1. Technical Field
The disclosure relates to a pixel structure, and an active device array substrate and a liquid crystal display (LCD) panel having the pixel structure. More particularly, the disclosure relates to a pixel structure capable of enhancing the liquid crystal efficiency, and an active device array substrate and a liquid crystal display panel having the pixel structure.
2. Description of Related Art
In the present LCD panels, a vertical alignment (VA) technique is generally adopted to tilt the liquid crystal molecules toward a specific direction so that the wide-viewing angle requirement is achieved. The VA technique of liquid crystal display panels mainly includes a multi-domain vertically alignment (MVA) type LCD panel and a pattern vertically alignment (PVA) type LCD panel.
To obtain a better optical characteristic, either the MVA LCD panel 100 or the PVA LCD panel 102 is required to render the liquid crystal molecules 132 tilt toward a 45-degrees direction during a voltage is applied. More specifically, the slits S are formed on the pixel electrode 114 (or the opposite electrode 124) in the manner of extending in the 45-degrees direction, and the above-mentioned protrusions P are disposed on the opposite electrode 124 in the manner of extending in the 45-degrees direction.
However, the dispositions of the plurality of slits S and the plurality of protrusions P would increase the amount of the dark lines in the aperture region of the pixel structure, which causes the reduction in the light transmission rate. Furthermore, the liquid crystal molecules 132 adjacent to the protrusions P in the MVA LCD panel 100 are pre-tilted, which causes the light leakage problem in the dark state and the reduction in the contrast ratio.
Accordingly, the disclosure is directed to a pixel structure which is capable of providing desirable liquid crystal efficiency, desirable light transmission rate, desirable contrast ratio, and desirable liquid crystal response time in the VA mode.
The disclosure is directed to an active device array substrate having a plurality of pixel structures arranged in array which is capable of providing desirable liquid crystal efficiency, desirable light transmission rate, desirable contrast ratio, and desirable liquid crystal response time.
The disclosure is directed to an LCD panel having said active device array substrate capable of displaying images with high quality.
In view of above, the disclosure provides a pixel structure disposed on a substrate having a horizontal direction and a vertical direction, and driven by a scan line and a data line. The pixel structure includes a pixel electrode and an active device. The pixel electrode has a first extension portion and a second extension portion connected to the first extension portion, wherein a first included angle of the first extension portion and the horizontal direction is θ degrees, a second included angle of the second extension portion and the horizontal direction is (360-θ) degrees, the data line is parallel to the first extension portion and the second extension portion, and a plurality of silts are perpendicular to the data line. The pixel electrode is electrically connected to the scan line and the data line via the active device.
The disclosure further provides an active device array substrate including a substrate, a scan line, a data line, and a pixel structure. The substrate has a horizontal direction and a vertical direction. The scan lines and the data lines are disposed on the substrate. The pixel structure is disposed on the substrate, the pixel structure is driven by the scan line and the data line, and the pixel structure includes a pixel electrode and an active device. The pixel electrode has a first extension portion and a second extension portion connected to the first extension portion, wherein a first included angle of the first extension portion and the horizontal direction is θ degrees, a second included angle of the second extension portion and the horizontal direction is (360-θ) degrees, the data line is parallel to the first extension portion and the second extension portion, a plurality of silts are perpendicular to the data line. The pixel electrode is electrically connected to the scan line and the data line via the active device.
The disclosure further provides a liquid crystal display panel including the above-mentioned active device array substrate, a color filter substrate, and a liquid crystal layer. The color filter substrate is opposite to the active device array substrate. The liquid crystal layer is located between the active device array substrate and the color filter substrate.
In order to make the aforementioned and other features and advantages of the disclosure more comprehensible, embodiments accompanying figures are described in detail below.
The accompanying drawings are included to provide a further understanding of the disclosure, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the disclosure and, together with the description, serve to explain the principles of the disclosure.
The pixel electrode 210 further has a plurality of slits FS that are perpendicular to the data line 320. The silts FS are located at two sides of the first extension portion 212 and two sides of the second extension portion 214, and be separated by a predetermined distance to subsequently align the liquid crystal molecules (not illustrated). In addition, the aforesaid slits FS can be named as micro-slits and constitute a jagged structure or a tooth structure by being formed at two sides of the first extension portion 212 and two sides of the second extension portion 214. The pixel electrode 210 is electrically connected to the scan line 310 and the data line 320 via the active device 220.
In one embodiment, the first included angle θ1 is, for instance, 45 degrees and the second included angle θ2 is, for instance, 315 degrees. Namely, the pixel electrode 210 is formed compliant to the direction to which the liquid crystal molecules are going to tilt (i.e. 45-degrees or 315-degrees). It is also presented that the first extension portion 212 is extended in the 45-degrees direction and the second extension portion 214 is extended in the 315-degrees direction. However, the values of the first included angle θ1 and the second included angle θ2 (i.e. the extending directions of the first extension portion 212 and the second extension portion 214) are not restricted in the disclosure, which can be determined according to the design requirement of the LCD panel.
Furthermore, when the first included angle θ1 is 45 degrees and the second included angle θ2 is 315 degrees, the included angle of the first extension portion 212 and the second extension portion 214 is 90 degrees and the “<” shape pixel structure 200 depicted in
Referring
It is noted that two sides of the pixel electrode 210 are respectively disposed with the data line 320 in the pixel structure 200 depicted in
Furthermore, the active device 220 can include a gate 220a, a source 220b, and a drain 220c. The gate 220a is electrically connected to the corresponding scan line 310. The source 220b is electrically connected to the corresponding data line 320. The drain 220c is electrically connected to the corresponding pixel electrode 210. As shown in
In view of the above, through the pattern design of the pixel electrode 210 and the arrangement of the data lines 320 at two sides of the pixel electrode 210, the pixel electrode 210 itself is extended in the 45-degrees direction or the 315-degrees direction so that the liquid crystal molecules (not shown) can definitely tilt toward the 45-degrees direction or the 315-degrees direction when the pixel electrode 210 is applied with a voltage. Thereby, desirable liquid crystal efficiency and light transmission rate are achieved.
The aforesaid pixel structure 200 has at least the following characteristics. The first, when compared to the conventional technique which requires to fabricate the slits S extending in the 45 degrees direction in the pixel electrode 114 or the opposite electrode 124, the pixel structure 200 of the disclosure does not require to additionally form the slits S and directly uses the distance D as the main slit so that the amount of the dark lines in the aperture of the pixel structure 200 is reduced to increase the light transmission rate. The second, a direction of an edge electric field in the edge of the pixel electrode 210 is consistent so that a disclination is not formed in the edge of the pixel electrode 210 to increase the light transmission rate. The third, the pixel electrode 210 itself is extended in the direction of 45-degrees or 315-degrees so that the liquid crystal molecules can definitely tilt to 45 degrees or 315 degrees after being applied by the voltage to shorten the response time of the liquid crystal molecules. The fourth, the fabricating steps of the pixel structure 200 are not increased, which is conducive to obtain the pixel structure 200 with high quality (high light transmission rate and reduced light leakage in the dark state) through low manufacturing cost.
As shown in
Furthermore, the pixel structures 200, 202, and 204 can be driven by an over drive (OD) technique which includes applying a voltage higher than a predetermined voltage in a first frame (not shown) time to make the gray to gray response time of the pixel structures 200, 202, and 204 smaller than 6 ms (millisecond). The gray to gray response time is quite close to the gray to gray response time of the common MVA LCD panel 100.
The pixel structure 200 depicted in
It is noted that the active device array substrate 510 can be the active device array substrate 400 as described above. Thus, the LCD panel 500 is capable of properly driving the liquid crystal molecules to display images having desirable quality.
Referring to
In summary, the pixel structure, the active device array substrate, and the LCD panel of the disclosure has at least the following characteristics.
The pixel electrode is fabricated along the tilt direction of the liquid crystal molecules (such as 45 degrees and 315 degrees) and the data lines are disposed parallel to the two sides of the pixel electrode. The distance between the data line and the pixel electrode are used as the main slit to render the liquid crystal molecules definitely tilt. Therefore, no main slit extending in 45-degrees direction is required to be formed inside the pixel electrode, which facilitates the reduction in the amount of the dark lines and the increase of the light transmission rate. The pixel structure is capable of achieving the functions of high light transmission rate and wide viewing angle and omitting the configurations of the slits or the protrusions in the color filter substrate, which is further conducive to reduce the light leakage in the dark state and improve the contrast ratio.
Although the disclosure has been described with reference to the above embodiments, it will be apparent to one of the ordinary skill in the art that modifications to the described embodiment may be made without departing from the spirit of the disclosure. Accordingly, the scope of the disclosure will be defined by the attached claims not by the above detailed descriptions.
Number | Date | Country | Kind |
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200910308139.1 | Oct 2009 | CN | national |