Claims
- 1. A core-shell pigment particle suitable for use in an electrophoretic dispersion which comprises a low refractive index core and a high refractive index shell layer.
- 2. The pigment particle of claim 1 wherein said core is formed from a material having a refractive index in the range of 1.0-2.0.
- 3. The pigment particle of claim 2 wherein said core is formed from a material having a refractive index in the range of 1.0-1.7.
- 4. The pigment particle of claim 5 wherein said core is formed from a material having a refractive index in the range of 1.0-1.5.
- 5. The pigment particle of claim 1 wherein said core is formed from a material having a specific gravity in the range of 0-2.1.
- 6. The pigment particle of claim 5 wherein said core is formed from a material having a specific gravity in the range of 0.1-1.8.
- 7. The pigment particle of claim 6 wherein said core is formed from a material having a specific gravity in the range of 0.5-1.4.
- 8. The pigment particle of claim 1 wherein said core has a diameter in the range of 0.1 to 2.0 microns.
- 9. The pigment particle of claim 8 wherein said core has a diameter in the range of 0.2 to 1.5 microns.
- 10. The pigment particles of claim 8 wherein said core has a diameter in the range of 0.3 to 1.2 microns.
- 11. The pigment particle of claim 1 wherein said shell layer has a refractive index greater than 2.
- 12. The pigment particle of claim 11 wherein said shell layer has a refractive index greater than 2.5.
- 13. The pigment particle of claim 1 wherein said shell layer has a thickness in the range of 0.05 to 1.2 microns.
- 14. The pigment particle of claim 13 wherein said shell layer has a thickness in the range of 0.1 to 0.6 microns.
- 15. The pigment particle of claim 13 wherein said shell layer has a thickness in the range of 0.2 to 0.5 microns.
- 16. The pigment particle of claim 1 wherein said core has a specific gravity lower than the specific gravity of said shell layer.
- 17. The pigment particle of claim 1 wherein the difference in refractive index is at least 0.5.
- 18. The pigment particle of claim 17 wherein the difference in refractive index is at least 1.0.
- 19. The pigment particle of claim 1 wherein said core further comprises a light absorbing or emitting material.
- 20. The pigment particle of claim 1 wherein said core is formed from a material selected from a group consisting of air pocket or void, polymers and composites thereof, inorganic, organic or organometallic compounds and mixtures thereof.
- 21. The pigment particle of claim 20 wherein said core is formed from air pocket or void, a polymer or silica.
- 22. The pigment particles of claim 1 wherein said shell is formed from an inorganic material.
- 23. The pigment particle of claim 22 wherein said shell layer is formed from a material selected from a group consisting of oxides, carbonates and sulfates of Ti, Zn, Zr, Ba, Ca, Mg, Fe and Al.
- 24. The pigment particle of claim 23 wherein said shell layer is formed from TiO2 or ZnO.
- 25. The pigment particle of claim 24 wherein said shell layer is formed from rutile TiO2.
- 26. An electrophoretic dispersion comprising said core-shell pigment particles of claim 1 suspended in a dielectric solvent having a specific gravity substantially the same as the specific gravity of said core-shell pigment particles.
- 27. The electrophoretic dispersion of claim 26 wherein said shell layer has a refractive index substantially different from the refractive index of said dielectric solvent.
- 28. The electrophoretic dispersion of claim 26 wherein said core has a refractive index lower than the refractive index of said shell.
- 29. A process for manufacture of a pigment particles comprising a core-shell pigment particle wherein said core has a low specific gravity and a low refractive index whereas said shell layer has a high refractive index, which process comprises coating or microencapsulating the particle core by a method selected from a group consisting of chemical processes such as calcination, microwave hydrothermal processing, forced hydrolysis and precipitation, double jet technique, dispersion technique, sol-gel processing, vapor phase deposition, phase separation and solvent evaporation.
- 30. The process of claim 29 wherein said microencapsulation process is a microwave hydrothermal process.
- 31. The process of claim 29 wherein the shell is coated onto the core by a microwave hydrothermal process.
- 32. An electrophoretic dispersion comprising a fluorinated solvent as the continuous phase, charged core-shell pigment particles of claim 1 as the dispersed phase and a charge controlling agent, and the charge of said core-shell pigment particles is provided by
(i) a soluble fluorinated electron accepting or proton donating compound or polymer in the continuous phase and an electron donating or proton accepting compound or polymer in the dispersed phase, preferably at the surface of the core-shell particles; or (ii) a soluble fluorinated electron donating or proton accepting compound or polymer in the continuous phase and an electron accepting or proton donating compound or polymer in the dispersed phase, preferably at the surface of the core-shell particles.
- 33. An electrophoretic dispersion comprising core-shell of claim 1 wherein said core-shell pigment particles are further microencapsulated using a reactive protective colloid of Formula (I) or (III):
- 34. The electrophoretic dispersion of claim 33 wherein said reactive functional group is amino, hydroxy, thiol, isocyanate, thioisocyanate, epoxide, aziridine, a short-chain alkoxysilyl such as trimethoxy silyl, a carboxylic acid derivative such as acid anhydride or acid chloride, chloroformate or other reactive functional groups capable of undergoing interfacial polymerization/crosslinking.
- 35. The electrophoretic dispersion of claim 33 wherein said reactive protective colloid is a compound of Formula (I) wherein R is Formula (II), Q is ether, amide, urea or urethane, L is a straight or branched hydrocarbon chain optionally interrupted by a heteroatom or a straight or branched hydrocarbon chain substituted by an optionally substituted heterocyclic moiety, A is an amino or isocyanate group, m is ≧2 and n is 1.
- 36. A microencapsulation process of making pigment microcapsules by interfacial polymerization/crosslinking reaction between the two phases:
(a) an internal phase which comprises core-shell pigment particles of claim 1 dispersed in a mixture of a reactive monomer or oligomer and optionally a solvent; and (b) a continuous phase which comprises a reactive protective colloid of Formula (I) or (III): R—[Q—L—(A)m]n (I) 4wherein: m and n are independently natural numbers which are ≧1; Q and L together is a linking chain; A is a reactive functional group; and R is a low molecular weight, a polymeric or oligomeric chain; the open substituent positions (not designated) on the main chain of Formula (III) are the same or different and may independently be selected from a group consisting of hydrogen, halogen (especially fluoro), alkyl, aryl, alkylaryl, fluoroalkyl, fluoroaryl, fluoroalkylaryl, —OR1, —OCOR1, —COOR1, —CONR1R2 (wherein R1 and R2 are independently hydrogen, alkyl, aryl, alkylaryl, fluoroalkyl, fluoroaryl, fluoroalkylaryl or fluorinated polyether) and substituted derivatives thereof and R′ is hydrogen, halogen (especially fluoro), alkyl, aryl, alkylaryl, fluoroalkyl, fluoroaryl, fluoroalkylaryl, —OR1, OCOR1, —COOR1, —CONR1R2 (wherein R1 and R2 are independently hydrogen, alkyl, aryl, alkylaryl, fluoroalkyl, fluoroaryl, fluoroalkylaryl or fluorinated polyether) and substituted derivatives thereof; Z is oxygen, NR5, or N—L—(A)m in which L, A and m are defined as in Formula (I) and R5 is hydrogen, alkyl, aryl, alkylaryl, fluoroalkyl, fluoroaryl, fluoroalkylaryl, —COOR1, —CONR1R2 (wherein R1 and R2 are independently hydrogen, alkyl, aryl, alkylaryl, fluoroalkyl, fluoroaryl, fluoroalkylaryl or fluorinated polyether) and substituted derivatives thereof; and d, e and f are the weight fractions of the corresponding repeating units with the sum thereof no greater than 1.
- 37. An electrophoretic display wherein display cells are filled with an electrophoretic dispersion of claim 26.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application claims the benefit of U.S. Provisional Application Serial No. 60/356,226, filed Feb. 11, 2002, the content of which is incorporated herein by reference in its entirety.
Provisional Applications (1)
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Number |
Date |
Country |
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60356226 |
Feb 2002 |
US |