The present disclosure relates to the field of display and, more particularly, relates to a pixel electrode structure and a liquid crystal display panel.
Typically, a pixel electrode of conventional liquid crystal displays (LCDs) has a multi-domain structure. As shown in
As shown in
Consequently, a problem of low light transmittance through conventional LCD panels needs to be solved.
The present disclosure provides a pixel electrode structure and an LCD to alleviate a problem of low light transmittance through conventional LCD panels.
To solve the above problem, technical solutions provided by the present disclosure are described below.
The present disclosure provides a pixel electrode structure, including: a main electrode located on a center of a pixel electrode, wherein the pixel electrode is divided into at least two liquid crystal alignment regions by the main electrode, and the main electrode is an electrode strip with a zigzag shape; a plurality of branch electrodes located in each of the at least two liquid crystal alignment regions, wherein the branch electrodes are parallel to each other and are connected to the main electrode; and a plurality of gaps formed between every two adjacent branch electrodes.
In the pixel electrode structure provided by the present disclosure, a width of the main electrode ranges from 2 μm to 6 μm.
In the pixel electrode structure provided by the present disclosure, widths of the branch electrodes range from 2 μm to 3.5 μm.
In the pixel electrode structure provided by the present disclosure, the main electrode is made of a plurality of main electrode segments which are connected to each other, and an included angle between each two adjacent main electrode segments ranges from 60° to 120°.
In the pixel electrode structure provided by the present disclosure, an included angle between the branch electrodes and the main electrode connected thereto and the included angle between each two adjacent main electrode segments are same.
In the pixel electrode structure provided by the present disclosure, the included angle between each two adjacent main electrode segments is 90°.
In the pixel electrode structure provided by the present disclosure, widths of the main electrode segments are same.
In the pixel electrode structure provided by the present disclosure, each of the main electrode segments corresponds to one of the gaps.
In the pixel electrode structure provided by the present disclosure, each of the main electrode segments corresponds to and is perpendicular to two of the gaps.
In the pixel electrode structure provided by the present disclosure, each of the main electrode segments corresponds to and is perpendicular to three of the gaps.
Furthermore, the present disclosure provides an LCD panel, including a pixel electrode structure including: a main electrode located on a center of a pixel electrode, wherein the pixel electrode is divided into at least two liquid crystal alignment regions by the main electrode, and the main electrode is an electrode strip with a zigzag shape; a plurality of branch electrodes located in each of the at least two liquid crystal alignment regions, wherein the branch electrodes are parallel to each other and are connected to the main electrode; and a plurality of gaps formed between every two adjacent branch electrodes.
In the LCD panel provided by the present disclosure, a width of the main electrode ranges from 2 μm to 6 μm.
In the LCD panel provided by the present disclosure, a width of the main electrode ranges from 2 μm to 6 μm.
In the LCD panel provided by the present disclosure, the main electrode is made of a plurality of main electrode segments which are connected to each other, and an included angle between each two adjacent main electrode segments ranges from 60° to 120°.
In the LCD panel provided by the present disclosure, an included angle between the branch electrodes and the main electrode segments connected thereto and the included angle between each two adjacent main electrode segments are same.
In the LCD panel provided by the present disclosure, the included angle between each two adjacent main electrode segments is 90°.
In the LCD panel provided by the present disclosure, widths of the main electrode segments are same.
In the LCD panel provided by the present disclosure, each of the main electrode segments corresponds to one of the gaps.
In the LCD panel provided by the present disclosure, each of the main electrode segments corresponds to and is perpendicular to two of the gaps.
In the LCD panel provided by the present disclosure, each of the main electrode segments corresponds to and is perpendicular to three of the gaps.
Regarding the beneficial effects: the present disclosure provides a pixel electrode structure and an LCD panel. The pixel electrode structure includes a main electrode located on a center of a pixel electrode, wherein the pixel electrode is divided into at least two liquid crystal alignment regions by the main electrode, and the main electrode is an electrode strip with a zigzag shape; a plurality of branch electrodes located in the at least two liquid crystal alignment regions, wherein the branch electrodes are parallel to each other and are connected to the main electrode; and a plurality of gaps formed between two adjacent branch electrodes. By the zigzag-shaped electrode strip of the pixel electrode structure, a junction electric field is formed in a liquid crystal cell to which the main electrode corresponds. The junction electric field may improve convergence and collimation of light; therefore, black lines may be stabilized, widths of the black lines may be reduced, and light transmittance through display panels may be increased. Furthermore, by a disposing way of the zigzag-shaped electrode strip, black lines may be stabilized, and widths of the main electrode may be reduced, thereby further reducing widths of the black lines appearing on a location corresponding to the main electrode and increasing light transmittance through display panels.
The following description of the various embodiments is provided with reference to the accompanying drawings. It should be understood that terms such as “upper”, “lower”, “front”, “rear”, “left”, “right”, “inside”, “outside”, “lateral”, as well as derivative thereof should be construed to refer to the orientation as then described or as shown in the drawings under discussion. These relative terms are for convenience of description, do not require that the present disclosure be constructed or operated in a particular orientation, and shall not be construed as causing limitations to the present disclosure. In the drawings, the identical or similar reference numerals constantly denote the identical or similar elements or elements having the identical or similar functions.
A pixel electrode structure provided by the present disclosure may alleviate a problem of low light transmittance through conventional LCD panels.
In one embodiment, as shown in
The present embodiment provides the pixel electrode structure. By the zigzag-shaped electrode strip of the pixel electrode structure, a junction electric field is formed in a liquid crystal cell to which the main electrode corresponds. The junction electric field may improve convergence and collimation of light; therefore, black lines may be stabilized, widths of the black lines may be reduced, and light transmittance through display panels may be increased. Furthermore, by a disposing way of the zigzag-shaped electrode strip, black lines may be stabilized, and widths of the main electrode may be reduced, thereby further reducing widths of the black lines appearing on a location corresponding to the main electrode and increasing light transmittance through display panels.
Specifically, the pixel electrode structure provided by the present disclosure are described as follows according to specific embodiments.
In one embodiment, as shown in
A width of the first main electrode 201 and a width of the second main electrode 202 may be even or uneven, that is, the width of the first main electrode 201 and the width of the second main electrode 202 may be same or different. Preferably, as shown in
The widths of the above two main electrodes range from 2 μm to 6 μm and are not less than widths of the branch electrodes 203. The greater the widths of the above two main electrodes, the more stable the black lines appearing on a location corresponding to the above two main electrodes. The less the widths of the above two main electrodes, the more convergent the black lines appearing on the location corresponding to the above two main electrodes, and the less the widths of the black lines appearing on the location corresponding to the above two main electrodes. As a result, the widths of the above two main electrodes should be as narrow as possible as long as stability of the black lines appearing on the location corresponding to the above two main electrodes can be ensured.
In each of the liquid crystal alignment regions, widths of different branch electrodes 203 may be same or different, and widths of different portions of a single branch electrode 203 may be same or different. Specifically, the widths of different branch electrodes 203 and the widths of different portions of a single branch electrode 203 may be decided by an electric field distribution, but are not limited here. The widths of the branch electrodes 203 range from 2 μm to 3.5 μm. Preferably, as shown in
Likewise, widths of different gaps 204 may be same or different, and widths of different portions of a single gap 204 may be same or different. Specifically, the widths of different gaps 204 and the widths of different portions of a single gap 204 may be decided by an electric field distribution, but are not limited here. The widths of the gaps 204 range from 1 μm to 4.5 μm. Preferably, as shown in
The first main electrode 201 and the second main electrode 202 are made of a plurality of main electrode segments which are sequentially connected, and lengths of the main electrode segments may be same or different. Preferably, as shown in
As shown in
In the present embodiment, each of the second main electrode segments 2021 only corresponds to one gap (first gap 2041). Similarly, each of the second main electrode segments 2022 only corresponds to one gap (second gap 2042). In other words, in the pixel electrode structure provided by the present embodiment, an orderly zigzag-shaped design is formed by one gap crossing a main electrode segment.
As shown in
In one embodiment, as shown in
A width of the third main electrode 401 and a width of the fourth main electrode 402 may be even or uneven, that is, the width of the third main electrode 401 and the width of the fourth main electrode 402 may be same or different. Preferably, as shown in
The widths of the above two main electrodes range from 2 μm to 6 μm and are not less than widths of the branch electrodes 403. The greater the widths of the above two main electrodes, the more stable the black lines appearing on a location corresponding to the above two main electrodes. The less the widths of the above two main electrodes, the more convergent the black lines appearing on the location corresponding to the above two main electrodes, and the less the widths of the black lines appearing on the location corresponding to the above two main electrodes. As a result, the widths of the above two main electrodes should be as narrow as possible as long as stability of the black lines appearing on the location corresponding to the above two main electrodes can be ensured.
In each of the liquid crystal alignment regions, widths of different branch electrodes 403 may be same or different, and widths of different portions of a single branch electrode 403 may be same or different. Specifically, the widths of different branch electrodes 403 and the widths of different portions of a single branch electrode 403 may be decided by an electric field distribution, but are not limited here. The widths of the branch electrodes 403 range from 2 μm to 3.5 μm. Preferably, as shown in
Likewise, widths of different gaps 404 may be same or different, and widths of different portions of a single gap 404 may be same or different. Specifically, the widths of different gaps 404 and the widths of different portions of a single gap 404 may be decided by an electric field distribution, but are not limited here. The widths of the gaps 404 range from 1 μm to 4.5 μm. Preferably, as shown in
The third main electrode 401 and the fourth main electrode 402 are made of a plurality of main electrode segments which are sequentially connected, and lengths of the main electrode segments may be same or different. Preferably, as shown in
As shown in
In the present embodiment, each of the fourth main electrode segments 4021 corresponds to two gaps (two third gaps 4041). Similarly, each of the fourth main electrode segments 4022 corresponds to two gaps (two fourth gaps 4042). In other words, in the pixel electrode structure provided by the present embodiment, an orderly zigzag-shaped design is formed by two gaps crossing a main electrode segment.
As shown in
Compared to the pixel electrode structure having the orderly zigzag shape formed by one gap crossing a main electrode segment, under a condition that other parameters are same, in the pixel structure provided by the present disclosure, lengths of the main electrode segments are increased so that a length of the entire main electrode is increased, and a length of a crisscross black line at a center of a pixel electrode is increased as well.
In one embodiment, as shown in
A width of the fifth main electrode 601 and a width of the sixth main electrode 602 may be even or uneven, that is, the width of the fifth main electrode 601 and the width of the sixth main electrode 602 may be same or different. Preferably, as shown in
The widths of the above two main electrodes range from 2 μm to 6 μm and are not less than widths of the branch electrodes 603. The greater the widths of the above two main electrodes, the more stable the black lines appearing on a location corresponding to the above two main electrodes. The less the widths of the above two main electrodes, the more convergent the black lines appearing on the location corresponding to the above two main electrodes, and the less the widths of the black lines appearing on the location corresponding to the above two main electrodes. As a result, the widths of the above two main electrodes should be as narrow as possible as long as stability of the black lines appearing on the location corresponding to the above two main electrodes can be ensured.
In each of the liquid crystal alignment regions, widths of different branch electrodes 603 may be same or different, and widths of different portions of a single branch electrode 603 may be same or different. Specifically, the widths of different branch electrodes 603 and the widths of different portions of a single branch electrode 603 may be decided by an electric field distribution, but are not limited here. The widths of the branch electrodes 403 range from 2 μm to 3.5 μm. Preferably, as shown in
Likewise, widths of different gaps 604 may be same or different, and widths of different portions of a single gap 604 may be same or different. Specifically, the widths of different gaps 604 and the widths of different portions of a single gap 604 may be decided by an electric field distribution, but are not limited here. The widths of the gaps 604 range from 1 μm to 4.5 μm. Preferably, as shown in
The fifth main electrode 601 and the sixth main electrode 602 are made of a plurality of main electrode segments which are sequentially connected, and lengths of the main electrode segments may be same or different. Preferably, as shown in
As shown in
In the present embodiment, each of the sixth branch main electrode segments 6021 corresponds to three gaps (three third gaps 4041). Similarly, each of the fourth branch main electrode segments 4022 corresponds to three gaps (three fourth gaps 4042). In other words, in the pixel electrode structure provided by the present embodiment, an orderly zigzag-shaped design is formed by three gaps crossing a main electrode segment.
As shown in
Compared to the pixel electrode structure having the orderly zigzag shape formed by three gaps crossing a main electrode segment, under a condition that other parameters are same, in the pixel structure provided by the present disclosure, lengths of the main electrode segments are further increased so that a length of the entire main electrode is further increased, and a length of a crisscross black line at a center of a pixel electrode is further increased as well. An overly long black line is not beneficial for improving light transmittance. On the other hand, a corner between long main electrode segments is not beneficial for stabling a black line at a center of a pixel electrode.
In other embodiments, the included angle between two adjacent main electrode segments may be any angles ranging from 60° to 120° in addition to 90°, and a working principle is similar to and may be referred to the above embodiments. The included angle between two adjacent main electrode segments is not limited here.
In other embodiments, a zigzag-shaped main electrode having the designs of one gap crossing a main electrode segment, two gaps crossing a main electrode segment, and three gaps crossing a main electrode segment may be randomly combined in a single pixel electrode structure, and a working principle is similar to and may be referred to the above embodiments. The design of a zigzag-shaped main electrode is not limited here.
A pixel electrode provided by the present disclosure may have a four-domain structure, an eight-domain structure, or a multiple-domain structure, whereas structures of the pixel electrode are not limited to the present disclosure.
Meanwhile, the present disclosure further provides a liquid crystal display (LCD) panel, including a pixel electrode structure having a plurality of arrays disposed thereon. The pixel electrode includes: a main electrode located on a center of a pixel electrode, wherein the pixel electrode is divided into at least two liquid crystal alignment regions by the main electrode, and the main electrode is an electrode strip with a zigzag shape; a plurality of branch electrodes located in each of the at least two liquid crystal alignment regions, wherein the branch electrodes are parallel to each other and are connected to the main electrode; and a plurality of gaps formed between every two adjacent branch electrodes.
The present disclosure provides an LCD panel including a pixel electrode structure. The pixel electrode structure includes a main electrode located on a center of a pixel electrode, wherein the pixel electrode is divided into at least two liquid crystal alignment regions by the main electrode, and the main electrode is an electrode strip with a zigzag shape; a plurality of branch electrodes located in the at least two liquid crystal alignment regions, wherein the branch electrodes are parallel to each other and are connected to the main electrode; and a plurality of gaps formed between two adjacent branch electrodes. By the zigzag-shaped electrode strip of the pixel electrode structure, a junction electric field is formed in a liquid crystal cell to which the main electrode corresponds. The junction electric field may improve convergence and collimation of light; therefore, black lines may be stabilized, widths of the black lines may be reduced, and light transmittance through display panels may be increased. Furthermore, by a disposing way of the zigzag-shaped electrode strip, black lines may be stabilized, and widths of the main electrode may be reduced, thereby further reducing widths of the black lines appearing on a location corresponding to the main electrode and increasing light transmittance through display panels.
In one embodiment, a width of the main electrode ranges from 2 μm to 6 μm.
In one embodiment, a width of the main electrode ranges from 2 μm to 6 μm.
In one embodiment, the main electrode is made of a plurality of main electrode segments which are connected to each other, and an included angle between each two adjacent main electrode segments ranges from 60° to 120°.
In one embodiment, an included angle between the branch electrodes and the main electrode connected thereto and the included angle between each two adjacent main electrode segments are same.
In one embodiment, the included angle between each two adjacent main electrode segments is 90°.
In one embodiment, widths of the main electrode segments are same.
In one embodiment, each of the main electrode segments corresponds to one of the gaps.
In one embodiment, each of the main electrode segments corresponds to and is perpendicular to two of the gaps.
In one embodiment, each of the main electrode segments corresponds to and is perpendicular to three of the gaps.
According to the above embodiments, the present disclosure provides a pixel electrode structure and an LCD panel. The pixel electrode structure includes a main electrode located on a center of a pixel electrode, wherein the pixel electrode is divided into at least two liquid crystal alignment regions by the main electrode, and the main electrode is an electrode strip with a zigzag shape; a plurality of branch electrodes located in the at least two liquid crystal alignment regions, wherein the branch electrodes are parallel to each other and are connected to the main electrode; and a plurality of gaps formed between two adjacent branch electrodes. By the zigzag-shaped electrode strip of the pixel electrode structure, a junction electric field is formed in a liquid crystal cell to which the main electrode corresponds. The junction electric field may improve convergence and collimation of light; therefore, black lines may be stabilized, widths of the black lines may be reduced, and light transmittance through display panels may be increased. Furthermore, by a disposing way of the zigzag-shaped electrode strip, black lines may be stabilized, and widths of the main electrode may be reduced, thereby further reducing widths of the black lines appearing on a location corresponding to the main electrode and increasing light transmittance through display panels.
To sum up, the present disclosure has been described with a preferred embodiment thereof. The preferred embodiment is not intended to limit the present disclosure, and it is understood that many changes and modifications to the described embodiment can be carried out without departing from the scope and the spirit of the disclosure that is intended to be limited only by the appended claims.
Number | Date | Country | Kind |
---|---|---|---|
201911223940.6 | Dec 2019 | CN | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/CN2019/125555 | 12/16/2019 | WO | 00 |