The present application claims priority from Japanese application JP2013-92512 filed on Apr. 25, 2013, the content of which is hereby incorporated by reference into this application.
1. Field of the Invention
The present invention relates to a liquid crystal display device.
2. Description of the Related Art
In a horizontal electric field system (JP 2000-352713 A) which is an example of a display system of the liquid crystal display device, for the purpose of allowing a direction of a molecular axis of oriented liquid crystal molecules to rotate in a plane substantially parallel to substrates, a common electrode and pixel electrodes are disposed on one substrate, respective voltages are applied to the common electrode and the pixel electrodes, and electric field components substantially parallel to the substrates are used for display. The liquid crystal display device of the horizontal electric field system has advantages that a wide viewing angle can be obtained, and an image contrast can be improved.
In the related art liquid crystal display device of the horizontal electric field system, the horizontal electric field is generated between adjacent comb electrodes. Therefore, because a horizontal component of the electric field is small on the comb electrodes, a liquid crystal material cannot be sufficiently rotated.
FIG. 23 of JP 2012-220575 A discloses a configuration in which wall electrodes are arranged on both ends of one pixel. The respective wall electrodes are formed on both ends of one pixel, and one of the wall electrodes is each pixel electrode, and the other wall electrode is a common electrode. Also, a plane electrode is disposed for blocking an influence (signal wiring potential and a potential of an adjacent pixel) of a peripheral potential of the pixel.
As a result of evaluating the characteristic of the liquid crystal display device, it is found that an equipotential surface within one pixel is left-right asymmetric from a center of the pixel, and an orientation state of liquid crystal is also left-right asymmetric. The reason is because since the pixel electrode is surrounded by an influence of a potential around the pixel electrode, the equipotential surface is formed centered on each pixel electrode, and an electric field distribution in the vicinity of the pixel electrodes and an electric field distribution in the vicinity of the common electrode are different from each other. Also, an electric force line distribution is dense in the vicinity of the pixel electrodes and coarse in the vicinity of the common electrode, and an intense vertical electric field is generated on the plane electrode in the vicinity of the pixel electrode. For that reason, liquid crystal in the vicinity of each pixel electrode is tilted up, and the orientation state of liquid crystal is left-right asymmetric in the vicinity of the pixel electrode and the common electrode. A transmittance in a direction along which the liquid crystal in the vicinity of the pixel electrode rises up, that is, when obliquely viewing a display is lowered to degrade a viewing angle characteristic. In particular, the lowering of the transmittance is remarkable in a halftone.
An object of the invention is to provide a liquid crystal material with an effective electric field distribution generated by a horizontal electric field so that a viewing angle characteristic is not degraded.
(1) According to the invention, there is provided a liquid crystal display device including a substrate having a plurality of compartment areas, a plurality of pixel electrodes disposed in the plurality of partition areas of the substrate, a plurality of common electrodes disposed in the plurality of partition areas of the substrate, and a liquid crystal material driven by an electric field generated between the plurality of pixel electrodes and the plurality of common electrodes, in which the plurality of pixel electrodes each includes a pixel plane portion expanded along a surface of the substrate, and a pixel wall portion rising up from the pixel plane portion, and one of the pixel electrodes is arranged in each of the partition areas, in which the plurality of common electrodes each includes a common plane portion expanded along a surface of the substrate, and a common wall portion rising up from the common plane portion so as to face the pixel wall portion, and one of the common electrodes is arranged in each of the partition areas, in which the plurality of compartment areas is arrayed in a lateral direction and a longitudinal direction of the surface of the substrate, in which each of the compartment areas has the pixel wall portion on one of right and left sides in the lateral direction, and has the common wall portion on the other of the right and left sides in the lateral direction, in which molecules of the liquid crystal material are tilted up from the pixel wall portions in a direction of the common wall portion by the electric field, and in which the respective pixel wall portions of the adjacent compartment areas are positioned on opposite sides to each other in the lateral direction. According to the invention, a horizontal electric field is generated between the pixel wall portions and the common wall portions which face each other. However, the molecules of the liquid crystal material are tilted up with the provision of the pixel plane portion. Then, the transmittance is different according to a direction viewed obliquely. Under the circumstances, the sides where the pixel wall portions are located are reversed right and left between the adjacent compartment areas so that the tilted up side is reversed, and the compartment areas higher in the transmittance are arranged adjacent to the compartment areas lower in the transmittance. With this configuration, the effective electric field distribution caused by the horizontal electric field can be given the liquid crystal material so that the viewing angle characteristic is not degraded.
(2) In the liquid crystal display device according to the item (1), a distance X from an edge of the pixel plane portion on a side where the pixel wall portion is disposed to a center of the compartment area, a pixel width p from the pixel wall portion in a direction of the common wall portion, and a length L extending from the edge of the pixel plane portion toward the common wall portion have a relationship of following Expression (1).
X−p×(0.05)≦L≦X+p×(0.25) (1)
(3) In the liquid crystal display device according to the item (1) or (2), the common plane portion extends from the common wall portion so as to reach under the overall pixel plane portion through an insulating film.
(4) In the liquid crystal display device according to the item (1) or (2), the common plane portion extends from the common wall portion so as not to overlap with the pixel plane portion.
(5) In the liquid crystal display device according to the item (4), the plurality of common electrodes each further include a second common plane portion that is electrically connected to the common plane portion, and positioned under the overall pixel plane portion through an insulating film.
(6) In the liquid crystal display device according to any one of the items (1) to (5), a facing direction of the pixel wall portion and the common wall portion which face each other is parallel to the lateral direction, and the molecules of the liquid crystal material are oriented so that a long axis direction of the molecules is oblique to the longitudinal direction, and nonparallel to the lateral direction.
(7) In the liquid crystal display device according to any one of the items (1) to (5), a pixel area is configured by a pair of the compartment areas aligned in the longitudinal direction, in one of the pair of compartment areas configuring the pixel area, the facing direction of the pixel wall portion and the common wall portion which face each other is inclined in a first rotating direction with respect to the lateral direction, in the other of the pair of compartment areas configuring the pixel area, the facing direction of the pixel wall portion and the common wall portion which face each other is inclined in a second rotating direction opposite to the first rotating direction with respect to the lateral direction, and the molecules of the liquid crystal material are oriented so that a long axis direction of the molecules is parallel to the longitudinal direction.
(8) In the liquid crystal display device according to the item (7), the plurality of pixel electrodes is arrayed so that wall surfaces of the pixel wall portions are extended to zigzag in the longitudinal direction, and the plurality of common electrodes is arrayed so that wall surfaces of the common wall portions are extended to zigzag in the longitudinal direction.
Hereinafter, embodiments of the invention will be described with reference to the accompanying drawings.
The liquid crystal display device includes a substrate 10. The substrate 10 has signal lines 12. The signal lines 12 are covered with a first interlayer insulating film 14. Walls 16 made of resin are formed on the first interlayer insulating film 14. The walls 16 are arranged above the signal lines 12, and each have a rising-up wall surface, and an upper end surface. The wall surfaces may rise up vertically from the substrate 10, or may rise up obliquely from the substrate 10. The substrate 10 is compartmented into a plurality of compartment areas 18 by the walls 16. An area between a pair of walls 16 is one compartment area 18.
As illustrated in
A plurality of pixel electrodes 28 is formed on the second interlayer insulating film 26. The plurality of pixel electrodes 28 is disposed in the respective compartment areas 18 of the substrate 10. One pixel electrode 28 is disposed in each of the compartment areas 18. The plurality of pixel electrodes 28 each has a pixel plane portion 30 expanded along the surface of the substrate 10. The common plane portions 22 are expanded under the overall pixel plane portions 30 through the second interlayer insulating film 26. The plurality of pixel electrodes 28 each have a pixel wall portion 32 rising up from the pixel plane portions 30. The pixel wall portions 32 are formed on the wall surfaces of the respective walls 16. The pixel wall portions 32 overlap with the respective common wall portions 24 through the second interlayer insulating film 26.
As illustrated in
The common electrodes 20 are each formed over the surface of the wall 16 and an overall area between the adjacent walls 16, and the respective pixel electrodes 28 are arranged over the common electrodes 20 through the second interlayer insulating film 26. It is desirable that a retentive capacity is disposed for the purpose of stably operating a thin film transistor not shown. The retentive capacity may be formed by overlapping the pixel wall portions 32 and the common wall portions 24 with each other, or may be formed by overlapping the pixel plane portions 30 and the common plane portions 22 with each other. If the pixel wall portions 32 and the common wall portions 24 overlap with each other, and the pixel plane portions 30 and the common plane portions 22 overlap with each other, a sufficient area of the retentive capacity can be provided, and the thin film transistor can be stably operated.
The pixel plane portions 30 are each covered with an insulating layers 34. Each of the insulating layers 34 also covers a lower portion of the pixel wall portion 32. An oriented film 36 is formed to cover the walls 16 and the layers formed on the walls 16.
The liquid crystal display device has a color filter substrate 38 so as to face the above-mentioned substrate 10. The color filter substrate 38 includes black matrixes 40, color filter layers 42, and an overcoat layer 44 covering those components. The color filter substrate 38 is arranged so that the overcoat layer 44 faces (contacts) the oriented film 36 on the upper end surface of the walls 16. A space is formed between the oriented film 36 and the overcoat layer 44 in an area between the respective adjacent walls 16.
The liquid crystal display device has a liquid crystal material 46. The liquid crystal material 46 is arranged in spaces between the oriented film 36 and the overcoat layer 44. Molecules of the liquid crystal material 46 are oriented so that a long axis direction of the molecules is oblique to the longitudinal direction, and nonparallel to the lateral direction as illustrated by dashed lines in
In this embodiment, it is found that brightness when a screen is viewed from a front surface is high, but the brightness when the screen is viewed from a certain direction (direction of black arrows in
The reason that the equipotential surface distribution is asymmetric is because potentials around the pixel electrodes 28, that is, potentials of the adjacent pixels, and a potential of an area far distant from the liquid crystal material 46 along a vertical line of the substrate 10 become about 0V. In this case, because a periphery of the pixel electrode 28 of each white display pixel is surrounded by a potential of 0V, and the equipotential surface is formed centered on the pixel electrodes 28, a difference is generated in the equipotential surface distribution between the pixel electrodes 28 side and the common electrodes 20 side. Also, as understood from an interval of the equipotential surfaces, a vertical electric field higher than that generated above the common plane portions 22 of the common electrodes 20 is generated above the pixel plane portions 30 of the pixel electrodes 28.
For that reason, the liquid crystal molecules in the vicinity of the pixel electrodes 28 are tilted up more than the liquid crystal molecules in the vicinity of the common electrodes 20. A sufficient phase difference is not obtained from a side on which the liquid crystal molecules are tilted up, and the brightness is lowered. Conversely, because the phase difference becomes large from an opposite side thereof, the brightness becomes higher. From the above fact, the viewing angle characteristic when the screen is obliquely viewed is degraded.
Under the circumstances, in this embodiment, as illustrated in
As illustrated in
In this embodiment, the liquid crystal molecules are tilted up in any compartment area 18. The details have been described above with reference to
On the contrary, the liquid crystal molecules in the compartment areas 18U on the lower side of
From the above viewpoint, the sides at which the pixel wall portions 32 are located are reversed right and left between the adjacent compartment areas 18U and 18D, as a result of which a direction along which the phase difference becomes smaller and a direction along which the phase difference becomes larger are compensated to suppress the lowering of the brightness, and the viewing angle characteristic is improved.
According to this embodiment, a horizontal electric field is generated between the pixel wall portions 32 and the common wall portions 24 which face each other. However, the molecules of the liquid crystal material 46 are tilted up with the provision of the pixel plane portions 30. Then, the transmittance is different according to a direction viewed obliquely. Under the circumstances, the sides where the pixel wall portions 32 are located are reversed right and left between the adjacent compartment areas 18U and 18D so that the tilted up side is reversed, and the compartment areas 18 higher in the transmittance are arranged adjacent to the compartment areas 18 lower in the transmittance. With this configuration, the effective electric field distribution caused by the horizontal electric field can be given the liquid crystal material 46 so that the viewing angle characteristic is not degraded.
In the example of
A plurality of the common electrodes 120 each further includes a second common plane portion 122a. The second common plane portion 122a is electrically connected to the common plane portion 122. The second common plane portion 122a is located under the overall pixel plane portion 130 through a second interlayer insulating film 126. A retention capacity of a thin film transistor is formed by the pixel plane portion 130 and the second common plane portion 122a which overlap with each other through the second interlayer insulating film 126 so that the thin film transistor can stably operate.
In detail, in this embodiment, pixel areas 248 are each configured by a pair of compartment areas 218U and 218D which are aligned in the longitudinal direction. A plurality of pixel electrodes 228 is arrayed so that wall surfaces of pixel wall portions 232 are extended to zigzag in the longitudinal direction. Also, a plurality of common electrodes 220 is arrayed so that wall surfaces of common wall portions 224 are extended to zigzag in the longitudinal direction. The liquid crystal molecules are initially oriented so that a long axis direction thereof becomes parallel to the longitudinal direction.
A facing direction of the pixel wall portions 232 and the common wall portions 224 which face each other is inclined in a first rotating direction (a direction along which the right side rises up) with respect to the lateral direction in one (compartment areas 218U on the upper side of
A facing direction of the pixel wall portions 232 and the common wall portions 224 which face each other is inclined in a second rotating direction (a direction along which the left side rises up) opposite to the first rotating direction with respect to the lateral direction in the other (compartment areas 218D on the lower side of
The compartment areas 218U on the upper side in which the liquid crystal molecules are twisted rightward, and tilted up in the right direction, and the compartment areas 218D on the lower side in which the liquid crystal molecules are twisted leftward, and tilted up in the left direction are combined together to configure the pixel areas 248. With the above configuration, not only the viewing angle characteristic of the transmittance, but also the viewing angle characteristic of the hue can be compensated.
Subsequently, experimental results of the liquid crystal display device according to the invention will be described. In the experiment, a voltage (Vmax) necessary to obtain a maximum transmittance in front of the screen is applied to measure a normalized value (normalized transmittance) which is the transmittance of the front of the screen.
An example (refer to
It is confirmed from the measurement results that the normalized transmittance in the comparative example is asymmetric with respect to the polar angle of 0 degrees whereas the viewing angle characteristic in this example is symmetrical. Therefore, it is confirmed that the viewing angle characteristic of the pixels can be remarkably improved with the application of the invention.
Subsequently, in order to not only improve the viewing angle characteristic of a panel, but also further improve the front brightness, an optimum length of the pixel plane portions 30 of the pixel electrodes 28 is studied. The reason why the length of the pixel plane portions 30 is optimized is because since an electric field intensity and a direction of the electric field are different between the pixel wall portions 32 side and the common wall portions 24 side as illustrated in
It is found from the results shown in
Also, when it is assumed that the normalized transmittance of the related art horizontal electric field switching system is about 88%, if the normalized transmittance in this example is equal to or higher than about 90%, the higher transmittance higher than that in the related art is obtained. Therefore, if the length L1 of the pixel plane portions 30 of the pixel electrodes 28 in this example is shorter by 1 μm, or longer by 5 μm from the distance to the pixel center, the higher transmittance than that in the related art horizontal electric field switching system is obtained. That is, when the distance from the edge on the walls 16 side of the pixel plane portions 30 to the pixel center is X (μm), the length L1 (μm) of the pixel plane portions 30 falls within the following expression.
X−1≦L1≦X+5
As a result, the high front brightness can be realized.
From the experimental results, it is preferable that the distance X from the edge of the pixel plane portions 30 on the side where the pixel wall portions 32 are disposed to the center of the compartment areas 18, a pixel width p from the pixel wall portions 32 in a direction of the common wall portions 24, and the length L1 extended from the edge of the pixel plane portions 30 toward the common wall portions 24 have the following relationship.
X−p×(0.05)≦L1≦X+p×(0.25)
When the above-mentioned features are further applied to the above-mentioned embodiments, the brightness of the front of the screen can be improved while the viewing angle characteristic is improved.
While there have been described what are at present considered to be certain embodiments of the invention, it will be understood that various modifications may be made thereto, and it is intended that the appended claims cover all such modifications as fall within the true spirit and scope of the invention.
Number | Date | Country | Kind |
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2013-092512 | Apr 2013 | JP | national |
Number | Name | Date | Kind |
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20100302492 | Kubota et al. | Dec 2010 | A1 |
20120257156 | Hiratsuka et al. | Oct 2012 | A1 |
Number | Date | Country |
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2000-352713 | Dec 2000 | JP |
2012-220575 | Nov 2012 | JP |
Number | Date | Country | |
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20140320795 A1 | Oct 2014 | US |