Claims
- 1. An optical compensator for a liquid crystal display comprising a transparent polymeric support bearing an orientation layer and a photochemically cured optically anisotropic layer, in that order, wherein a photochemically cured barrier layer is present between the orientation layer and the support, and wherein the barrier layer, as disposed on the support, exhibits an indentation modulus of less than 2 GPa.
- 2. The compensator of claim 1 wherein the dry thickness of the barrier layer is from 0.1-10 g/m2.
- 3 The compensator of claim 1 wherein the dry thickness of the barrier layer is from 0.55-5 g/m2.
- 4. The compensator of claim 1 wherein said transparent support comprises a cellulose ester.
- 5. The compensator of claim 1 wherein said transparent support comprises a polycarbonate.
- 6. The compensator of claim 1 wherein said optically anisotropic layer comprises a nematic liquid crystal.
- 7. The compensator of claim 1 wherein the orientation layer contains a material that is capable of orientation by rubbing.
- 8. The compensator of claim 1 wherein the orientation layer contains materials that are capable of orientation through photoalignment using polarized light.
- 9. The compensator of claim 1 wherein the orientation layer comprises a polyvinyl cinnamate.
- 10. The compensator of claim 1 wherein the anisotropic layer contains a nematic liquid crystal material.
- 11. The compensator of claim 1 wherein the optic axis of the anisotropic layer has a fixed azimuthal angle.
- 12. The compensator of claim 1 wherein the optic axis of the anisotropic layer has a fixed tilt angle.
- 13. The compensator of claim 1 wherein the optic axis of the anisotropic layers has a variable tilt angle.
- 14. The compensator of claim 11 wherein the optic axis of the anisotropic layer has a variable tilt angle.
- 15. The compensator of claim 1 wherein the optic axis of the anisotropic layer has a variable tilt angle and a variable azimuthal angle.
- 16. The compensator of claim 1 wherein the anisotropic layers contain a material with positive birefringence.
- 17. The compensator of claim 1 wherein the transparent polymer support is triacetyl cellulose.
- 18. The compensator of claim 1 wherein there are present two barrier layers, each of which is adjacent to an orientation layer on the support side.
- 19. The compensator of claim 1 further comprising a compliant layer between the support and the barrier layer.
- 20. The compensator of claim 19 wherein the compliant layer has an indentation modulus of less than 2 GPa.
- 21. The compensator of claim 19 wherein the dry thickness of the compliant layer is from 0.10-10 g/m2.
- 22. The compensator of claim 19 wherein the dry thickness of the compliant layer is from 0.55-5 g/m2.
- 23. The compensator of claim 18 further comprising a compliant layer between the support and each of the barrier layers.
- 24. A liquid crystal display (LCD) comprising the compensator of claim 1.
- 25. A liquid crystal display (LCD) comprising the compensator of claim 19.
- 26. An electronic imaging device comprising an LCD of claim 24.
- 27. An electronic imaging device comprising an LCD of claim 25.
- 28. A method of forming a component of claim 1 comprising aligining the orientation layer using a photo-alignment step.
- 29. A process for forming an optical compensator of claim 1 comprising:
a) coating and drying the layers in order on the support, b) at least partly photochemically curing the barrier layer after the original coating; c) coating an orientation layer comprising a photo-alignable polymer in a solvent over the barrier layer; d) drying the orientation layer; e) photo-aligning the orientation layer in a predetermined direction; f) coating an anisotropic nematic liquid crystal layer comprising a polymerizable material in a solvent carrier over the orientation layer; g) drying the anisotropic layer; h) photochemically curing the anisotropic layer; and i) repeating the above steps c) through h) coating over the anisotropic layer obtained from h) but photo-aligning the orientation layer at a predetermined angle to the direction in step e);
provided that the photochemical curing steps, in toto, are sufficient so that the final photochemically cured barrier layer as disposed on the support has an indentation modulus of less than 2 GPa.
- 30. The process of claim 29 wherein the predetermined angle of step i) to the angle in step e) is 90°.
- 31. The process of claim 29 wherein the photochemically curable polymer in the barrier layer is coated from a dipersion or solution containing water, an alcohol, a hydrocarbon, an alkyl halide, ester, ketone, or ether.
- 32. The process of claim 29 wherein the photo-exposure conditions used to cure the optically anisotropic layer are UV light of wavelength from 280 to 420 nm.
- 33. The process of claim 29 wherein the photo-exposure conditions used to cure the optically anisotropic layer are UV light of wavelength from 320 to 410 nm.
- 34. A method of forming a compensator of claim 1 comprising coating a compliant layer having a GPa less than that of the barrier layer prior to coating the barrier layer.
- 35. The method of claim 34 wherein the compliant layer contains a polyurethane.
- 36. The method of claim 34 wherein the compliant layer is coated from an aqueous dispersion.
- 37. The method of claim 34 comprising coating a subbing layer.
- 38. The method of claim 37 wherein surface activation treatment is applied to the underlayer before coating the subbing layer.
- 39. An optical compensator for a liquid crystal display comprising a transparent polymeric support, an orientation layer, and a photochemically cured optically anisotropic layer, in that order, wherein a photochemically cured barrier layer is present between the orientation layer and the support, and wherein there is present a compliant layer softer than the barrier layer adjacent to the support side of the barrier layer.
- 40. The compensator of claim 39 wherein the compliant layer contains a polyurethane.
- 41. The compensator of claim 40 wherein the compliant layer comrises a water disperesible urethane.
- 42. The compensator of claim 39 wherein the compliant layer has an indentation modulus of less than 2 GPa.
- 43. The compensator of claim 39 wherein the dry thickness of the compliant layer is from 0.10-10 g/m2.
- 44. The compensator of claim 39 wherein the dry thickness of the compliant layer is from 0.55-5 g/m2.
- 45. The compensator of claim 39 wherein the compliant layer is adjacent to the support.
- 46. The compensator of claim 39 comprising two or more barrier layers.
- 47. The compensator of claim 39 including a second orientation layer, anisotropic layer and barrier layer, in that order.
- 48. The compensator of claim 1 comprising a subbing layer.
- 49. The compensator of claim 48 comprising a subbing layer on the support.
- 50. An optical compensator for a liquid crystal display comprising a transparent polymeric support, two combinations of an orientation layer and a photochemically cured optically anisotropic layer, in that order from the support, wherein a photochemically cured barrier layer is present adjacent to each orientation layer on the support side.
- 51. The compensator of claim 50 wherein there is present a compliant layer adjacent to an orientation layer on the support side thereof.
- 52. The compensator of claim 50 wherein there is present a compliant layer adjacent to each orientation layer on the support side thereof.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a Continuation-in-Part of U.S. patent application Ser. No. 10/272,775 filed Oct. 17, 2002, the contents of which are incorporated herein by reference. This application is related to commonly assigned U.S. patent application Ser. No. 10/194,162 filed Jul. 12, 2002 by M. Nair et al. and U.S. patent application Ser. No. 10/194,130 filed Jul. 12, 2002 by C. L. Bauer et al. the contents of which are incorporated herein by reference.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10272775 |
Oct 2002 |
US |
Child |
10390123 |
Mar 2003 |
US |