The present invention relates to a liquid crystal display technique field, and more particularly to a liquid crystal panel and a pixel structure thereof.
In the production of thin film transistor liquid crystal screens, there are two main alignment methods: a rubbing alignment and an optical alignment. Static electricity and particles' pollution are produced by the rubbing alignment. The optical alignment is a non-contact alignment technique, which a UV light is irradiated on an alignment film with a particular material, for automatically directing polymers of the alignment film to an irradiation angle of the UV light, thus a problem of using the rubbing alignment method will not be produced.
However, dark lines with a particular shape would be form inside each of pixel units while using the optical alignment method. Please referring to ” or “
” shapes in the entire pixel unit 10. However, an opening rate of the pixel would be affected by these dark lines, which results in a poor display effect of a thin film transistor liquid crystal display screen.
As a result, it is necessary to provide a liquid crystal panel and a pixel structure thereof to solve the problems existing in the conventional technologies.
In view of this, the present invention provides a liquid crystal panel and a pixel structure thereof, which can improve an opening rate of the pixel structure.
To achieve the above object of the present invention, an embodiment of the present invention provides a pixel structure, wherein the pixel structure comprises: a plurality of pixel units, a plurality of black matrices, a plurality of data lines, a plurality of common electrodes and a plurality of gate lines. The pixel units are arranged in an array and adjacent to each other, each of the pixel units, as an optical alignment is performed thereon, having: a horizontal dark line, a vertical dark line, a first horizontal-side dark line, a second horizontal-side dark line, a first vertical-side dark line and a second vertical-side dark line. The horizontal dark line is parallel to a horizontal side of the pixel unit. The vertical dark line is parallel to a vertical side of the pixel unit, and the vertical dark line and the horizontal dark line is intersected to form a crisscross shape. The first horizontal-side dark line is extended from an end of the vertical dark line toward a direction parallel to the horizontal dark line. The second horizontal-side dark line is extended from the other end of the vertical dark line toward the direction parallel to the horizontal dark line, wherein an extending direction of the second horizontal-side dark line is opposite to that of the first horizontal-side dark line. The first vertical-side dark line is extended from an end of the horizontal dark line toward a direction parallel to the vertical dark line. The second vertical-side dark line is extended from the other end of the horizontal dark line toward the direction parallel to the vertical dark line, wherein an extending direction of the second vertical-side dark line is opposite to that of the first vertical-side dark line. The black matrices are disposed along and overlapped with the first vertical-side dark line and the second vertical-side dark line of the pixel units. The data lines are disposed along and overlapped with the first vertical-side dark line and the second vertical-side dark line of the pixel units. The common electrodes are disposed along and overlapped with the first horizontal-side dark line and the second horizontal-side dark line of a part of the pixel units. The gate lines are disposed along and overlapped with the first horizontal-side dark line and the second horizontal-side dark line of the other part of the pixel units, wherein the gate lines and the common electrodes are alternately arranged and parallel to each other, wherein the horizontal dark line and the vertical dark line of each of the pixel units is intersected at a center of the pixel unit, wherein the pixel units includes a plurality of main pixel units and a plurality of sub pixel units arranged along a direction of the vertical side of the pixel unit and adjacent to each other; and wherein the black matrices, the data lines, the common electrodes and the gate lines are all extended and vertically turned in a z-shaped manner.
In one embodiment of the present invention, further comprising a plurality of light spacers disposed between the pixel units.
Another embodiment of the present invention provides a pixel structure, wherein the pixel structure comprises: a plurality of pixel units, a plurality of black matrices, a plurality of data lines, a plurality of common electrodes and a plurality of gate lines. The pixel units are arranged in an array and adjacent to each other, each of the pixel units, as an optical alignment is performed thereon, having: a horizontal dark line, a vertical dark line, a first horizontal-side dark line, a second horizontal-side dark line, a first vertical-side dark line and a second vertical-side dark line. The horizontal dark line is parallel to a horizontal side of the pixel unit. The vertical dark line is parallel to a vertical side of the pixel unit, and the vertical dark line and the horizontal dark line is intersected to form a crisscross shape. The first horizontal-side dark line is extended from an end of the vertical dark line toward a direction parallel to the horizontal dark line. The second horizontal-side dark line is extended from the other end of the vertical dark line toward the direction parallel to the horizontal dark line, wherein an extending direction of the second horizontal-side dark line is opposite to that of the first horizontal-side dark line. The first vertical-side dark line is extended from an end of the horizontal dark line toward a direction parallel to the vertical dark line. The second vertical-side dark line is extended from the other end of the horizontal dark line toward the direction parallel to the vertical dark line, wherein an extending direction of the second vertical-side dark line is opposite to that of the first vertical-side dark line. The black matrices are disposed along and overlapped with the first vertical-side dark line and the second vertical-side dark line of the pixel units. The data lines are disposed along and overlapped with the first vertical-side dark line and the second vertical-side dark line of the pixel units. The common electrodes are disposed along and overlapped with the first horizontal-side dark line and the second horizontal-side dark line of a part of the pixel units. The gate lines are disposed along and overlapped with the first horizontal-side dark line and the second horizontal-side dark line of the other part of the pixel units, wherein the gate lines and the common electrodes are alternately arranged and parallel to each other.
In one embodiment of the present invention, the horizontal dark line and the vertical dark line of each of the pixel units is intersected at a center of the pixel unit.
In one embodiment of the present invention, the pixel units includes a plurality of main pixel units and a plurality of sub pixel units arranged along a direction of the vertical side of the pixel unit and adjacent to each other.
In one embodiment of the present invention, the pixel units includes a plurality of the red pixel units, a plurality of the green pixel units, a plurality of the blue pixel units sequentially arranged along a direction of the horizontal side of the pixel unit.
In one embodiment of the present invention, the first vertical-side dark line and the second vertical-side dark line of each of the pixel units has a length which is half of that of the vertical side of the pixel unit.
In one embodiment of the present invention, the first horizontal-side dark line and the second horizontal-side dark line of each of the pixel units has a length which is half of that of the horizontal side of the pixel unit.
In one embodiment of the present invention, the black matrices, the data lines, the common electrodes and the gate lines are all extended and vertically turned in a z-shaped manner.
In one embodiment of the present invention, further comprising a plurality of light spacers disposed between the pixel units.
In one embodiment of the present invention, the light spacers are disposed along and overlapped with the black matrices and the data lines.
Furthermore, a further embodiment of the invention provides a liquid crystal panel, wherein the liquid crystal panel comprises: an array substrate, an opposite substrate and a liquid crystal layer disposed between the array substrate and the opposite substrate, a color photoresist layer on the array substrate, and the pixel structure described above disposed in the color photoresist layer.
In comparison with the conventional technologies, the pixel structure and the liquid crystal panel of the present invention improve the opening rate of other area of the pixel structure by disposing and overlapping the black matrices, the data lines, the common electrodes, the gate lines and other elements at the dark lines, thereby improving the display effect of the liquid crystal panel. In particular, it can improve the opening rate of the pixel structure in a color photoresist layer of the array substrate, and the display effect of the liquid crystal panel thereof, of a COA (Color filter on Array) type liquid crystal panel.
To make the above description of the present invention can be more clearly comprehensible, description below in examples of preferred embodiments with the accompanying drawings, described in detail below.
The following description of the embodiments with reference to the appended drawings is used for illustrating specific embodiments, which may be used for carrying out, of the present invention. Furthermore, the directional terms described by the present invention, such as upper, lower, top, bottom, front, back, left, right, inner, outer, side, around, center, horizontal, lateral, vertical, longitudinal, axial, radial, uppermost or lowermost, and etc., are only directions by referring to the accompanying drawings. Thus, the used directional terms are used to describe and understand the present invention, but the present invention is not limited thereto.
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When an optical alignment is performed on the pixel units 22 for automatically directing polymers of an alignment film (not shown) to an irradiation angle of the UV light, each of the pixel units 22 would form a horizontal dark line 32, a vertical dark line 34, a first horizontal-side dark line 36, a second horizontal-side dark line 38, a first vertical-side dark line 40 and a second vertical-side dark line 42. The horizontal dark line 32 is parallel to a horizontal side 44 of the pixel unit 20. The vertical dark line 34 is parallel to a vertical side 46 of the pixel unit 22, and the vertical dark line 34 and the horizontal dark line 32 is intersected to form a crisscross shape. In one embodiment, the horizontal dark line 32 and the vertical dark line 34 of each of the pixel units 22 is intersected at a center 48 of the pixel unit 22. The first horizontal-side dark line 36 is extended from an end of the vertical dark line 34 toward a direction parallel to the horizontal dark line 32. The second horizontal-side dark line 38 is extended from the other end of the vertical dark line 34 toward the direction parallel to the horizontal dark line 32, wherein an extending direction of the second horizontal-side dark line 38 is opposite to that of the first horizontal-side dark line 36. In one embodiment, as shown in
The black matrices 24 and the data lines 26 are all disposed along and overlapped with the first vertical-side dark line 40 and the second vertical-side dark line 42 of the pixel units 22. Because the black matrices 24 and the data lines 26 would influence the opening rate, disposing locations of these elements are overlapped with those of the first vertical-side dark line 40 and the second vertical-side dark line 42 for improving the opening rate of the pixel structure 10 located at other location. In one embodiment, the black matrices 24 and the data lines 26 are extended and vertically turned in a z-shaped manner.
The common electrodes 28 are disposed along and overlapped with the first horizontal-side dark line 36 and the second horizontal-side dark line 38 of a part of the pixel units 22. The gate lines 30 are disposed along and overlapped with the first horizontal-side dark line 36 and the second horizontal-side dark line 38 of the other part of the pixel units 12, wherein the gate lines 30 and the common electrodes 28 are alternately arranged and parallel to each other. For example, the second horizontal-side dark line 38 in the top of
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The present invention has been described in a preferred embodiment described above. However, the above embodiment is merely in example of performing the present invention. It must be noted that the implementation of the disclosed embodiment does not limit the scope of the invention. On the contrary, modifications and equal settings included in the spirit and scope of the claims are all includes in the scope of the present invention.
Number | Date | Country | Kind |
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201510934360.3 | Dec 2015 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2016/070396 | 1/7/2016 | WO | 00 |