in a coating process prior to the resin curing and hardening. Thermoplastic polymers, which are often polyesters, are molten at high temperatures. A typical application of this type of product is hot-melt glue. A dispersion of heat-resistant capsules could be coated in such a medium. The solidification process begins during cooling, and the final hardness, clarity and flexibility are affected by the branching and molecular weight of the polymer. Oil or solvent-soluble polymers are often similar in composition to the water-borne system, with the obvious exception of the water itself. The latitude in formulation for solvent systems is enormous, limited only by solvent choices and polymer solubility. Of considerable concern in solvent-based systems is the viability of the capsule itself - the integrity of the capsule wall cannot be compromised in any way by the solvent. Radiation cure resins are generally found among the solvent-based systems. Capsules may be dispersed in such a medium and coated, and the resin may then be cured by a timed exposure to a threshold level of ultraviolet radiation, either long or short wavelength. As in all cases of curing polymer resins, final properties are determined by the branching and molecular weights of the monomers, oligomers and crosslinkers. A number of "water-reducible" monomers and oligomers are, however, marketed. In the strictest sense, they are not water soluble, but water is an acceptable diluent at low concentrations and can be dispersed relatively easily in the mixture. Under these circumstances, water is used to reduce the viscosity (initially from thousands to hundreds of thousands centipoise). Water-based capsules, such as those made from a protein or polysaccharide material, for example, could be dispersed in such a medium and coated, provided the viscosity could be sufficiently lowered. Curing in such systems is generally by ultraviolet radiation.
While the invention has been particularly shown and described with reference to specific preferred embodiments, it should be understood by those skilled in the art that various changes in form and detail may be made therein without departing from the spirit and scope of the invention as defined by the appended claims.

Claims

What is claimed is: 1. A process for forming a semiconductor film comprising the steps of: a) providing a substrate comprising an organic semiconductor film; b) providing a solvent; c) vaporizing at least a portion of the solvent such that the vapor comes into contact with the substrate; and d) controlling a chemical potential of the vapor molecules to provide an interaction with the organic semiconductor film to alter a molecular arrangement of the organic semiconductor film. 2. The process of claim 1 wherein step b) comprises placing the substrate on a first stage and controlling a temperature of the first stage and step c) comprises placing the solvent on a second stage and controlling a temperature of the second stage. 3. The process of claim 1 further comprising the step off) annealing the substrate. 4. The process of claim 3 wherein step f) comprises annealing the substrate for a period ranging from about five minutes to about one day. 5. The process of claim 3 wherein annealing the substrate comprises increasing a temperature of the substrate to within a range of about 80°C to 150°C. 6. The process of claim 3 wherein step e) comprises controlling the chemical potential of the vapor by controlling a temperature of the solvent and step f) comprises annealing the substrate with a high enough substrate temperature to avoid condensation of the vapor. 7. The process of claim 6 wherein a temperature difference between the solvent and the substrate is substantially small. 8. The process of claim 1 wherein step e) comprises controlling the chemical potential of the vapor by controlling a temperature of the solvent. 9. The process of claim 8 wherein step e) comprises controlling a temperature of the solvent in a range from about 0°C to about 50°C. 10. The process of claim 1 wherein step e) comprises controlling the chemical potential of the vapor to prevent dewetting of the organic semiconductor film.
11. The process of claim 1 further comprising the step of placing the substrate in a sufficiently sealed chamber. 12. The process of claim 11 wherein step e) comprises controlling the chemical potential of the vapor by controlling a temperature of the chamber. 13. The process of claim 11 further comprising evacuating the chamber prior to placing the substrate and the solvent in the chamber. 14. The process of claim 11 further comprising purging the chamber with gas prior to placing the substrate and the solvent in the chamber. 15. The process of claim 1 wherein the solvent is one which can dissolve the organic semiconductor film. 16. The process of claim 1 wherein the solvent is one which can swell the organic semiconductor film. 17. The process of claim 1 wherein step a) comprises providing the substrate comprising a poly(alkylthiophene) semiconductor film and step c) comprises providing a solvent comprising toluene, chloroform, or xylene. 18. An encapsulated electrophoretic display comprising: an encapsulated electrophoretic display medium comprising a plurality of microcapsules, each capsule comprising one of electrophoretic particles, suspended particles and a bichromal sphere; and an active matrix addressing logic adjacent to the display medium and comprising an array of organic thin-film transistors formed by the method comprising the steps of: a) providing a substrate comprising an organic semiconductor film; b) providing a solvent; c) vaporizing at least a portion of the solvent such that the vapor comes into contact with the substrate; and d) controlling a chemical potential of the vapor molecules to provide an interaction with the organic semiconductor film to alter a molecular arrangement of the organic semiconductor film. AMENDED CLAIMS
[received by the International Bureau on 22 January 2001 (22.01.01); original claims 1 - 4, 6, 8 - 10 amended ; new claims 19 - 20 added; remaining claims unchanged (3 pages)] 1. A process for forming a semiconductor film comprising the steps of: a) providing a substrate comprising a polymeric organic semiconductor film; b) providing a solvent; c) vaporizing at least a portion of the solvent such that the vapor comes into contact with the substrate; and d) controlling a chemical potential of the vapor to provide an interaction with the polymeric organic semiconductor film to alter a molecular arrangement of the polymeric organic semiconductor film.
2. The process of claim 1 wherein step a) comprises placing the substrate on a first stage and controlling a temperature of the first stage and step c) comprises placing the solvent on a second stage and controlling a temperature of the second stage.
3. The process of claim 1 further comprising the step of e) annealing the substrate.
4. The process of claim 3 wherein step e) comprises annealing the substrate for a period ranging from about five minutes to about one day.
5. The process of claim 3 wherein annealing the substrate comprises increasing a temperature of the substrate to within a range of about 80°C to 150°C.
6. The process of claim 3 wherein step d) comprises controlling the chemical potential of the vapor by controlling a temperature of the solvent and step e) comprises annealing the substrate with a high enough substrate temperature to avoid condensation of the vapor.
7. The process of claim 6 wherein a temperature difference between the solvent and the substrate is substantially small.
8. The process of claim 1 wherein step d) comprises controlling the chemical potential of the vapor by controlling a temperature of the solvent.
9. The process of claim 8 wherein step d) comprises controlling a temperature of the solvent in a range from about 0°C to about 50°C.
10. The process of claim 1 wherein step d) comprises controlling the chemical potential of the vapor to prevent dewetting of the polymeric organic semiconductor film.
11. The process of claim 1 further comprising the step of placing the substrate in a sufficiently sealed chamber.
12. The process of claim 11 wherein step d) comprises controlling the chemical potential of the vapor by controlling a temperature of the chamber.
13. The process of claim 11 further comprising evacuating the chamber prior to placing the substrate and the solvent in the chamber.
14. The process of claim 1 1 further comprising purging the chamber with gas prior to placing the substrate and the solvent in the chamber.
15. The process of claim 1 wherein the solvent is one which can dissolve the polymeric organic semiconductor film.
16. The process of claim 1 wherein the solvent is one which can swell the polymeric organic semiconductor film.
17. The process of claim 1 wherein the polymeric organic semiconductor film comprises poly(alkylthiophene) and the solvent comprises toluene, chloroform, or xylene.
18. An encapsulated electrophoretic display comprising: an encapsulated electrophoretic display medium comprising a plurality of microcapsules, each capsule comprising one of electrophoretic particles, suspended particles and a bichromal sphere; and an active matrix addressing logic adjacent to the display medium and comprising an array of organic thin-film transistors formed by a method comprising the steps of: a) providing a substrate comprising a polymeric organic semiconductor film; b) providing a solvent; c) vaporizing at least a portion of the solvent such that the vapor comes into contact with the substrate; and d) controlling a chemical potential of the vapor molecules to provide an interaction with the polymeric organic semiconductor film to alter a molecular arrangement of the organic semiconductor film.
19. The process of claim 1 wherein the polymeric organic semiconductor film comprises one of poly(alkylthiophene), dihexyl-alfa-sexithiophene, dihexyl-quinquethiophene, alky substituted naphthalenetetracarboxylic diimides or fluoroalkyl substituted naphthalenetetracarboxylic diimides
20. The display of claim 18 wherein the polymeric organic semiconductor film comprises one of poly (alky Ithiophene), dihexyl-alfa-sexithiophene, dihexyl-quinquethiophene, alky substituted naphthalenetetracarboxylic diimides or fluoroalkyl substituted naphthalenetetracarboxylic diimides
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Cited By (3)

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Publication number Priority date Publication date Assignee Title
WO2003007399A2 (en) * 2001-07-09 2003-01-23 Plastic Logic Limited Low melting point polymer alignment
US6885032B2 (en) 2001-11-21 2005-04-26 Visible Tech-Knowledgy, Inc. Display assembly having flexible transistors on a flexible substrate
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Families Citing this family (264)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7999787B2 (en) 1995-07-20 2011-08-16 E Ink Corporation Methods for driving electrophoretic displays using dielectrophoretic forces
US7327511B2 (en) 2004-03-23 2008-02-05 E Ink Corporation Light modulators
US7411719B2 (en) 1995-07-20 2008-08-12 E Ink Corporation Electrophoretic medium and process for the production thereof
US7583251B2 (en) 1995-07-20 2009-09-01 E Ink Corporation Dielectrophoretic displays
US7193625B2 (en) 1999-04-30 2007-03-20 E Ink Corporation Methods for driving electro-optic displays, and apparatus for use therein
US7259744B2 (en) * 1995-07-20 2007-08-21 E Ink Corporation Dielectrophoretic displays
US6866760B2 (en) * 1998-08-27 2005-03-15 E Ink Corporation Electrophoretic medium and process for the production thereof
US8139050B2 (en) 1995-07-20 2012-03-20 E Ink Corporation Addressing schemes for electronic displays
US7079305B2 (en) 2001-03-19 2006-07-18 E Ink Corporation Electrophoretic medium and process for the production thereof
US7848006B2 (en) 1995-07-20 2010-12-07 E Ink Corporation Electrophoretic displays with controlled amounts of pigment
US8040594B2 (en) 1997-08-28 2011-10-18 E Ink Corporation Multi-color electrophoretic displays
US6704133B2 (en) 1998-03-18 2004-03-09 E-Ink Corporation Electro-optic display overlays and systems for addressing such displays
US7075502B1 (en) 1998-04-10 2006-07-11 E Ink Corporation Full color reflective display with multichromatic sub-pixels
WO2000003291A1 (en) 1998-07-08 2000-01-20 E Ink Corporation Methods for achieving improved color in microencapsulated electrophoretic devices
US6265243B1 (en) * 1999-03-29 2001-07-24 Lucent Technologies Inc. Process for fabricating organic circuits
US7012600B2 (en) 1999-04-30 2006-03-14 E Ink Corporation Methods for driving bistable electro-optic displays, and apparatus for use therein
US7119772B2 (en) 1999-04-30 2006-10-10 E Ink Corporation Methods for driving bistable electro-optic displays, and apparatus for use therein
US8009348B2 (en) 1999-05-03 2011-08-30 E Ink Corporation Machine-readable displays
US8115729B2 (en) 1999-05-03 2012-02-14 E Ink Corporation Electrophoretic display element with filler particles
US6881604B2 (en) * 1999-05-25 2005-04-19 Forskarpatent I Uppsala Ab Method for manufacturing nanostructured thin film electrodes
US7893435B2 (en) 2000-04-18 2011-02-22 E Ink Corporation Flexible electronic circuits and displays including a backplane comprising a patterned metal foil having a plurality of apertures extending therethrough
US6816147B2 (en) 2000-08-17 2004-11-09 E Ink Corporation Bistable electro-optic display, and method for addressing same
JP2004507096A (en) * 2000-08-18 2004-03-04 シーメンス アクチエンゲゼルシヤフト Organic field effect transistor (OFET), method of manufacturing the organic field effect transistor, integrated circuit formed from the organic field effect transistor, and use of the integrated circuit
US6764367B2 (en) 2000-10-27 2004-07-20 Science Applications International Corporation Liquid manufacturing processes for panel layer fabrication
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US20050156340A1 (en) 2004-01-20 2005-07-21 E Ink Corporation Preparation of capsules
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US6870661B2 (en) * 2001-05-15 2005-03-22 E Ink Corporation Electrophoretic displays containing magnetic particles
US7110163B2 (en) 2001-07-09 2006-09-19 E Ink Corporation Electro-optic display and lamination adhesive for use therein
US6982178B2 (en) 2002-06-10 2006-01-03 E Ink Corporation Components and methods for use in electro-optic displays
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WO2003007066A2 (en) * 2001-07-09 2003-01-23 E Ink Corporation Electro-optical display having a lamination adhesive layer
DE10135640A1 (en) * 2001-07-21 2003-02-06 Covion Organic Semiconductors Organic semiconductor solution used for organic integrated switches, organic field effect transistors, organic thin film transistors, organic solar cells and organic laser diodes contains one or more additives
US6819471B2 (en) * 2001-08-16 2004-11-16 E Ink Corporation Light modulation by frustration of total internal reflection
DE10141624A1 (en) * 2001-08-24 2003-03-06 Covion Organic Semiconductors Solutions of polymeric semiconductors
US6825970B2 (en) * 2001-09-14 2004-11-30 E Ink Corporation Methods for addressing electro-optic materials
US8558783B2 (en) 2001-11-20 2013-10-15 E Ink Corporation Electro-optic displays with reduced remnant voltage
US7528822B2 (en) 2001-11-20 2009-05-05 E Ink Corporation Methods for driving electro-optic displays
US9412314B2 (en) 2001-11-20 2016-08-09 E Ink Corporation Methods for driving electro-optic displays
CN102789764B (en) 2001-11-20 2015-05-27 伊英克公司 Methods for driving bistable electro-optic displays
US7952557B2 (en) 2001-11-20 2011-05-31 E Ink Corporation Methods and apparatus for driving electro-optic displays
US9530363B2 (en) 2001-11-20 2016-12-27 E Ink Corporation Methods and apparatus for driving electro-optic displays
US8593396B2 (en) 2001-11-20 2013-11-26 E Ink Corporation Methods and apparatus for driving electro-optic displays
US8125501B2 (en) 2001-11-20 2012-02-28 E Ink Corporation Voltage modulated driver circuits for electro-optic displays
US6950220B2 (en) * 2002-03-18 2005-09-27 E Ink Corporation Electro-optic displays, and methods for driving same
WO2003082456A1 (en) * 2002-03-25 2003-10-09 Gyricon Media, Inc. Continuous combined pigmented wax compounding and bichromal sphere fabrication process
US7118943B2 (en) * 2002-04-22 2006-10-10 Seiko Epson Corporation Production method of a thin film device, production method of a transistor, electro-optical apparatus and electronic equipment
US7190008B2 (en) 2002-04-24 2007-03-13 E Ink Corporation Electro-optic displays, and components for use therein
KR100867286B1 (en) * 2002-04-24 2008-11-06 이 잉크 코포레이션 Electronic displays
US7223672B2 (en) 2002-04-24 2007-05-29 E Ink Corporation Processes for forming backplanes for electro-optic displays
US6958848B2 (en) 2002-05-23 2005-10-25 E Ink Corporation Capsules, materials for use therein and electrophoretic media and displays containing such capsules
US9470950B2 (en) 2002-06-10 2016-10-18 E Ink Corporation Electro-optic displays, and processes for the production thereof
US7583427B2 (en) 2002-06-10 2009-09-01 E Ink Corporation Components and methods for use in electro-optic displays
US7649674B2 (en) 2002-06-10 2010-01-19 E Ink Corporation Electro-optic display with edge seal
US7843621B2 (en) 2002-06-10 2010-11-30 E Ink Corporation Components and testing methods for use in the production of electro-optic displays
US7110164B2 (en) 2002-06-10 2006-09-19 E Ink Corporation Electro-optic displays, and processes for the production thereof
US8049947B2 (en) 2002-06-10 2011-11-01 E Ink Corporation Components and methods for use in electro-optic displays
US8363299B2 (en) 2002-06-10 2013-01-29 E Ink Corporation Electro-optic displays, and processes for the production thereof
US20080024482A1 (en) 2002-06-13 2008-01-31 E Ink Corporation Methods for driving electro-optic displays
US20040031167A1 (en) * 2002-06-13 2004-02-19 Stein Nathan D. Single wafer method and apparatus for drying semiconductor substrates using an inert gas air-knife
JP4651383B2 (en) 2002-06-13 2011-03-16 イー インク コーポレイション Method for driving electro-optic display device
US6784017B2 (en) * 2002-08-12 2004-08-31 Precision Dynamics Corporation Method of creating a high performance organic semiconductor device
WO2004023202A1 (en) * 2002-09-03 2004-03-18 E Ink Corporation Electrophoretic medium with gaseous suspending fluid
US7839564B2 (en) 2002-09-03 2010-11-23 E Ink Corporation Components and methods for use in electro-optic displays
EP3056941B1 (en) 2002-09-03 2019-01-09 E Ink Corporation Electro-phoretic medium
US20130063333A1 (en) 2002-10-16 2013-03-14 E Ink Corporation Electrophoretic displays
KR20050086917A (en) 2002-12-16 2005-08-30 이 잉크 코포레이션 Backplanes for electro-optic displays
US6922276B2 (en) * 2002-12-23 2005-07-26 E Ink Corporation Flexible electro-optic displays
US6987603B2 (en) 2003-01-31 2006-01-17 E Ink Corporation Construction of electrophoretic displays
TW582059B (en) * 2003-03-11 2004-04-01 Ind Tech Res Inst Organic component, method for forming organic semiconductor layer with aligned molecules, and method for forming organic component
US7910175B2 (en) 2003-03-25 2011-03-22 E Ink Corporation Processes for the production of electrophoretic displays
US7339715B2 (en) 2003-03-25 2008-03-04 E Ink Corporation Processes for the production of electrophoretic displays
EP2273307B1 (en) 2003-03-27 2012-08-22 E Ink Corporation Electrophoretic medium for an electrophoretic display
US10726798B2 (en) 2003-03-31 2020-07-28 E Ink Corporation Methods for operating electro-optic displays
WO2005006290A1 (en) 2003-06-30 2005-01-20 E Ink Corporation Methods for driving electro-optic displays
US8174490B2 (en) 2003-06-30 2012-05-08 E Ink Corporation Methods for driving electrophoretic displays
US20050122563A1 (en) 2003-07-24 2005-06-09 E Ink Corporation Electro-optic displays
EP2698784B1 (en) 2003-08-19 2017-11-01 E Ink Corporation Electro-optic display
WO2005029458A1 (en) 2003-09-19 2005-03-31 E Ink Corporation Methods for reducing edge effects in electro-optic displays
US8319759B2 (en) 2003-10-08 2012-11-27 E Ink Corporation Electrowetting displays
CN101930118B (en) 2003-10-08 2013-05-29 伊英克公司 Electro-wetting displays
US7551346B2 (en) 2003-11-05 2009-06-23 E Ink Corporation Electro-optic displays, and materials for use therein
US7672040B2 (en) 2003-11-05 2010-03-02 E Ink Corporation Electro-optic displays, and materials for use therein
US7173752B2 (en) 2003-11-05 2007-02-06 E Ink Corporation Electro-optic displays, and materials for use therein
US8177942B2 (en) 2003-11-05 2012-05-15 E Ink Corporation Electro-optic displays, and materials for use therein
US20110164301A1 (en) 2003-11-05 2011-07-07 E Ink Corporation Electro-optic displays, and materials for use therein
US8928562B2 (en) 2003-11-25 2015-01-06 E Ink Corporation Electro-optic displays, and methods for driving same
JP4790622B2 (en) 2003-11-26 2011-10-12 イー インク コーポレイション Low residual voltage electro-optic display
US7206119B2 (en) 2003-12-31 2007-04-17 E Ink Corporation Electro-optic displays, and method for driving same
US7075703B2 (en) 2004-01-16 2006-07-11 E Ink Corporation Process for sealing electro-optic displays
US7388572B2 (en) 2004-02-27 2008-06-17 E Ink Corporation Backplanes for electro-optic displays
US7492339B2 (en) 2004-03-26 2009-02-17 E Ink Corporation Methods for driving bistable electro-optic displays
US8289250B2 (en) 2004-03-31 2012-10-16 E Ink Corporation Methods for driving electro-optic displays
US11250794B2 (en) 2004-07-27 2022-02-15 E Ink Corporation Methods for driving electrophoretic displays using dielectrophoretic forces
US20080136774A1 (en) 2004-07-27 2008-06-12 E Ink Corporation Methods for driving electrophoretic displays using dielectrophoretic forces
WO2006015044A1 (en) 2004-07-27 2006-02-09 E Ink Corporation Electro-optic displays
US7105375B2 (en) * 2004-07-30 2006-09-12 Xerox Corporation Reverse printing
US7453445B2 (en) 2004-08-13 2008-11-18 E Ink Corproation Methods for driving electro-optic displays
US7230751B2 (en) 2005-01-26 2007-06-12 E Ink Corporation Electrophoretic displays using gaseous fluids
WO2007002452A2 (en) 2005-06-23 2007-01-04 E Ink Corporation Edge seals and processes for electro-optic displays
KR20080015507A (en) 2005-10-18 2008-02-19 이 잉크 코포레이션 Components for electro-optic displays
US20080043318A1 (en) 2005-10-18 2008-02-21 E Ink Corporation Color electro-optic displays, and processes for the production thereof
US7843624B2 (en) 2006-03-08 2010-11-30 E Ink Corporation Electro-optic displays, and materials and methods for production thereof
US8390301B2 (en) 2006-03-08 2013-03-05 E Ink Corporation Electro-optic displays, and materials and methods for production thereof
TWI350793B (en) 2006-03-08 2011-10-21 E Ink Corp Methods for production of electro-optic displays
US8610988B2 (en) 2006-03-09 2013-12-17 E Ink Corporation Electro-optic display with edge seal
US7952790B2 (en) 2006-03-22 2011-05-31 E Ink Corporation Electro-optic media produced using ink jet printing
US7903319B2 (en) 2006-07-11 2011-03-08 E Ink Corporation Electrophoretic medium and display with improved image stability
US8018640B2 (en) 2006-07-13 2011-09-13 E Ink Corporation Particles for use in electrophoretic displays
US7492497B2 (en) 2006-08-02 2009-02-17 E Ink Corporation Multi-layer light modulator
JP5023630B2 (en) * 2006-09-15 2012-09-12 三菱化学株式会社 Method for manufacturing organic semiconductor element
US7477444B2 (en) 2006-09-22 2009-01-13 E Ink Corporation & Air Products And Chemical, Inc. Electro-optic display and materials for use therein
US7986450B2 (en) 2006-09-22 2011-07-26 E Ink Corporation Electro-optic display and materials for use therein
US7649666B2 (en) 2006-12-07 2010-01-19 E Ink Corporation Components and methods for use in electro-optic displays
US7688497B2 (en) 2007-01-22 2010-03-30 E Ink Corporation Multi-layer sheet for use in electro-optic displays
EP2111562B1 (en) 2007-01-22 2018-09-19 E Ink Corporation Multi-layer sheet for use in electro-optic displays
US8394483B2 (en) 2007-01-24 2013-03-12 Micron Technology, Inc. Two-dimensional arrays of holes with sub-lithographic diameters formed by block copolymer self-assembly
US7826129B2 (en) 2007-03-06 2010-11-02 E Ink Corporation Materials for use in electrophoretic displays
US8083953B2 (en) 2007-03-06 2011-12-27 Micron Technology, Inc. Registered structure formation via the application of directed thermal energy to diblock copolymer films
US8557128B2 (en) * 2007-03-22 2013-10-15 Micron Technology, Inc. Sub-10 nm line features via rapid graphoepitaxial self-assembly of amphiphilic monolayers
US8294139B2 (en) 2007-06-21 2012-10-23 Micron Technology, Inc. Multilayer antireflection coatings, structures and devices including the same and methods of making the same
US8097175B2 (en) 2008-10-28 2012-01-17 Micron Technology, Inc. Method for selectively permeating a self-assembled block copolymer, method for forming metal oxide structures, method for forming a metal oxide pattern, and method for patterning a semiconductor structure
US7959975B2 (en) * 2007-04-18 2011-06-14 Micron Technology, Inc. Methods of patterning a substrate
US8372295B2 (en) 2007-04-20 2013-02-12 Micron Technology, Inc. Extensions of self-assembled structures to increased dimensions via a “bootstrap” self-templating method
CN101681211A (en) 2007-05-21 2010-03-24 伊英克公司 Methods for driving video electro-optic displays
US8404124B2 (en) 2007-06-12 2013-03-26 Micron Technology, Inc. Alternating self-assembling morphologies of diblock copolymers controlled by variations in surfaces
US8080615B2 (en) 2007-06-19 2011-12-20 Micron Technology, Inc. Crosslinkable graft polymer non-preferentially wetted by polystyrene and polyethylene oxide
US9199441B2 (en) 2007-06-28 2015-12-01 E Ink Corporation Processes for the production of electro-optic displays, and color filters for use therein
WO2009006248A1 (en) 2007-06-29 2009-01-08 E Ink Corporation Electro-optic displays, and materials and methods for production thereof
US8902153B2 (en) 2007-08-03 2014-12-02 E Ink Corporation Electro-optic displays, and processes for their production
US20090122389A1 (en) 2007-11-14 2009-05-14 E Ink Corporation Electro-optic assemblies, and adhesives and binders for use therein
WO2009120394A2 (en) * 2008-01-04 2009-10-01 Massachusetts Institute Of Technology Method and apparatus for forming structures of polymer nanobeads
US8999492B2 (en) 2008-02-05 2015-04-07 Micron Technology, Inc. Method to produce nanometer-sized features with directed assembly of block copolymers
US8101261B2 (en) 2008-02-13 2012-01-24 Micron Technology, Inc. One-dimensional arrays of block copolymer cylinders and applications thereof
US8426313B2 (en) * 2008-03-21 2013-04-23 Micron Technology, Inc. Thermal anneal of block copolymer films with top interface constrained to wet both blocks with equal preference
KR101237263B1 (en) 2008-03-21 2013-02-27 이 잉크 코포레이션 Electro-optic displays and color filters
US8425982B2 (en) * 2008-03-21 2013-04-23 Micron Technology, Inc. Methods of improving long range order in self-assembly of block copolymer films with ionic liquids
CN102067200B (en) 2008-04-11 2013-11-13 伊英克公司 Methods for driving electro-optic displays
US8114300B2 (en) 2008-04-21 2012-02-14 Micron Technology, Inc. Multi-layer method for formation of registered arrays of cylindrical pores in polymer films
US8114301B2 (en) 2008-05-02 2012-02-14 Micron Technology, Inc. Graphoepitaxial self-assembly of arrays of downward facing half-cylinders
KR101183964B1 (en) * 2008-08-11 2012-09-19 한국전자통신연구원 The method for locally crystallizing organic thin film and method for fabricating organic thin film transistor using the same
TWI484273B (en) 2009-02-09 2015-05-11 E Ink Corp Electrophoretic particles
US8098418B2 (en) 2009-03-03 2012-01-17 E. Ink Corporation Electro-optic displays, and color filters for use therein
US8801497B2 (en) 2009-04-30 2014-08-12 Rdc Holdings, Llc Array of abrasive members with resilient support
US9221148B2 (en) 2009-04-30 2015-12-29 Rdc Holdings, Llc Method and apparatus for processing sliders for disk drives, and to various processing media for the same
US9536815B2 (en) 2009-05-28 2017-01-03 Hsio Technologies, Llc Semiconductor socket with direct selective metalization
US9276336B2 (en) 2009-05-28 2016-03-01 Hsio Technologies, Llc Metalized pad to electrical contact interface
WO2011153298A1 (en) 2010-06-03 2011-12-08 Hsio Technologies, Llc Electrical connector insulator housing
WO2010147939A1 (en) 2009-06-17 2010-12-23 Hsio Technologies, Llc Semiconductor socket
WO2010138493A1 (en) 2009-05-28 2010-12-02 Hsio Technologies, Llc High performance surface mount electrical interconnect
US8789272B2 (en) 2009-06-02 2014-07-29 Hsio Technologies, Llc Method of making a compliant printed circuit peripheral lead semiconductor test socket
WO2010141303A1 (en) 2009-06-02 2010-12-09 Hsio Technologies, Llc Resilient conductive electrical interconnect
WO2014011226A1 (en) 2012-07-10 2014-01-16 Hsio Technologies, Llc Hybrid printed circuit assembly with low density main core and embedded high density circuit regions
US8610265B2 (en) 2009-06-02 2013-12-17 Hsio Technologies, Llc Compliant core peripheral lead semiconductor test socket
WO2010141264A1 (en) 2009-06-03 2010-12-09 Hsio Technologies, Llc Compliant wafer level probe assembly
US8928344B2 (en) 2009-06-02 2015-01-06 Hsio Technologies, Llc Compliant printed circuit socket diagnostic tool
US8525346B2 (en) 2009-06-02 2013-09-03 Hsio Technologies, Llc Compliant conductive nano-particle electrical interconnect
WO2010141298A1 (en) 2009-06-02 2010-12-09 Hsio Technologies, Llc Composite polymer-metal electrical contacts
US9093767B2 (en) 2009-06-02 2015-07-28 Hsio Technologies, Llc High performance surface mount electrical interconnect
WO2010147934A1 (en) 2009-06-16 2010-12-23 Hsio Technologies, Llc Semiconductor die terminal
WO2011002712A1 (en) 2009-06-29 2011-01-06 Hsio Technologies, Llc Singulated semiconductor device separable electrical interconnect
US9414500B2 (en) 2009-06-02 2016-08-09 Hsio Technologies, Llc Compliant printed flexible circuit
WO2013036565A1 (en) 2011-09-08 2013-03-14 Hsio Technologies, Llc Direct metalization of electrical circuit structures
WO2010141316A1 (en) 2009-06-02 2010-12-09 Hsio Technologies, Llc Compliant printed circuit wafer probe diagnostic tool
WO2011002709A1 (en) 2009-06-29 2011-01-06 Hsio Technologies, Llc Compliant printed circuit semiconductor tester interface
US9276339B2 (en) 2009-06-02 2016-03-01 Hsio Technologies, Llc Electrical interconnect IC device socket
US9232654B2 (en) 2009-06-02 2016-01-05 Hsio Technologies, Llc High performance electrical circuit structure
US8987886B2 (en) 2009-06-02 2015-03-24 Hsio Technologies, Llc Copper pillar full metal via electrical circuit structure
US9318862B2 (en) 2009-06-02 2016-04-19 Hsio Technologies, Llc Method of making an electronic interconnect
WO2010141296A1 (en) 2009-06-02 2010-12-09 Hsio Technologies, Llc Compliant printed circuit semiconductor package
US9136196B2 (en) 2009-06-02 2015-09-15 Hsio Technologies, Llc Compliant printed circuit wafer level semiconductor package
US9613841B2 (en) 2009-06-02 2017-04-04 Hsio Technologies, Llc Area array semiconductor device package interconnect structure with optional package-to-package or flexible circuit to package connection
US9196980B2 (en) 2009-06-02 2015-11-24 Hsio Technologies, Llc High performance surface mount electrical interconnect with external biased normal force loading
US8955216B2 (en) 2009-06-02 2015-02-17 Hsio Technologies, Llc Method of making a compliant printed circuit peripheral lead semiconductor package
US9930775B2 (en) 2009-06-02 2018-03-27 Hsio Technologies, Llc Copper pillar full metal via electrical circuit structure
WO2010141311A1 (en) 2009-06-02 2010-12-09 Hsio Technologies, Llc Compliant printed circuit area array semiconductor device package
WO2012078493A1 (en) 2010-12-06 2012-06-14 Hsio Technologies, Llc Electrical interconnect ic device socket
US8988093B2 (en) 2009-06-02 2015-03-24 Hsio Technologies, Llc Bumped semiconductor wafer or die level electrical interconnect
US9184145B2 (en) 2009-06-02 2015-11-10 Hsio Technologies, Llc Semiconductor device package adapter
US8981568B2 (en) 2009-06-16 2015-03-17 Hsio Technologies, Llc Simulated wirebond semiconductor package
CN105808008A (en) 2009-10-28 2016-07-27 伊英克公司 Electro-optic displays with touch sensors
US8654436B1 (en) 2009-10-30 2014-02-18 E Ink Corporation Particles for use in electrophoretic displays
JP5449617B2 (en) 2010-04-02 2014-03-19 イー インク コーポレイション Electrophoresis medium
KR20230058180A (en) * 2010-04-08 2023-05-02 더 리젠츠 오브 더 유니버시티 오브 미시간 Enhanced bulk heterojunction devices prepared by thermal and solvent vapor annealing processes
TWI575487B (en) 2010-04-09 2017-03-21 電子墨水股份有限公司 Methods for driving electro-optic displays
TWI484275B (en) 2010-05-21 2015-05-11 E Ink Corp Electro-optic display, method for driving the same and microcavity electrophoretic display
US8758067B2 (en) 2010-06-03 2014-06-24 Hsio Technologies, Llc Selective metalization of electrical connector or socket housing
US10159154B2 (en) 2010-06-03 2018-12-18 Hsio Technologies, Llc Fusion bonded liquid crystal polymer circuit structure
US9689897B2 (en) 2010-06-03 2017-06-27 Hsio Technologies, Llc Performance enhanced semiconductor socket
US9350093B2 (en) 2010-06-03 2016-05-24 Hsio Technologies, Llc Selective metalization of electrical connector or socket housing
JP5659567B2 (en) * 2010-06-11 2015-01-28 富士ゼロックス株式会社 Organic transistor and method for manufacturing organic transistor
US8304493B2 (en) 2010-08-20 2012-11-06 Micron Technology, Inc. Methods of forming block copolymers
US8900963B2 (en) 2011-11-02 2014-12-02 Micron Technology, Inc. Methods of forming semiconductor device structures, and related structures
US20130125910A1 (en) 2011-11-18 2013-05-23 Avon Products, Inc. Use of Electrophoretic Microcapsules in a Cosmetic Composition
JP5541274B2 (en) 2011-12-28 2014-07-09 東京エレクトロン株式会社 Substrate processing apparatus, substrate processing method, and storage medium
US11467466B2 (en) 2012-04-20 2022-10-11 E Ink Corporation Illumination systems for reflective displays
WO2013159093A1 (en) 2012-04-20 2013-10-24 E Ink Corporation Illumination systems for reflective displays
US9761520B2 (en) 2012-07-10 2017-09-12 Hsio Technologies, Llc Method of making an electrical connector having electrodeposited terminals
US9087699B2 (en) 2012-10-05 2015-07-21 Micron Technology, Inc. Methods of forming an array of openings in a substrate, and related methods of forming a semiconductor device structure
US9726957B2 (en) 2013-01-10 2017-08-08 E Ink Corporation Electro-optic display with controlled electrochemical reactions
US9715155B1 (en) 2013-01-10 2017-07-25 E Ink Corporation Electrode structures for electro-optic displays
US20140273290A1 (en) * 2013-03-15 2014-09-18 Tokyo Electron Limited Solvent anneal processing for directed-self assembly applications
CN103236503B (en) * 2013-04-22 2015-07-01 国家纳米科学中心 Polymer solar battery and preparation method thereof
US9229328B2 (en) 2013-05-02 2016-01-05 Micron Technology, Inc. Methods of forming semiconductor device structures, and related semiconductor device structures
TW201501340A (en) * 2013-06-27 2015-01-01 Inst Nuclear Energy Res Atomic Energy Council Method for manufacturing large-area organic solar cell
US10506722B2 (en) 2013-07-11 2019-12-10 Hsio Technologies, Llc Fusion bonded liquid crystal polymer electrical circuit structure
US10667410B2 (en) 2013-07-11 2020-05-26 Hsio Technologies, Llc Method of making a fusion bonded circuit structure
WO2015034690A1 (en) 2013-09-04 2015-03-12 Tokyo Electron Limited Uv-assisted stripping of hardened photoresist to create chemical templates for directed self-assembly
US9177795B2 (en) 2013-09-27 2015-11-03 Micron Technology, Inc. Methods of forming nanostructures including metal oxides
US9349604B2 (en) 2013-10-20 2016-05-24 Tokyo Electron Limited Use of topography to direct assembly of block copolymers in grapho-epitaxial applications
US9793137B2 (en) 2013-10-20 2017-10-17 Tokyo Electron Limited Use of grapho-epitaxial directed self-assembly applications to precisely cut logic lines
CN109491173B (en) 2014-01-17 2022-07-12 伊英克公司 Electro-optic display with dual phase electrode layers
US10317767B2 (en) 2014-02-07 2019-06-11 E Ink Corporation Electro-optic display backplane structure with drive components and pixel electrodes on opposed surfaces
KR20160119195A (en) 2014-02-07 2016-10-12 이 잉크 코포레이션 Electro-optic display backplane structures
KR20150129153A (en) * 2014-05-08 2015-11-19 삼성디스플레이 주식회사 Manufaturing device of organic light emitting diode display and method for manufacturing organic light emitting diode display using the same
WO2016073914A1 (en) 2014-11-07 2016-05-12 E Ink Corporation Applications of electro-optic displays
US9835925B1 (en) 2015-01-08 2017-12-05 E Ink Corporation Electro-optic displays, and processes for the production thereof
KR102061401B1 (en) 2015-02-04 2019-12-31 이 잉크 코포레이션 Electro-optic displays with reduced remnant voltage, and related apparatus and methods
CN104716274A (en) * 2015-02-10 2015-06-17 北京化工大学常州先进材料研究院 Preparation for perylene bisimide film and application of perylene bisimide film as high-density rapid information storage material
US9755335B2 (en) 2015-03-18 2017-09-05 Hsio Technologies, Llc Low profile electrical interconnect with fusion bonded contact retention and solder wick reduction
US10997930B2 (en) 2015-05-27 2021-05-04 E Ink Corporation Methods and circuitry for driving display devices
JP6524271B2 (en) 2015-06-29 2019-06-05 イー インク コーポレイション Method for mechanical and electrical connection to display electrodes
US10401548B2 (en) * 2015-09-24 2019-09-03 Intel Corporation Integrated antenna with display uniformity
US9947597B2 (en) 2016-03-31 2018-04-17 Tokyo Electron Limited Defectivity metrology during DSA patterning
WO2017210069A1 (en) 2016-05-31 2017-12-07 E Ink Corporation Backplanes for electro-optic displays
WO2018160546A1 (en) 2017-02-28 2018-09-07 E Ink Corporation Writeable electrophoretic displays including sensing circuits and styli configured to interact with sensing circuits
CN110383165B (en) 2017-03-28 2023-05-02 伊英克公司 Permeable back sheet for electro-optic displays
CN110622102B (en) 2017-05-19 2021-04-13 伊英克公司 Foldable electro-optic display including digitization and touch sensing
US11404013B2 (en) 2017-05-30 2022-08-02 E Ink Corporation Electro-optic displays with resistors for discharging remnant charges
US10573257B2 (en) 2017-05-30 2020-02-25 E Ink Corporation Electro-optic displays
EP3697535B1 (en) 2017-10-18 2023-04-26 Nuclera Nucleics Ltd Digital microfluidic devices including dual substrates with thin-film transistors and capacitive sensing
US10824042B1 (en) 2017-10-27 2020-11-03 E Ink Corporation Electro-optic display and composite materials having low thermal sensitivity for use therein
ES2931049T3 (en) 2017-11-03 2022-12-23 E Ink Corp Production processes of electro-optical display devices
EP3752883A4 (en) 2018-02-15 2021-11-10 E Ink Corporation Via placement for slim border electro-optic display backplanes with decreased capacitive coupling between t-wires and pixel electrodes
US11175561B1 (en) 2018-04-12 2021-11-16 E Ink Corporation Electrophoretic display media with network electrodes and methods of making and using the same
US11353759B2 (en) 2018-09-17 2022-06-07 Nuclera Nucleics Ltd. Backplanes with hexagonal and triangular electrodes
US11511096B2 (en) 2018-10-15 2022-11-29 E Ink Corporation Digital microfluidic delivery device
WO2020097462A1 (en) 2018-11-09 2020-05-14 E Ink Corporation Electro-optic displays
EP3894934A4 (en) 2018-12-13 2022-07-20 E Ink Corporation Illumination systems for reflective displays
TWI728631B (en) 2018-12-28 2021-05-21 美商電子墨水股份有限公司 Electro-optic displays
TWI734327B (en) 2018-12-30 2021-07-21 美商伊英克加利福尼亞有限責任公司 Method for driving an electro-optic display
KR20220112833A (en) 2020-02-07 2022-08-11 이 잉크 코포레이션 Electrophoretic display layer with thin film top electrode
WO2021247470A1 (en) 2020-06-03 2021-12-09 E Ink Corporation Foldable electrophoretic display module including non-conductive support plate
CN113571647A (en) * 2021-06-25 2021-10-29 太原理工大学 Solvent steam assisted inversion annealing method and application thereof
US11935495B2 (en) 2021-08-18 2024-03-19 E Ink Corporation Methods for driving electro-optic displays
TW202349091A (en) 2022-02-25 2023-12-16 美商電子墨水股份有限公司 Electro-optic displays with edge seal components and methods of making the same
US11830449B2 (en) 2022-03-01 2023-11-28 E Ink Corporation Electro-optic displays
WO2023211699A1 (en) 2022-04-27 2023-11-02 E Ink Corporation Electro-optic display stacks with segmented electrodes and methods of making the same

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0087193A2 (en) * 1982-02-19 1983-08-31 Koninklijke Philips Electronics N.V. Electrophoretic display device
WO1990008402A1 (en) * 1989-01-10 1990-07-26 Mitsubishi Denki Kabushiki Kaisha Fet transistor and liquid crystal display device obtained by using the same
JPH04199638A (en) * 1990-11-29 1992-07-20 Ricoh Co Ltd Field effect transistor, display device using the same and manufacture thereof
EP0924551A1 (en) * 1997-12-18 1999-06-23 The Technology Partnership Public Limited Company Method and apparatus for matrix addressing of an electrophoretic display device
WO1999053371A1 (en) * 1998-04-10 1999-10-21 E-Ink Corporation Electronic displays using organic-based field effect transistors

Family Cites Families (32)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
FR2527843B1 (en) 1982-06-01 1986-01-24 Thomson Csf ELECTRODE COMPRISING AN ELECTROCHROMIC POLYMER FILM WHICH CAN BE USED IN AN ENERGY STORAGE OR DISPLAY DEVICE
FR2527844B1 (en) 1982-06-01 1986-01-24 Thomson Csf ELECTROCHROMIC DEVICE THAT CAN BE USED FOR ENERGY STORAGE AND ELECTROCHROMIC DISPLAY SYSTEM
US4439507A (en) 1982-09-21 1984-03-27 Xerox Corporation Layered photoresponsive imaging device with photogenerating pigments dispersed in a polyhydroxy ether composition
FR2596566B1 (en) 1986-04-01 1989-03-10 Solvay CONDUCTIVE POLYMERS DERIVED FROM 3-ALKYLTHIOPHENES, PROCESS FOR THEIR MANUFACTURE AND ELECTRICALLY CONDUCTIVE DEVICES CONTAINING THEM
DE3880120T2 (en) 1987-12-07 1993-10-14 Solvay Conductive polymers of aromatic heterocyclic compounds substituted with ether groups, processes for their preparation, apparatus comprising these polymers, and monomers which enable such polymers to be obtained.
US5006212A (en) 1988-03-10 1991-04-09 Copytele, Inc. Methods enabling stress crack free patterning of chrome on layers of organic polymers
FR2640626B1 (en) 1988-12-16 1991-02-08 Solvay SUBSTITUTED THIOPHENES, CONDUCTIVE POLYMERS DERIVED FROM SUCH THIOPHENES, PROCESS FOR OBTAINING SAME, AND DEVICES CONTAINING THESE POLYMERS
JPH02274723A (en) 1989-04-18 1990-11-08 Nippon Oil Co Ltd 3-substituted pyrrole polymer
FR2648140B1 (en) 1989-06-08 1991-05-03 Centre Nat Rech Scient PROCESS FOR THE PREPARATION OF OLIGOMERS OF AROMATIC HETEROCYCLES BY OXIDIZING COUPLING OF LOWER OLIGOMERS
US5268448A (en) 1989-07-10 1993-12-07 Solvay S.A. Conducting polymers derived from fluorinated thiophenes
FR2649396B1 (en) 1989-07-10 1994-07-29 Solvay FLUORINATED THIOPHENES, CONDUCTIVE POLYMERS DERIVED FROM SUCH THIOPHENES, PROCESS FOR OBTAINING SAME AND DEVICES CONTAINING THESE POLYMERS
FI91573C (en) 1990-01-04 1994-07-11 Neste Oy Method for manufacturing electronic and electro-optical components and circuits
JPH03205422A (en) 1990-01-08 1991-09-06 Nippon Oil Co Ltd Poly((3-pyrrolyl)acetic acid)
FR2664430B1 (en) 1990-07-04 1992-09-18 Centre Nat Rech Scient THIN FILM FIELD EFFECT TRANSISTOR WITH MIS STRUCTURE, IN WHICH THE INSULATION AND THE SEMICONDUCTOR ARE MADE OF ORGANIC MATERIALS.
JP3246189B2 (en) 1994-06-28 2002-01-15 株式会社日立製作所 Semiconductor display device
US5574291A (en) 1994-12-09 1996-11-12 Lucent Technologies Inc. Article comprising a thin film transistor with low conductivity organic layer
TW293172B (en) 1994-12-09 1996-12-11 At & T Corp
US5659181A (en) 1995-03-02 1997-08-19 Lucent Technologies Inc. Article comprising α-hexathienyl
EP0732757A3 (en) 1995-03-15 1998-03-18 AT&T Corp. N-channel field-effect transistor including a thin-film fullerene
NO302987B1 (en) 1995-07-18 1998-05-11 Opticom As Optical logic element and methods for its preparation and optical addressing, respectively, and use thereof in an optical logic device
US5625199A (en) 1996-01-16 1997-04-29 Lucent Technologies Inc. Article comprising complementary circuit with inorganic n-channel and organic p-channel thin film transistors
DE19615134C2 (en) 1996-04-17 2003-04-17 Continental Ag Adhesion promoter substance between vulcanizable polymer and metallic reinforcement, process for their application and their use
NO304859B1 (en) 1997-06-06 1999-02-22 Opticom As Optical logic element and methods for its preparation and optical addressing, respectively, and its use in an optical logic device
US6005791A (en) 1996-06-12 1999-12-21 Gudesen; Hans Gude Optical logic element and optical logic device
US5969376A (en) 1996-08-23 1999-10-19 Lucent Technologies Inc. Organic thin film transistor having a phthalocyanine semiconductor layer
SE513046C2 (en) 1996-09-17 2000-06-26 Ericsson Telefon Ab L M Process for producing an optocomponent and the component as such
JPH10135481A (en) 1996-10-15 1998-05-22 Lucent Technol Inc Device consisting of thin film transistor
JPH10142628A (en) 1996-11-07 1998-05-29 Matsushita Electric Ind Co Ltd Active matrix substrate and manufacture thereof
US6107117A (en) 1996-12-20 2000-08-22 Lucent Technologies Inc. Method of making an organic thin film transistor
US5936259A (en) 1997-10-16 1999-08-10 Lucent Technologies Inc. Thin film transistor and organic semiconductor material thereof
TW410478B (en) 1998-05-29 2000-11-01 Lucent Technologies Inc Thin-film transistor monolithically integrated with an organic light-emitting diode
US6215130B1 (en) 1998-08-20 2001-04-10 Lucent Technologies Inc. Thin film transistors

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0087193A2 (en) * 1982-02-19 1983-08-31 Koninklijke Philips Electronics N.V. Electrophoretic display device
WO1990008402A1 (en) * 1989-01-10 1990-07-26 Mitsubishi Denki Kabushiki Kaisha Fet transistor and liquid crystal display device obtained by using the same
JPH04199638A (en) * 1990-11-29 1992-07-20 Ricoh Co Ltd Field effect transistor, display device using the same and manufacture thereof
EP0924551A1 (en) * 1997-12-18 1999-06-23 The Technology Partnership Public Limited Company Method and apparatus for matrix addressing of an electrophoretic display device
WO1999053371A1 (en) * 1998-04-10 1999-10-21 E-Ink Corporation Electronic displays using organic-based field effect transistors

Non-Patent Citations (3)

* Cited by examiner, † Cited by third party
Title
CONBOY J C ET AL: "Impact of solvent vapor annealing on the morphology and photophysics of molecular semiconductor thin films", JOURNAL OF PHYSICAL CHEMISTRY B, 4 JUNE 1998, ACS, USA, vol. 102, no. 23, pages 4516 - 4525, XP000964644, ISSN: 1089-5647 *
DYREKLEV P ET AL: "Polymeric field effect transistors using oriented polymers", INTERNATIONAL CONFERENCE ON SCIENCE AND TECHNOLOGY OF SYNTHETIC METALS (ICSM '92), GOTEBORG, SWEDEN, 12-18 AUG. 1992, vol. 57, no. 1, Synthetic Metals, 12 April 1993, Switzerland, pages 4093 - 4098, XP000961709, ISSN: 0379-6779 *
PATENT ABSTRACTS OF JAPAN vol. 016, no. 530 (E - 1287) 30 October 1992 (1992-10-30) *

Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2003007399A2 (en) * 2001-07-09 2003-01-23 Plastic Logic Limited Low melting point polymer alignment
WO2003007399A3 (en) * 2001-07-09 2003-07-10 Plastic Logic Ltd Low melting point polymer alignment
WO2003007397A3 (en) * 2001-07-09 2003-08-14 Plastic Logic Ltd Solution influenced alignment
GB2393853A (en) * 2001-07-09 2004-04-07 Plastic Logic Ltd Low melting point polymer alignment
GB2393853B (en) * 2001-07-09 2005-08-31 Plastic Logic Ltd Low melting point polymer alignment
US6885032B2 (en) 2001-11-21 2005-04-26 Visible Tech-Knowledgy, Inc. Display assembly having flexible transistors on a flexible substrate
EP1598880A3 (en) * 2004-05-19 2009-10-28 Seiko Epson Corporation Method of manufacturing of an OLED display

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