Claims
- 1. A reflective type liquid crystal display device comprising:
- a first light-transmittable insulating substrate, including at least one transparent electrode;
- a second insulating substrate;
- a reflector formed on the second insulating substrate, the reflector forming at least one second electrode for display driving in connection with the at least one transparent electrode;
- a liquid crystal layer sealed between the first light-transmittable substrate and the reflector, the liquid crystal layer including nematic liquid crystal molecules;
- an optical phase compensating member disposed on the first light-transmittable substrate; and
- a polarizer at a light incident side, disposed on the optical phase compensating member,
- wherein the director direction of the liquid crystal molecules of the liquid crystal layer is almost orthogonal to a slow direction of the optical phase compensating member, and
- further wherein a light transmission state is selected when a retardation .DELTA.n.sub.1 d.sub.1, wherein .DELTA.n.sub.1 is an optical anisotropy of the liquid crystal layer and d1 is a thickness of the liquid crystal layer, and a retardation .DELTA.n.sub.2 d.sub.2, wherein .DELTA.n.sub.2 is an optical anisotropy of the optical phase compensating member and d.sub.2 is a thickness of the optical phase compensating member, are in a relation of
- .vertline..DELTA.n.sub.1 d.sub.1 -.DELTA.n.sub.2 d.sub.2 .vertline./.lambda.=m/2.+-.0.1, (1)
- wherein m is an integer and .lambda. is a wavelength in a range of 400 to 700 nm, upon application of a voltage V.sub.1 (V.sub.1 .gtoreq.0) and a light shielding state is selected when the retardation of the liquid crystal cell and the optical phase compensating member are in a relation of
- .vertline..DELTA.n.sub.1 d.sub.1 -.DELTA.n.sub.2 d.sub.2 .vertline./.lambda.=0.25+m/2.+-.0.1, (2)
- upon application of a voltage V.sub.2 (V.sub.2 >V.sub.1), wherein a numerical value of .vertline..DELTA.n.sub.1 d.sub.1 -.DELTA.n.sub.2 d.sub.2 .vertline. is varied depending on an electric field applied to the liquid crystal layer, and still further wherein the relation (.DELTA.n.lambda.)F>(.DELTA.n.lambda.)Lc is satisfied when .DELTA.n.sub.1 d.sub.1 >.DELTA.n.sub.2 d.sub.2 is met in the light shielding state, wherein (.DELTA.n.lambda.)F is a magnitude of wavelength dispersion of the optical compensating member and (.DELTA.n.lambda.)Lc is a magnitude of wavelength dispersion of the liquid crystal layer, and the relation (.DELTA.n.lambda.)F<(.DELTA.n.lambda.)Lc is satisfied when .DELTA.n.sub.1 d.sub.1 <.DELTA.n.sub.2 d.sub.2 is met in the light shielding state.
- 2. The reflective type liquid crystal display device of claim 1, wherein one of an absorption axis and a transmission axis of the polarizer is set in a range of 30.degree. to 60.degree. to the director direction of the liquid crystal molecules of the liquid crystal layer.
- 3. The reflective type liquid crystal display device of claim 1, wherein the reflector is mirror finished.
- 4. The reflective type liquid crystal display device of claim 1, wherein a color filter layer is formed on one of the first light-transmittable insulating substrate and at least one transparent electrode.
- 5. The reflective type liquid crystal display device of claim 1, wherein the reflector includes a layer with undulations formed thereon.
- 6. A reflective type liquid crystal display device comprising:
- a first light-transmittable substrate, including at least one transparent electrode;
- a second insulating substrate;
- a reflector formed on the second insulating substrate, the reflector forming at least one second electrode for display driving in connection with the at least one transparent electrode;
- a liquid crystal layer sealed between the first light-transmittable substrate and the reflector, the liquid crystal layer including nematic liquid crystal molecules;
- an optical phase compensating member disposed on the first light-transmittable substrate; and
- a polarizer at a light incident side, disposed on the optical phase compensating member,
- wherein the director direction of the liquid crystal molecules of the liquid crystal layer is almost orthogonal to a slow direction of the optical phase compensating member,
- and further wherein a light shielding state is selected when a retardation .DELTA.n.sub.1 d.sub.1, where .DELTA.n.sub.1 is an optical anisotropy of the liquid crystal layer and d.sub.1 is a thickness of the liquid crystal layer, and a retardation .DELTA.n.sub.2 d.sub.2, where .DELTA.n.sub.2 is an optical anisotropy of the optical phase compensating member and d.sub.2 is a thickness of the optical phase compensating member, are in a relation of
- .vertline..DELTA.n.sub.1 d.sub.1 -.DELTA.n.sub.2 d.sub.2 .vertline./.lambda.=0.25+m/2.+-.0.1, (2)
- wherein m is an integer and .gamma. is a wavelength in a range of 400 to 700 nm, upon application of a voltage V.sub.1 (V.sub.1 .gtoreq.0) and a light transmission state is selected when the retardation of the liquid crystal cell and the optical phase compensating member are in a relation of
- .vertline..DELTA.n.sub.1 d.sub.1 -.DELTA.n.sub.2 d.sub.2 .vertline./.lambda.=m/2.+-.0.1, (1)
- upon application of a voltage V.sub.2 (V.sub.2 >V.sub.1), wherein a numerical value of .vertline..DELTA.n.sub.1 d.sub.1 -.DELTA.n.sub.2 d.sub.2 .vertline. is varied depending on an electric field applied to the liquid crystal layer and still further wherein the relation (.DELTA.n.lambda.)F>(.DELTA.n.lambda.)Lc is satisfied when .DELTA.n.sub.1 d.sub.1 >.DELTA.n.sub.2 d.sub.2 is met in the light shielding state, wherein (.DELTA.n.lambda.)F is a magnitude of wavelength dispersion of the optical compensating member and (.DELTA.n.lambda.)Lc is a magnitude of wavelength dispersion of the liquid crystal layer, and the relation (.DELTA.n.lambda.)F<(.DELTA.n.lambda.)Lc is satisfied when .DELTA.n.sub.1 d.sub.1 <.DELTA.n.sub.2 d.sub.2 is met in the light shielding state.
- 7. The reflective type liquid crystal display device of claim 6, wherein one of an absorption axis and a transmission axis of the polarizer is set in a range of 30.degree. to 60.degree. to the director direction of the liquid crystal molecules of the liquid crystal layer.
- 8. The reflective type liquid crystal display device of claim 6, wherein the reflector is mirror finished.
- 9. The reflective type liquid crystal display device of claim 6, wherein a color filter layer is formed on one of the first light-transmittable insulating substrate and at least one transparent electrode.
- 10. The reflective type liquid crystal display device of claim 6, wherein the reflector includes a layer with undulations formed thereon.
Priority Claims (2)
Number |
Date |
Country |
Kind |
4-169540 |
Jun 1992 |
JPX |
|
4-261310 |
Sep 1992 |
JPX |
|
Parent Case Info
This application is a continuation divisional of application Ser. No. 08/526,275 filed on Sep. 11, 1995, now U.S. Pat. No. 5,684,551 the entire contents of which are hereby incorporated by reference; which was a continuation of application Ser. No. 08/081,155, filed on Jun. 25, 1993, now abandoned.
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Entry |
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Divisions (1)
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Number |
Date |
Country |
Parent |
526275 |
Sep 1995 |
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Continuations (1)
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Number |
Date |
Country |
Parent |
81155 |
Jun 1993 |
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