Claims
- 1. A method for driving an active matrix display device having a active matrix substrate with a plurality of pixel electrodes disposed on a first insulating substrate in matrix array and a plurality of first line electrodes arranged in rows with a ferroelectric material as an active material disposed between the first electrodes and each pixel electrode, a second opposed insulating substrate having a plurality of second line electrodes arranged in columns for cooperating with the matrix of pixel electrodes and an electro-optical material disposed in the space between the substrates, comprising the steps of;
- applying a selective voltage.+-.V.sub.0 to at least one of the plurality of the first line electrodes; and
- applying a data voltage.+-.V.sub.1 to at least one of the plurality of the second line electrodes so that the range of absolute value of the data voltage .vertline.V.sub.1 .vertline. is represented by:
- .vertline.V.sub.1 .vertline.<E.sub.c .multidot.d.sub.F (C.sub.LC +C.sub.F)/C.sub.LC
- in which E.sub.C is a coercive electric field of the ferroelectric material, d.sub.F is the thickness of the ferroelectric material, C.sub.F is the capacitance of the active material at one pixel and C.sub.LC is the capacitance of the electro-optical material.
- 2. The method of claim 1, wherein the electro-optical material is a liquid crystal material and the capacitance of the liquid crystal material is C.sub.LC.
- 3. The method of claim 1, wherein the selective voltage.+-.V.sub.0 is sequentially applied to the plurality of first line electrodes.
- 4. The method of claim 1, wherein the first line electrodes on the active matrix substrate include a plurality of projections, each projection for overlapping a portion of a pixel electrode.
- 5. The method of clam 1, wherein the first line electrodes on the active matrix substrate are in the same plane as the pixel electrodes and the active material is the ferroelectric material between the side edge of the first electrode and the side edge of pixel electrode.
- 6. A method for driving an active matrix display device having a active matrix substrate with a plurality of pixel electrodes disposed on a first insulating substrate in matrix array and a plurality of first line electrodes arranged in rows with a ferroelectric material as an active material disposed between the first electrodes and each pixel electrode, a second opposed insulating substrate having a plurality of second line electrodes arranged in columns for cooperating with the matrix of pixel electrodes and an electro-optical material disposed in the space between the substrates, comprising the steps of;
- applying a selective voltage.+-.V.sub.0 to at least one of the plurality of the first line electrodes; and
- applying a data voltage.+-.V.sub.1 to at least one of the plurality of the second line electrodes so that the range of absolute value .vertline.V.sub.F .vertline. of a voltage V.sub.F is represented by:
- V.sub.F =.vertline.V.sub.1 .vertline.C.sub.LC /(C.sub.LC +C.sub.F)=E.sub.F d.sub.F
- in which C.sub.F is the capacitance of the active material at one pixel, C.sub.LC is the capacitance of the electro-optical material, E.sub.F is an electric field to be applied to the ferroelectric material, and d.sub.f defines the thickness of the ferroelectric material;
- wherein application of voltage V.sub.F to the active material avoids inversion of spontaneous polarization in the active material and wherein a time period T.sub.S for inverting said spontaneous polarization is determined by E.sub.F, and wherein V.sub.F is determined so that T.sub.S is longer than a selective period, said selective period representing the period of time during which inversion of the spontaneous polarization in the active material occurs.
- 7. The method of claim 6, wherein the voltage V.sub.F if applied in the time greater than the selective period.
- 8. The method of claim 6, wherein the reciprocal of electric field E.sub.F and time period T.sub.S form a linear relationship.
- 9. The method of claim 8, wherein the linear relationship is between the reciprocal of electric field E.sub.F and log of time period T.sub.S.
- 10. The method of claim 6, wherein the electro-optical material is a liquid crystal material and the capacitance of the liquid crystal material is C.sub.LC.
- 11. The method of claim 6, wherein the selective voltage.+-.V.sub.0 is sequentially applied to the plurality of first line electrodes.
- 12. The method of claim 6, wherein the first line electrodes on the active matrix substrate include a plurality of projections, each projection for overlapping a portion of a pixel electrode.
- 13. The method of claim 6, wherein the first line electrodes on the active matrix substrate are in the same plane as the pixel electrodes and the active material is the ferroelectric material between the side edge of the first electrode and the side edge of pixel electrode.
- 14. A method for driving an active matrix display device having a active matrix substrate with a plurality of pixel electrodes disposed on a first insulating substrate in matrix array and a plurality of first line electrodes arranged in rows with a ferroelectric material as an active material disposed between the first electrodes and each pixel electrode, a second opposed insulating substrate having a plurality of second line electrodes arranged in columns for cooperating with the matrix of pixel electrodes and an electro-optical material disposed in the space between the substrates, comprising the steps of;
- applying a selective voltage.+-.V.sub.0 to at least one of the plurality of the first line electrodes; and
- applying a data voltage.+-.V.sub.1 to at least one of the plurality of the second line electrodes so that the range of absolute value .vertline.V.sub.F .vertline. of a voltage V.sub.F is represented by:
- V.sub.F =.vertline.V.sub.1 .vertline.C.sub.LC /(C.sub.LC +C.sub.F)=E.sub.F d.sub.F
- in which C.sub.F is the capacitance of the active material at one pixel, C.sub.LC is the capacitance of the electro-optical material, E.sub.F is an electric field to be applied to the ferroelectric material, and d.sub.f defines the thickness of the ferroelectric material;
- wherein when inversion of the spontaneous polarization in the active material occurs, the reciprocal of electric field E.sub.F and a time period T.sub.S for inverting spontaneous polarization in the active material form a linear relationship.
- 15. The method of claim 14, wherein the electro-optical material is a liquid crystal material and the capacitance of the liquid crystal material is C.sub.LC.
- 16. The method of claim 14, wherein the selective voltage.+-.V.sub.0 is sequentially applied to the plurality of first line electrodes.
- 17. The method of claim 14, wherein the first line electrodes on the active matrix substrate include a plurality of projections, each projection for overlapping a portion of a pixel electrode.
- 18. The method of claim 14, wherein the first line electrodes on the active matrix substrate are in the same plane as the pixel electrodes and the active material is the ferroelectric material between the side edge of the first electrode and the side edge of pixel electrode.
- 19. The method of claim 14, wherein the linear relationship is between the reciprocal of electric field E.sub.F and the log of time period T.sub.S.
- 20. A method for driving an active matrix display device having a active matrix substrate with a plurality of pixel electrodes disposed on a first insulating substrate in matrix array and a plurality of first line electrodes arranged in rows with a ferroelectric material as an active material disposed between the first electrodes and each pixel electrode, a second opposed insulating substrate having a plurality of second line electrodes arranged in columns for cooperating with the matrix of pixel electrodes and an electro-optical material disposed in the space between the substrates, comprising the steps of;
- applying a data voltage.+-.V.sub.1 to at least one of the plurality of the first line electrodes; and
- applying a selective voltage.+-.V.sub.0 to at least one of the plurality of the second line electrodes so that the range of absolute value of the data voltage .vertline.V.sub.1 .vertline. is represented by:
- .vertline.V.sub.1 .vertline.<E.sub.c .multidot.d.sub.F (C.sub.LC +C.sub.F)/C.sub.LC
- in which E.sub.C is a coercive electric field of the ferroelectric material, d.sub.F is the thickness of the ferroelectric material, C.sub.F is the capacitance of the active material at one pixel and C.sub.LC is the capacitance of the electro-optical material.
- 21. The method of claim 20, wherein the electro-optical material is a liquid crystal material and the capacitance of the liquid crystal material is C.sub.LC.
- 22. The method of claim 20, wherein the selective voltage.+-.V.sub.0 is sequentially applied to the plurality of second line electrodes.
- 23. The method of claim 20, wherein the first line electrodes on the active matrix substrate include a plurality of projections, each projection for overlapping a portion of a pixel electrode.
- 24. The method of claim 20, wherein the first line electrodes on the active matrix substrate are in the same plane as the pixel electrodes and the active material is the ferroelectric material between the side edge of the first electrode and the side edge of pixel electrode.
- 25. A method for driving an active matrix display device having a active matrix substrate with a plurality of pixel electrodes disposed on a first insulating substrate in matrix array and a plurality of first line electrodes arranged in rows with a ferroelectric material as an active material disposed between the first electrodes and each pixel electrode, a second opposed insulating substrate having a plurality of second line electrodes arranged in columns for cooperating with the matrix of pixel electrodes and an electro-optical material disposed in the space between the substrates, comprising the steps of;
- applying a data voltage.+-.V.sub.1 to at least one of the plurality of the first line electrodes; and
- applying a selective voltage.+-.V.sub.0 to at least one of the plurality of the second line electrodes so that the range of an absolute value .vertline.V.sub.F .vertline. of a voltage V.sub.F is represented by:
- V.sub.F =.vertline.V.sub.1 .vertline.C.sub.LC /(C.sub.LC +C.sub.F)=E.sub.F d.sub.F
- in which C.sub.F is the capacitance of the active material at one pixel, C.sub.LC is the capacitance of the electro-optical material, E.sub.F is an electric field to be applied to the ferroelectric material, and d.sub.f defines the thickness of the ferroelectric material;
- wherein application of voltage V.sub.F to the active material avoids inversion of spontaneous polarization in the active material and wherein a time period T.sub.S for inverting said spontaneous polarization is determined by E.sub.F, and wherein V.sub.F is determined so that T.sub.S is longer than a selective period, said selective period representing the period of time during which inversion of the spontaneous polarization in the active material occurs.
- 26. The method of claim 25, wherein the voltage V.sub.F is applied in the time period greater than the selective period.
- 27. The method of claim 25, wherein the reciprocal of the electric field E.sub.F and time period T.sub.S form a linear relationship.
- 28. The method of claim 27, wherein the linear relationship is between the reciprocal of electric field E.sub.F and log of time period T.sub.S.
- 29. The method of claim 25, wherein the selective voltage.+-.V.sub.0 is sequentially applied to the plurality of second line electrodes.
- 30. The method of claim 25, wherein the first line electrodes on the active matrix substrate include a plurality of projections, each projection for overlapping a portion of a pixel electrode.
- 31. The method of claim 25, wherein the first line electrodes on the active matrix substrate are in the same plane as the pixel electrodes and the active material is the ferroelectric material between the side edge of the first electrode and the side edge of the pixel electrode.
- 32. The method of claim 31, wherein the linear relationship is between the reciprocal of the electric field E.sub.F and the log time period T.sub.S.
- 33. A method for driving an active matrix display device having a active matrix substrate with a plurality of pixel electrodes disposed on a first insulating substrate in matrix array and a plurality of first line electrodes arranged in rows with a ferroelectric material as an active material disposed between the first electrodes and each pixel electrode, a second opposed insulating substrate having a plurality of second line electrodes arranged in columns for cooperating with the matrix of pixel electrodes and an electro-optical material disposed in the space between the substrates, comprising the steps of;
- applying a data voltage.+-.V.sub.1 to at least one of the plurality of the first line electrodes; and
- applying a selective voltage.+-.V.sub.0 to at least one of the plurality of the second line electrodes so that the range of an absolute value .vertline.V.sub.F .vertline. of a voltage V.sub.F is represented by:
- V.sub.F =.vertline.V.sub.1 .vertline.C.sub.LC /(C.sub.LC +C.sub.F)=E.sub.F d.sub.F
- in which C.sub.F is the capacitance of the active material at one pixel, C.sub.LC is the capacitance of the electro-optical material, E.sub.F is an electric field to be applied to the ferroelectric material, and d.sub.F defines the thickness of the ferroelectric material;
- wherein when inversion of spontaneous polarization in the active material occurs, the reciprocal of electric field E.sub.F and a time period T.sub.S for inverting spontaneous polarization in the active material ferroelectric layer form a linear relationship.
- 34. The method of claim 33, wherein the electro-optical material is a liquid crystal material and the capacitance of the liquid crystal material is C.sub.LC.
- 35. The method of claim 33, wherein the selective voltage.+-.V.sub.0 is sequentially applied to the plurality of second line electrodes.
- 36. The method of claim 33, wherein the first line electrodes on the active matrix substrate include a plurality of projections, each projection for overlapping a portion of a pixel electrode.
- 37. The method of claim 33, wherein the first line electrodes on the active matrix substrate are in the same plane as the pixel electrodes and the active material is the ferroelectric material between the side edge of the first electrode and the side edge of pixel electrode.
Priority Claims (1)
| Number |
Date |
Country |
Kind |
| 1-250082 |
Sep 1989 |
JPX |
|
CROSS-REFERENCE TO RELATED APPLICATION
This application is a continuation-in-part application of U.S. patent application Ser. No. 07/288,312, now abandoned, filed Dec. 22, 1988.
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EPX |
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Non-Patent Literature Citations (3)
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Continuation in Parts (1)
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Number |
Date |
Country |
| Parent |
288312 |
Dec 1988 |
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