1. Field of the Invention
The present invention relates to the field of liquid crystal displaying techniques, and in particular to a liquid crystal display device that improves gamma (γ) characteristics.
2. The Related Arts
Recently, liquid crystal displaying techniques undergo fast development and become a hot spot of research. Due to the advantages of high resolution, reduced thickness, light weight, and low power consumption, the liquid crystal display devices find wide applications in the field of displaying for medical sectors, advertisements, military purposes, exhibitions, and entertainments.
Specifically, the scan line 1101 and the data line 1102 are arranged to cross and isolate from each other. The gate terminal of the thin film transistor 1103 is connected to the scan line 1101. The source terminal of the thin film transistor 1103 is connected to the data line 1102. The drain terminal of the thin film transistor 1103 is connected to the pixel electrode 1104. When the scan line 1101 supplies a scan signal to turn on the gate terminal of the thin film transistor 1103, the pixel electrode 1104 receives a corresponding drive voltage from the data line 1102 to display a corresponding image.
The characteristics of displaying of the known liquid crystal display device 1 will be described as follows.
The liquid crystal display device 1 adopts twisted nematic (TN) mode, which controls the amount of light transmitting through the liquid crystal layer by applying the characteristics that optic chirality of liquid crystal molecules varies with the change of voltage applied. However, when a user views the liquid crystal display device 1 in an inclined direction, contrast of the liquid crystal display device 1 is greatly reduced. Further, when a user changes from viewing the display in an inclined direction toward viewing the display in a front direction, difference of brightness in a number of gray levels from black to white can be obviously perceived. Further, the TN mode liquid crystal display device shows a characteristic of gray level reversal, for example a darker portion when viewed in the front side becoming brighter when viewed in an inclined direction.
Specifically, as shown in
Thus, it is desired to have a liquid crystal display device that overcomes the above problems.
The technical issue to be addressed by the present invention is to provide a liquid crystal display device, which provides enhanced performance of displaying of the liquid crystal display device through improving γ characteristic of the liquid crystal display device so as to enhance the quality of displaying.
The present invention provides a liquid crystal display device, which comprises: a plurality of pixel units arranged in a matrix form. Each of the pixel units further comprises: a first sub-pixel electrode, which is set at a central position of the pixel unit; and a second sub-pixel electrode, which is circumferentially set along a circumference of the first sub-pixel electrode; wherein area of the first sub-pixel electrode and area of the second sub-pixel electrode are of a ratio of 1:2, a drive voltage of a liquid crystal layer corresponding to the first sub-pixel electrode being a first drive voltage, a drive voltage of a liquid crystal layer corresponding to the second sub-pixel electrode being a second drive voltage, the first drive voltage being less than the second drive voltage.
According to a preferred embodiment of the present invention, the pixel unit further comprises: a scan line; a data line, which is isolated from the scan line; a first thin film transistor, which has a gate terminal connected to the scan line, the first thin film transistor having a source terminal connected to the data line, the first thin film transistor having a drain terminal connected to the first sub-pixel electrode; a second thin film transistor, which has a gate terminal connected to the scan line, the second thin film transistor having a source terminal connected to the data line, the second thin film transistor having a drain terminal connected to the second sub-pixel electrode; a first auxiliary capacitor and a first auxiliary capacitor line, the first auxiliary capacitor having an auxiliary electrode connected to the first sub-pixel electrode, the first auxiliary capacitor having an opposite electrode connected to the first auxiliary capacitor line; and a second auxiliary capacitor and a second auxiliary capacitor line, the second auxiliary capacitor having an auxiliary electrode connected to the second sub-pixel electrode, the second auxiliary capacitor having an opposite electrode connected to the second auxiliary capacitor line.
The present invention provides a liquid crystal display device, which comprises: a plurality of pixel units arranged in a matrix form. Each of the pixel units further comprises a first sub-pixel electrode and a second sub-pixel electrode, wherein the first sub-pixel electrode is set at a central position of the pixel unit and the second sub-pixel electrode is circumferentially set along a circumference of the first sub-pixel electrode.
According to a preferred embodiment of the present invention, the pixel unit further comprises: a scan line; a data line, which is isolated from the scan line; a first thin film transistor, which has a gate terminal connected to the scan line, the first thin film transistor having a source terminal connected to the data line, the first thin film transistor having a drain terminal connected to the first sub-pixel electrode; a second thin film transistor, which has a gate terminal connected to the scan line, the second thin film transistor having a source terminal connected to the data line, the second thin film transistor having a drain terminal connected to the second sub-pixel electrode; a first auxiliary capacitor and a first auxiliary capacitor line, the first auxiliary capacitor having an auxiliary electrode connected to the first sub-pixel electrode, the first auxiliary capacitor having an opposite electrode connected to the first auxiliary capacitor line; and a second auxiliary capacitor and a second auxiliary capacitor line, the second auxiliary capacitor having an auxiliary electrode connected to the second sub-pixel electrode, the second auxiliary capacitor having an opposite electrode connected to the second auxiliary capacitor line.
According to a preferred embodiment of the present invention, a drive voltage of a liquid crystal layer corresponding to the first sub-pixel electrode is a first drive voltage and a drive voltage of a liquid crystal layer corresponding to the second sub-pixel electrode is a second drive voltage, wherein the first drive voltage is less than the second drive voltage.
According to a preferred embodiment of the present invention, area of the first sub-pixel electrode and area of the second sub-pixel electrode are of a ratio of 1:2.
According to a preferred embodiment of the present invention, the first sub-pixel electrode is rectangular, circular, or elliptic and the second sub-pixel electrode has an outer circumference that is rectangular.
According to a preferred embodiment of the present invention, the first sub-pixel electrode comprises a first zone, a second zone, a third zone, and a fourth zone. The first zone and the second zone is arranged to juxtapose each other, the third zone is arranged diagonally with respect to the first zone, and the fourth zone is arranged diagonally with respect to the second zone.
According to a preferred embodiment of the present invention, the first zone and the third zone have same electrode direction and the second zone and the fourth zone have the same electrode direction.
According to a preferred embodiment of the present invention, the electrode direction of the first zone and the third zone is set in a first direction and the electrode direction of the second zone and the fourth zone is set in a second direction, the first direction and the second direction being normal to each other.
According to a preferred embodiment of the present invention, the first direction is a direction forming an included angle of 135° with respect to positive horizontal direction and the second direction is a direction forming an included angle of 45° with respect to the positive horizontal direction.
According to a preferred embodiment of the present invention, the second sub-pixel electrode has a first portion set outside the first zone and having an electrode direction corresponding to electrode direction of the first zone; the second sub-pixel electrode has a second portion set outside the second zone and having an electrode direction that corresponding to electrode direction of the second zone; the second sub-pixel electrode has a third portion set outside the third zone and having an electrode direction corresponding to electrode direction of the third zone; and the second sub-pixel electrode has a fourth portion set outside the fourth zone and having an electrode direction corresponding to electrode direction of the fourth zone.
The present invention provides a liquid crystal display device, which comprises: a plurality of pixel units arranged in a matrix form. Each of the pixel units further comprises: a pixel central portion, which is arranged at a center of the pixel unit; and a pixel edge portion, which is arranged along an edge of the pixel unit and circumferentially surrounds a circumference of the pixel central portion.
According to a preferred embodiment of the present invention, a drive voltage of a liquid crystal layer corresponding to the pixel central portion is a first drive voltage and a drive voltage of a liquid crystal layer corresponding to the pixel edge portion is a second drive voltage, wherein the first drive voltage is less than the second drive voltage.
According to a preferred embodiment of the present invention, area of the pixel central portion and area of the pixel edge portion are of a ratio of 1:2.
According to a preferred embodiment of the present invention, the pixel central portion is rectangular, circular, or elliptic and the pixel edge portion has an outer circumference that is rectangular.
The efficacy of the present invention is that to be distinguish from the state of the art, in the liquid crystal display device according to the present invention, each pixel unit is divided into a first sub-pixel electrode and a second sub-pixel electrode, and the first sub-pixel electrode is set at a central position of the pixel unit, while the second sub-pixel electrode is set along a circumference of the first sub-pixel electrode. Such a pixel structure may further improve the γ characteristic of the liquid crystal display device to provide enhanced performance of displaying of the liquid crystal display device and thus improving quality of displaying.
To make the technical solution of the embodiments according to the present invention, a brief description of the drawings that are necessary for the illustration of the embodiments will be given as follows. Apparently, the drawings described below show only example embodiments of the present invention and for those having ordinary skills in the art, other drawings may be easily obtained from these drawings without paying any creative effort. In the drawings:
Referring to
In the instant embodiment, the liquid crystal display panel 51 and the backlight module 52 are stacked. The liquid crystal display panel 51 functions to display an image, while the backlight module 52 provides required backlighting to the liquid crystal display panel 51.
In the instant embodiment, the first sub-pixel electrode 61 is set at a central position of the pixel unit 60 and is rectangular in shape. The second sub-pixel electrode 62 is set along an edge of the pixel unit 60, specifically being circumferentially set along a circumference of the first sub-pixel electrode 61, and the second sub-pixel electrode 62 has an outer circumference that is rectangular. It is understood that in the present invention, the shape of the first sub-pixel electrode 61 is not limited to such a shape, and in other embodiments, the shape can be other shapes, such as circle, rhombus, and ellipse, provided that the first sub-pixel electrode 61 is set at a middle portion of the pixel unit 60 (preferably the central position of the pixel unit 60).
The first sub-pixel electrode 61 is further divided into multiple displaying zones, and in the instant embodiment, the first sub-pixel electrode 61 is divided into four zones: a first zone 611, a second zone 612, a third zone 613, and a fourth zone 614. The first zone 611 that is located at the upper left corner and the second zone 612 that is located at the upper right corner are arranged at the same level and juxtaposing each other, the third zone 613 that is located at the lower right corner is arranged diagonally with respect to the first zone 611, and the fourth zone 614 that is located at the lower left corner is arranged diagonally with respect to the second zone 612; the first zone 611 and the third zone 613 have the same electrode direction, such as the first direction D1 shown in the drawing, and the second zone 612 and the fourth zone 614 have the same electrode direction, such as the second direction D2 shown in the drawing. The first direction D1 can be for example a direction that forms an included angle of 135° with respect to positive horizontal direction, and the second direction D2 can be for example a direction that forms an included angle of 45° with respect to the positive horizontal direction.
Correspondingly, a first portion 621 of the second sub-pixel electrode 62 that is set outside and corresponding to the first zone 611 has an electrode direction that is identical to the electrode direction of the first zone 611, such as both being the first direction D1. A second portion 622 of the second sub-pixel electrode 62 that is set outside and corresponding to the second zone 612 has an electrode direction that is identical to the electrode direction of the second zone 612, such as both being the second direction D2. A third portion 623 of the second sub-pixel electrode 62 that is set outside and corresponding to the third zone 613 has an electrode direction that is identical to the electrode direction of the third zone 613, such as both being the first direction D1. A fourth portion 624 of the second sub-pixel electrode 62 that is set outside and corresponding to the fourth zone 614 has an electrode direction that is identical to the electrode direction of the fourth zone 614, such as both being the second direction D2.
In the instant embodiment, the first direction D1 and the second direction D2 are normal to each other. When liquid crystal drive voltage is applied to the first sub-pixel electrode 61 and the second sub-pixel 62, liquid crystal molecules (not shown) corresponding to the first sub-pixel electrode 61 show an inclination direction that is associated with the electrode structure of the first sub-pixel electrode 61. Thus, liquid crystal molecules located in the four zones 611, 612, 613, and 614 of the first sub-pixel 61 show inclination angles that are different from each other by 90°. The liquid crystal molecules (not shown) located in the second sub-pixel electrode 62 show an inclination direction that is determined by the electrode structure of the second sub-pixel electrode 62. Thus, the liquid crystal molecules located in the four portions 621, 622, 623, and 624 show inclination angles that are different from each other by 90°. Here, the liquid crystal display device 50 is a liquid crystal display device of MVA (Multi-Domain Vertical Alignment) type. It is understood that in the present invention, the liquid crystal display device 50 is not limited to MVA, and can be a liquid crystal display device of other types, such as IPS (In-Plane Switching).
Further, in the instant embodiment, a ratio between area of the first sub-pixel electrode 61 and area of the second sub-pixel electrode 62 is preferably 1:2.
In the instant embodiment, the data line 64 and the scan line 63 are isolated from each other. The gate terminal of the first thin film transistor 65 is connected to the scan line 63. The source terminal of the first thin film transistor 65 is connected to the data line 64. The drain terminal of the first thin film transistor 65 is connected to the first sub-pixel electrode 61. Further, an auxiliary electrode of the first auxiliary capacitor 67 is connected to the first sub-pixel electrode 61 and an opposite electrode of the first auxiliary capacitor 67 is connected to the first auxiliary capacitor line 69a. The gate terminal of the first thin film transistor 65 receives a scan signal from the scan line 63 to have the source terminal and the drain terminal of the first thin film transistor 65 conducted. The first sub-pixel electrode 61 receives a drive voltage from the data line 64 through the first thin film transistor 65.
The gate terminal of the second thin film transistor 66 is connected to the scan line 63. The source terminal of the second thin film transistor 66 is connected to the data line 64. The drain terminal of the first thin film transistor 66 is connected to the second sub-pixel electrode 62. Further, an auxiliary electrode of the second auxiliary capacitor 68 is connected to the second sub-pixel electrode 62, and an opposite electrode of the second auxiliary capacitor 68 is connected to the second auxiliary capacitor line 69b. The gate terminal of the second thin film transistor 66 receives a scan signal from the scan line 63 to have the source terminal and the drain terminal of the second thin film transistor 66 conducted. The second sub-pixel electrode 62 receives a drive voltage through the second thin film transistor 66.
As shown in
When the scan line 63 supplies a scan signal, the first thin film transistor 65 and the second thin film transistor 66 are simultaneously set ON, where the first sub-pixel electrode 61 of the first liquid crystal capacitor Clc1, the second sub-pixel electrode 62 of the second liquid crystal capacitor Clc2, the auxiliary electrode of the first auxiliary capacitor 67, and the auxiliary electrode of the second auxiliary capacitor 68 are set in connection with the data line 64 and receive the same drive voltage. Since the opposite electrode of the first auxiliary capacitor 67 and the opposite electrode of the second auxiliary capacitor 68 are electrically independent of the first sub-pixel electrode 61 and the second sub-pixel electrode 62, the level of a first drive voltage applied to the first liquid crystal capacitor Clc1 can be controlled through adjustments of the capacity of the first auxiliary capacitor 67 and the voltage of the first auxiliary line 69a; similarly, the level of a second drive voltage applied to the second liquid crystal capacitor Clc2 can be controlled through adjustments of the capacity of the second auxiliary capacitor 68 and the voltage of the second auxiliary line 69b. In the instant embodiment, it is preferred that the first drive voltage is less than the second drive voltage.
As such, when various drive voltages are applied to the first sub-pixel electrode 61 and the second sub-pixel electrode 62, with observations being made for combination of various γ characteristics, the dependence of γ characteristic on field angle is improved, and thus, difference of drive voltage between the first sub-pixel electrode 61 and the second sub-pixel electrode 62 at low gray level is increased thereby improving the γ characteristic performance of the dark side (low brightness side) in a normally dark condition and enhancing displaying quality of the liquid crystal display device 50.
It is noted that in the instant embodiment, the first sub-pixel electrode 61 and the second sub-pixel electrode 62 are applied with various drive voltages through adjustments of the capacities of the first auxiliary capacitor 67 and the second auxiliary capacitor 68 and the voltage levels of the first auxiliary line 69a and the second auxiliary line 69b. In other embodiments, other measures may be taken to apply various drive voltages to the first sub-pixel electrode 61 and the second sub-pixel electrode 62, for example a first data line and a second data line being set up to respectively supply a first drive voltage and a second drive voltage.
The characteristics of displaying exhibited by the liquid crystal display device 50 according to the present invention will be described as follows.
Referring to
As shown in
As shown in
Specifically, curve 121 shows gray level characteristic of the liquid crystal display device 50 at the front view angle, wherein the horizontal axis value=the vertical axis value, and thus curve 121 is a straight line. Curve 122 is the gray level characteristic of the liquid crystal display device 50 at angle of 30° shifted from the front view angle, and curve 123 is the gray level characteristic of the liquid crystal display device 50 at an angle of 60° shifted from the front view angle, wherein deviations between curve 122 and curve 123 and the front view angle gray level characteristic line 121 indicate the deviation of γ characteristic between view angles (30° shifted from the front view angle and 60° shifted from the front view angle), namely the deviation of the displayed gray level observed at the front view angle and each of the view angles. The smaller the deviation between curve 122 and curve 123 and the front view angle gray level characteristic line 121 is, the better the γ characteristic of the liquid crystal display device 50 will be. Ideally, curve 122 and curve 123 are straight lines coincident to the front view angle gray level characteristic line 121.
To distinguish from the displaying characteristic of the conventional liquid crystal display device, a comparison is made between
Embodiments of the present invention have been described, but they are not intended to impose any unduly constraint to the appended claims. Any modification of equivalent structure or equivalent process made according to the disclosure and drawings of the present invention, or any application thereof, directly or indirectly, to other related fields of technique, is considered encompassed in the scope of protection defined by the clams of the present invention.
Number | Date | Country | Kind |
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201110234881.X | Aug 2011 | CN | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/CN11/80265 | 9/28/2011 | WO | 00 | 11/11/2011 |