Claims
- 1. A liquid crystal display device, comprising:a liquid crystal display element formed so that a liquid crystal layer is disposed between a pair of substrates; a pair of polarizers disposed so as to flank the liquid crystal display element; and at least one optical retardation compensator plate disposed between the liquid crystal display element and the polarizers, said at least one optical retardation compensator plate being represented by an inclining refractive index ellipsoid, wherein the ratio, ΔnL (450)/ΔnL (550), of the refractive index anisotropy, ΔnL (450), of the liquid crystal material of the liquid crystal layer to light having a wavelength of 450 nm and the refractive index anisotropy, ΔnL (550), thereof to light having a wavelength of 550 nm, and the ratio, ΔnF (450)/ΔnF (550), of the refractive index anisotropy, ΔnF (450), of said at least one optical retardation compensator plate to light having a wavelength of 450 nm and the refractive index anisotropy, ΔnF (550), thereof to light having a wavelength of 550 nm satisfy the inequality: 0≤(Δ nL(450)/Δ nL(550))-1(Δ nF(450)/Δ nF(550))-1<0.35.
- 2. The liquid crystal display device as defined in claim 1,wherein the refractive index ellipsoid of said at least one optical retardation compensator plate has three principal refractive indices, na, nb, and nc, mutually related by the inequality na=nc>nb, and inclines as the direction of the principal refractive index nb inclines from the normal direction to the surface of said at least one optical retardation compensator plate around the direction of the principal refractive index na or nc disposed in said surface.
- 3. The liquid crystal display device as defined in claim 1,wherein ΔnL(450)/ΔnL(550) and ΔnF(450)/ΔnF(550) satisfy the inequality: 0≤(Δ nL(450)/Δ nL(550))-1(Δ nF(450)/Δ nF(550))-1≤0.25.
- 4. The liquid crystal display device as defined in claim 1,wherein the ratio, ΔnL (650)/ΔnL (550), of the refractive index anisotropy, ΔnL (650), of the liquid crystal material of the liquid crystal layer to light having a wavelength of 650 nm and the refractive index anisotropy, ΔnL (550), thereof to light having a wavelength of 550 nm, and the ratio, ΔnF (650)/ΔnF (550), of the refractive index anisotropy, ΔnF (650), of said at least one optical retardation compensator plate to light having a wavelength of 650 nm and the refractive index anisotropy, ΔnF (550), thereof to light having a wavelength of 550 nm satisfy the inequality: 0≤(Δ nL(650)/Δ nL(550))-1(Δ nF(450)/Δ nF(550))-1<0.27.
- 5. The liquid crystal display device as defined in claim 4,wherein ΔnL(650)/ΔnL(550) and ΔnF(650)/ΔnF(550) satisfy the inequality: 0≤1-(Δ nL(650)/Δ nL(550))1-(Δ nF(650)/Δ nF(550))≤0.20.
- 6. The liquid crystal display device as defined in claim 1,wherein the refractive index anisotropy, ΔnL (550), of a liquid crystal material of the liquid crystal layer to light having a wavelength of 550 nm is set within a range larger than 0.060 and smaller than 0.120.
- 7. The liquid crystal display device as defined in claim 6,wherein ΔnL (550) is set within a range larger than 0.070 and smaller than 0.095.
- 8. The liquid crystal display device as defined in claim 1,wherein the refractive index ellipsoid inclines by an inclination angle set within a range of 15° to 75°.
- 9. The liquid crystal display device as defined in claim 1,wherein said at least one optical retardation compensator plate has a product (na−nb)×d, of the difference between the principal refractive indices, na and nb, and the thickness, d, of the optical retardation compensator plate, the product being set to be from 80 nm to 250 nm.
- 10. A liquid crystal display device, comprising:a liquid crystal display element formed so that a liquid crystal layer is disposed between a pair of substrates; a pair of polarizers disposed so as to flank the liquid crystal display element; and at least one optical retardation compensator plate disposed between the liquid crystal display element and the polarizers, said at least one optical retardation compensator plate being represented by an inclining refractive index ellipsoid, wherein the ratio, ΔnL (650)/ΔnL (550), of the refractive index anisotropy, ΔnL (650), of the liquid crystal material of the liquid crystal layer to light having a wavelength of 650 nm and the refractive index anisotropy, ΔnL (550), thereof to light having a wavelength of 550 nm, and the ratio, ΔnF (650)/ΔnF (550), of the refractive index anisotropy, ΔnF (650), of said at least one optical retardation compensator plate to light having a wavelength of 650 nm and the refractive index anisotropy, ΔnF (550), thereof to light having a wavelength of 550 nm satisfy the inequality: 0≤1-(Δ nL(650)/Δ nL(550))1-(Δ nF(650)/Δ nF(550))<0.27.
- 11. The liquid crystal display device as defined in claim 10,wherein the refractive index ellipsoid of said at least one optical retardation compensator plate has three principal refractive indices, na, nb, and nc, mutually related by the inequality na=nc>nb, and inclines as the direction of the principal refractive index nb inclines from the normal direction to the surface of said at least one optical retardation compensator plate around the direction of the principal refractive index na or nc disposed in said surface.
- 12. The liquid crystal display device as defined in claim 10,wherein ΔnL(650)/ΔnL(550) and ΔnF(650)/ΔnF(550) satisfy the inequality: 0≤1-(Δ nL(650)/Δ nL(550))1-(Δ nF(650)/Δ nF(550))≤0.20.
- 13. The liquid crystal display device as defined in claim 10,wherein the ratio, ΔnL (450)/ΔnL (550), of the refractive index anisotropy, ΔnL (450), of the liquid crystal material of the liquid crystal layer to light having a wavelength of 450 nm and the refractive index anisotropy, ΔnL (550), thereof to light having a wavelength of 550 nm, and the ratio, ΔnF (450)/ΔnF (550), of the refractive index anisotropy, ΔnF (450), of said at least one optical retardation compensator plate to light having a wavelength of 450 nm and the refractive index anisotropy, ΔnF (550), thereof to light having a wavelength of 550 nm satisfy the inequality: 0≤(Δ nL(450)/Δ nL(550))-1(Δ nF(450)/Δ nF(550))-1<0.35.
- 14. The liquid crystal display device as defined in claim 10,wherein the refractive index anisotropy, ΔnL (550), of a liquid crystal material of the liquid crystal layer to light having a wavelength of 550 nm is set within a range larger than 0.060 and smaller than 0.120.
- 15. The liquid crystal display device as defined in claim 14,wherein ΔnL (550) is set within a range larger than 0.070 and smaller than 0.095.
- 16. The liquid crystal display device as defined in claim 10,wherein the refractive index ellipsoid inclines by an inclination angle set within a range of 15° to 75°.
- 17. The liquid crystal display device as defined in claim 10,wherein said at least one optical retardation compensator plate has a product (na−nb)×d, of the difference between the principal refractive indices, na and nb, and the thickness, d, of the optical retardation compensator plate, the product being set to be from 80 nm to 250 nm.
Priority Claims (1)
Number |
Date |
Country |
Kind |
9-88541 |
Apr 1997 |
JP |
|
Parent Case Info
This application is a divisional of U.S. application Ser. No. 09/056,035, filed Apr. 6, 1998, now allowed U.S. Pat. No. 6,137,556, the teachings of which are incorporated herein by reference.
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