Claims
- 1. An optical compensator for a liquid crystal display comprising a transparent polymeric support, an orientation layer, and an optically anisotropic layer, in order, and located between the support and the orientation layer, a barrier layer comprising a crosslinked polymer impermeable to the components of the support.
- 2. The compensator of claim 1 wherein said barrier layer comprises a crosslinked melamine, epoxy, phenoxy, alkyd, polyester, acrylic, vinyl or cellulosic resin.
- 3. The compensator of claim 1 wherein said transparent support comprises a cellulose ester.
- 4. The compensator of claim 1 wherein said transparent support comprises a polycarbonate.
- 5. The compensator of claim 1 wherein said optically anisotropic layer comprises a nematic liquid crystal.
- 6. The compensator of claim 1 wherein said barrier layer comprises a crosslinked polymer derived from a resin containing carboxylic, hydroxyl, amino or epoxy groups.
- 7. The compensator of claim 2 wherein the crosslinked polymer comprises a crosslinked melamine resin.
- 8. The compensator of claim 1 wherein the crosslinked polymer is a cellulosic polymer that is a derivative of a nitrocellulose, ethyl cellulose, hydroxyethyl cellulose or a carboxylated cellulose.
- 9. The compensator of claim 1 wherein the orientation layer is capable of orientation by rubbing.
- 10. The compensator of claim 1 wherein the orientation layer is capable of orientation through photoalignment using polarized light.
- 11. The compensator of claim 1 wherein the orientation layer layer comprises a polyvinyl cinnamate.
- 12. The compensator of claim 3 wherein the nematic liquid crystal is a UV crosslinked material.
- 13. The compensator of claim 1 wherein the optic axis of the anisotropic layer has a fixed azimuthal angle.
- 14. The compensator of claim 1 wherein the optic axis of the anisotropic layer has a fixed tilt angle.
- 15. The compensator of claim 1 wherein the optic axis of the anisotropic layers has a variable tilt angle.
- 16. The compensator of claim 11 wherein the optic axis of the anisotropic layer has a variable tilt angle.
- 17. The compensator of claim 1 wherein the optic axis of the anisotropic layer has a variable tilt angle and a variable azimuthal angle.
- 18. The compensator of claim 1 wherein the anisotropic layers contain a material with positive birefringence.
- 19. A liquid crystal display comprising a compensator of claim 1.
- 20. An electronic imaging device comprising an LCD device of claim 19.
- 21. A method of forming a component of claim 1 comprising aligining the orientation layer using a photo-alignment step.
- 22. The compensator of claim 1 wherein the transparent polymer support is triacetyl cellulose.
- 23. A process for preparing a compensator for a liquid crystal display comprising providing a transparent support, applying a barrier layer over the support and crosslinking it, then coating an orientation layer from an organic solvent over the barrier layer and then drying and aligning the orientation layer, wherein the barrier layer is impermeable and non-swellable in the presence of the organic solvent, and then coating and polymerizing an anisotropic nematic liquid crystal layer comprising a polymerizable material in a solvent carrier over the orientation layer.
- 24. A process for making an optical compensator, comprising the steps of:
a) coating a crosslinkable polymer from a waterborne dispersion or an organic solvent solution over a polymer support; b) drying and crosslinking the crosslinkable polymer layer to form a barrier layer; 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) polymerizing the anisotropic layer i) repeating steps c) through h) coating over the anisotoropic layer of h) but photo-aligning the orientation layer at a predetermined angle to the direction in step e).
- 25. The process of claim 24 wherein the predetermined angle of step i) to the angle in step e) is 90°.
- 26. The process of claim 24 wherein the crosslinkable polymer is coated from a dipersion or solution containing water, an alcohol, a hydrocarbon, an alkyl halide, ester, ketone, or ether.
- 27. A continuous process for making an optical compensator on a support web, comprising the steps of:
a) coating a crosslinkable polymer from a waterborne dispersion or an organic solvent solution onto a moving polymer support web; b) drying and crosslinking the crosslinkable polymer layer to form a barrier layer; c) coating an orientation layer comprising a photo-alignable polymer in an organic solvent onto the barrier layer; d) drying the orientation layer; e) photoaligning the orientation layer in a predetermined direction relative to the web moving direction; f) coating an anisotropic layer comprising a polymerizable material in a solvent carrier onto the orientation layer; g) drying the anisotropic layer; h) polymerizing the anisotropic layer to form a first continuous web of a multilayer integral component; 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).
- 28. The process of claim 27 wherein the predetermined angle of step i) to the angle in step e) is 90°.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is cofiled as part of a group of the following commonly assigned applications under Attorney Docket Nos. 84732, 84733, 84735, 84736, 84760, 84833, 84839, and 84864, the contents of which are incorporated herein by reference.