Claims
- 1. A reflective liquid crystal display, comprising:
a first substrate that is substantially transparent; a second substrate that is substantially reflective and substantially parallel with said first substrate; and a liquid crystal fluid having a birefringence (Δn) and a negative dielectric anisotropy, wherein said liquid crystal fluid is between said first and second substrates; said first substrate having a first liquid crystal alignment layer proximate to said liquid crystal fluid, wherein molecules of said liquid crystal fluid that are proximate to the first liquid crystal alignment layer have a first pretilt angle from about 2 degrees to about 15 degrees and a first azimuthal direction; said second substrate having a second liquid crystal alignment layer proximate to said liquid crystal fluid, wherein molecules of said liquid crystal fluid that are proximate to the second liquid crystal alignment layer have a second pretilt angle from about 2 degrees to about 15 degrees and a second azimuthal direction, the second azimuthal direction being substantially perpendicular to the first azimuthal direction.
- 2. The reflective liquid crystal display of claim 1, wherein linearly polarized incident light has a polarization direction approximately parallel to the first azimuthal direction.
- 3. The reflective liquid crystal display of claim 1, wherein linearly polarized incident light has a polarization direction approximately perpendicular to the first azimuthal direction.
- 4. The reflective liquid crystal display of claim 1, wherein shades of gray are produced by varying an electric field between said first and second substrates from substantially no electric field to an electric field having an optimum value.
- 5. The reflective liquid crystal display of claim 1, wherein a distance (d) between inside faces of said first and second substrates is about 3.5 micrometers.
- 6. The reflective liquid crystal display of claim 1, wherein a distance (d) between inside faces of said first and second substrates is from about 3.3 micrometers to about 3.7 micrometers.
- 7. The reflective liquid crystal display of claim 1, wherein the birefringence (Δn) is about 0.0830 at about 45 degrees Celsius.
- 8. The reflective liquid crystal display of claim 1, wherein the birefringence (Δn) is from about 0.0777 to about 0.0996.
- 9. The reflective liquid crystal display of claim 1, wherein the birefringence (Δn) times d is greater than λ/4 when an electric field having an optimum value is applied between said first and second substrates, where d is the distance between inside faces of said first and second substrates and λ is the wavelength of light.
- 10. The reflective liquid crystal display of claim 1, wherein the molecules of said liquid crystal fluid have a tilt angle (θ) of from about 5 degrees to about 15 degrees when substantially no electric field is applied between said first and second substrates.
- 11. The reflective liquid crystal display of claim 1, wherein the molecules of said liquid crystal fluid have a tilt angle (θ) of from about 2 degrees to about 15 degrees when substantially no electric field is applied between said first and second substrates.
- 12. The reflective liquid crystal display of claim 1, wherein an azimuthal angle (Φ) of the molecules of said liquid crystal fluid varies from about 0 degrees at said first substrate to about 90 degrees at said second substrate when substantially no electric field is applied between said first and second substrates.
- 13. The reflective liquid crystal display of claim 1, wherein an azimuthal angle (Φ) of the molecules of said liquid crystal fluid varies from about 0 degrees at said second substrate to about 90 degrees at said first substrate when substantially no electric field is applied between said first and second substrates.
- 14. A reflective liquid crystal display, comprising:
a first substrate that is substantially transparent; a second substrate that is substantially reflective and substantially parallel with said first substrate; and a liquid crystal fluid having a birefringence (Δn) and a negative dielectric anisotropy, wherein said liquid crystal fluid is between said first and second substrates; said first substrate having a first liquid crystal alignment layer proximate to said liquid crystal fluid, wherein molecules of said liquid crystal fluid that are proximate to the first liquid crystal alignment layer have a first pretilt angle from about 2 degrees to about 15 degrees and a first azimuthal direction; said second substrate having a second liquid crystal alignment layer proximate to said liquid crystal fluid, wherein molecules of said liquid crystal fluid that are proximate to the second liquid crystal alignment layer have a second pretilt angle from about 2 degrees to about 15 degrees and a second azimuthal direction, the second azimuthal direction being substantially perpendicular to the first azimuthal direction; wherein:
when an electric field is applied between said first and second substrates, a substantial number of the molecules of said liquid crystal fluid increase their tilt angles, and when substantially no electric field is applied between said first and second substrates, a substantial number of the molecules of said liquid crystal fluid have their azimuthal direction substantially perpendicular to said first and second substrates; whereby when the electric field is applied between said first and second substrates, said liquid crystal fluid changes linear polarized incident light at said first substrate to approximately circularly polarized incident light when at said second substrate, wherein said second substrate reflects back the approximately circularly polarized incident light as approximately circularly polarized light of opposite handedness, wherein said liquid crystal fluid changes the approximately circularly polarized reflected light to approximately linear polarized reflected light when at said first substrate such that the polarization directions of the linearly polarized incident light and the linearly polarized reflected light at said first substrate are approximately perpendicular, and whereby when substantially no electric field is applied between said first and second substrates, said liquid crystal fluid does not substantially change the polarization of light passing through the liquid crystal fluid and the polarization directions of the linearly polarized incident light and the linearly polarized reflected light at said first substrate are approximately parallel.
- 15. The reflective liquid crystal display of claim 14, wherein the electric field is applied between said first and second substrates for a plurality of first times and substantially no electric field is applied for a plurality of second times.
- 16. The reflective liquid crystal display of claim 15, wherein the first and second times are varied to produce shades of gray.
- 17. The reflective liquid crystal display of claim 15, wherein the first and second times are varied to produce field sequential colors.
- 18. A method for a reflective liquid crystal display, said method comprising the steps of:
providing a first substrate that is substantially transparent; providing a second substrate that is substantially reflective and substantially parallel with said first substrate; and providing a liquid crystal fluid having a birefringence (Δn) and a negative dielectric anisotropy between said first and second substrates; providing a first liquid crystal alignment layer on said first substrate, said first liquid crystal alignment layer being proximate to said liquid crystal fluid, wherein molecules of said liquid crystal fluid that are proximate to the first liquid crystal alignment layer have a first pretilt angle from about 2 degrees to about 15 degrees and a first azimuthal direction; providing a second liquid crystal alignment layer on said second substrate, said second liquid crystal alignment layer being proximate to said liquid crystal fluid, wherein molecules of said liquid crystal fluid that are proximate to the second liquid crystal alignment layer have a second pretilt angle from about 2 degrees to about 15 degrees and a second azimuthal direction, the second azimuthal direction being substantially perpendicular to the first azimuthal direction; such that
when substantially no electric field is applied between said first and second substrates, said liquid crystal fluid does not change the polarization state of light passing therethrough and the polarization directions of the linearly polarized incident light and the linearly polarized reflected light at said first substrate are substantially parallel, when applying an electric field of an optimum value between said first and second substrates, said liquid crystal fluid changes linear polarized incident light at said first substrate to approximately circularly polarized incident light when at said second substrate, wherein said second substrate reflects back the approximately circularly polarized incident light as approximately circularly polarized light of opposite handedness, wherein said liquid crystal fluid changes the approximately circularly polarized reflected light to approximately linear polarized reflected light when at said first substrate such that the polarization directions of the linearly polarized incident light and the linearly polarized reflected light at said first substrate are approximately perpendicular, and when applying an electric field less than the optimum value between said first and second substrates, said liquid crystal fluid changes the polarization state of the incident linearly polarized light to elliptically polarized light upon passing through said liquid crystal fluid and being reflected back from said second substrate.
- 19. The method of claim 18, wherein the polarization direction of the linearly polarized incident light is approximately parallel with the first azimuthal direction.
- 20. The method of claim 18, wherein the polarization direction of the linearly polarized incident light is approximately perpendicular with the first azimuthal direction.
- 21. The method of claim 18, further comprising the step of varying the electric field between said first and second substrates so as to produce shades of gray by causing the polarization state of the incident light at said second substrate to vary from approximately linear polarization to elliptical polarization, and when there is substantially no electric field the polarization of the incident light at said second substrate is approximately linear.
- 22. The method of claim 18, wherein a distance (d) between inside faces of said first and second substrates is about 3.5 micrometers.
- 23. The method of claim 18, wherein a distance (d) between inside faces of said first and second substrates is from about 3.3 micrometers to about 3.7 micrometers.
- 24. The method of claim 18, wherein said liquid crystal fluid has a birefringence (Δn) of about 0.0830 at about 45 degrees Celsius.
- 25. The method of claim 18, wherein said liquid crystal fluid has a birefringence (Δn) from about 0.0777 to about 0.0996.
- 26. The method of claim 18, wherein the birefringence Δn times d is greater than λ/4 when an electric field having an optimum value is applied between said first and second substrates, where d is the distance between inside faces of said first and second substrates and λ is the wavelength of light.
- 27. The method of claim 18, wherein the molecules of said liquid crystal fluid have a tilt angle (θ) of from about 5 degrees to about 15 degrees when substantially no electric field is applied between said first and second substrates.
- 28. The method of claim 18, wherein the molecules of said liquid crystal fluid have a tilt angle (θ) of from about 2 degrees to about 15 degrees when substantially no electric field is applied between said first and second substrates.
- 29. The method of claim 18, wherein an azimuthal angle (Φ) of the molecules of said liquid crystal fluid varies from about 0 degrees at said first substrate to about 90 degrees at said second substrate when substantially no electric field is applied between said first and second substrates.
- 30. The method of claim 18, wherein an azimuthal angle (Φ) of the molecules of said liquid crystal fluid varies from about 0 degrees at said second substrate to about 90 degrees at said first substrate when substantially no electric field is applied between said first and second substrates.
- 31. A method for a reflective liquid crystal display, said method comprising the steps of:
providing a first substrate that is substantially transparent; providing a second substrate that is substantially reflective and substantially parallel with said first substrate; and providing a liquid crystal fluid having a birefringence (Δn) and a negative dielectric anisotropy, wherein said liquid crystal fluid is between said first and second substrates; providing a first liquid crystal alignment layer on said first substrate, said first liquid crystal alignment layer being proximate to said liquid crystal fluid, wherein molecules of said liquid crystal fluid that are proximate to the first liquid crystal alignment layer have a first pretilt angle from about 2 degrees to about 15 degrees and a first azimuthal direction; providing a second liquid crystal alignment layer on said second substrate, said second liquid crystal alignment layer being proximate to said liquid crystal fluid, wherein molecules of said liquid crystal fluid that are proximate to the second liquid crystal alignment layer have a second pretilt angle from about 2 degrees to about 15 degrees and a second azimuthal direction, the second azimuthal direction being substantially perpendicular to the first azimuthal direction; wherein:
when applying substantially no electric field between said first and second substrates, a substantial number of the molecules of said liquid crystal fluid have their azimuthal direction substantially perpendicular to said first and second substrates; and when applying an electric field between said first and second substrates, a substantial number of the molecules of said liquid crystal fluid increase their tilt angles; whereby when applying the electric field between said first and second substrates, said liquid crystal fluid changes linear polarized incident light at said first substrate to approximately circularly polarized incident light when at said second substrate, wherein said second substrate reflects back the approximately circularly polarized incident light as approximately circularly polarized light of opposite handedness, wherein said liquid crystal fluid changes the approximately circularly polarized reflected light to approximately linear polarized reflected light when at said first substrate such that the polarization directions of the linearly polarized incident light and the linearly polarized reflected light at said first substrate are approximately perpendicular, and whereby when applying substantially no electric field between said first and second substrates, said liquid crystal fluid does not substantially change the polarization state of light passing through said liquid crystal fluid such that the polarization directions of the linearly polarized incident light and the linearly polarized reflected light at said first substrate are approximately parallel.
- 32. A reflective liquid crystal display assembly comprising:
a first substantially transparent substrate; a second substantially reflective substrate located substantially parallel to said first substrate; a liquid crystal fluid having a birefringence (Δn) and a negative dielectric anisotropy, wherein said liquid crystal fluid is between said first and second substrates; first and second liquid crystal alignment layers on said first and second substrates, respectively, wherein molecules of said fluid proximate the first and second liquid crystal alignment layers have finite pretilt angles and are oriented in first and second azimuthal directions, respectively; wherein the assembly is configured such that (i) when substantially no electric field is applied between the substrates, a substantial number of fluid molecules are oriented substantially perpendicular to said substrates, (ii) when an electrical field of optimum value is applied between the substrates, tilt angles of a substantial number of fluid molecules increase, and (iii) when a less than optimum electric field is applied between said substrates, a substantial number of fluid molecules are oriented at intermediate tilt angles.
RELATED APPLICATION
[0001] This application claims priority to U.S. Provisional Patent Application Serial No. 60/450,370, entitled “Method to Eliminate the Disclination Defects Due to Fringe Fields in Vertically Aligned Nematic Reflective LC Displays Without Hurting the Display Contrast” by Hemasiri Vithana, filed Feb. 26, 2003, and is incorporated herein by reference for all purposes.
Provisional Applications (1)
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Number |
Date |
Country |
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60450370 |
Feb 2003 |
US |