This Application claims priority of China Patent Application No. 201710368967.9, filed on May 23, 2017, the entirety of which is incorporated by reference herein.
The disclosure relates to a display panel, and more particularly to a display panel with novel pixel and data line configurations.
An organic light-emitting diode (OLED) display, a liquid-crystal display (LCD), a micro-LED display and a quantum dot display are the three mainstream types of modern displays. With any display type, however, as long as the video signal is written into the display cells in different columns via multiple data lines, crosstalk may occur due to the capacitive coupling effect, which affects the quality of the displayed image.
Therefore, in order to solve the crosstalk problem, a novel display panel design, which is capable of solving the crosstalk problem via the novel pixel and data line configurations, is required.
A display panel is provided. An exemplary embodiment of a display panel comprises a pixel array and multiple data lines. The pixel array comprises multiple pixel cells. The data lines are coupled to the pixel array. The multiple pixel cells comprise multiple first pixel cells and multiple second pixel cells. The multiple data lines comprise multiple first data lines and multiple second data lines. One of the multiple first data lines is coupled to the multiple first pixel cells in the pixel array. The multiple second data lines comprise a third data line and a fourth data line adjacent to the third data line, wherein a part of the multiple second pixel cells coupled to the third data line and another part of the multiple second pixel cells coupled to the fourth data line are configured to display the same color.
An exemplary embodiment of a display device comprises a display panel and a data driving circuit. The display panel comprises a pixel array and multiple data lines coupled to the pixel array. The data driving circuit is configured to generate multiple data driving signals to provide image data to the pixel array via the multiple data lines. The pixel array comprises multiple pixel cells. The multiple pixel cells comprise multiple first pixel cells and multiple second pixel cells. The multiple data lines comprise multiple first data lines and multiple second data lines. One of the multiple first data lines is coupled to the multiple first pixel cells in the pixel array. The multiple second data lines comprise a third data line and a fourth data line adjacent to the third data line, wherein a part of the multiple second pixel cells coupled to the third data line and another part of the multiple second pixel cells coupled to the fourth data line are configured to display the same color.
A detailed description is given in the following embodiments with reference to the accompanying drawings.
The disclosure can be more fully understood by reading the subsequent detailed description and examples with references made to the accompanying drawings, wherein:
The following description is of the contemplated mode of carrying out the disclosure. This description is made for the purpose of illustrating the general principles of the disclosure and should not be taken in a limiting sense. The scope of the disclosure is determined by reference to the appended claims.
In addition, the display device 100 may further comprise an input unit 102. The input unit 102 receives image signals and controls the display panel 101 to display images. According to an embodiment of the disclosure, the display device 100 may further be comprised in an electronic device. The electronic device may be implemented as various devices, comprising: a mobile phone, a digital camera, a laptop computer, a personal computer, a television, an in-vehicle display, a portable DVD player, or any apparatus with image display functionality.
According to an embodiment of the disclosure, as shown in
According to an embodiment of the disclosure, the pixel array 130 may comprise multiple pixel cells. For a color display, the pixel cell may correspond to a single sub-pixel, such as a red (R), blue (B) or green (G) sub-pixel, and one set of the RGB sub-pixels can form a single pixel. In other embodiments, the pixel cell may further correspond to a white (W) sub-pixel, and one set of the RGBW sub-pixels can form a single pixel. In the embodiments of the disclosure, the pixel cell may comprise a transistor and a pixel electrode coupled to the transistor. The sub-pixel may comprise a color filter layer. For example, the red sub-pixel may comprise a red filter layer, the green sub-pixel may comprise a green filter layer, and the blue sub-pixel may comprise a blue filter layer. In a specific type of quantum dot display, the sub-pixel may further comprise a quantum dot layer in addition to the color filter layers. A red pixel cell represents that the pixel cell corresponds to a red sub-pixel, and so on.
The data lines may comprise a plurality of pairs of adjacent data lines. For example, the data lines A and A′ in
According to an embodiment of the disclosure, a pair of adjacent data lines are configured to provide image data having opposite voltage polarities. The voltage polarity represents the polarity (that is, positive or negative) of voltage difference between the image data and the common voltage VCOM. For example, a pair of adjacent data lines in each bracket in the figure provides the image data with opposite voltage polarities.
In addition, according to an embodiment of the disclosure, there may be at least two data lines disposed between two adjacent pixel cells or two adjacent columns of pixel cells. For example, at least the data line A′ and the data line B are disposed between a first column of pixel cells and a second column of pixel cells. Each pixel cell may be defined by two central lines. According to an embodiment of the invention, the central lines may be an extending line which is a virtual line correspondingly positioned between a pair of data lines that are closest to each other. Distances from the extending line to each one of the pair of data lines alone the horizontal direction are substantially the same, such as the central lines Center_1, Center_2, Center_3, . . . Center 10 shown in
It should be noted that in the embodiment of the disclosure, the configurations of the pixel cells and the data lines may be spatially overlapped (for example, the vertical projections of the pixel cells and the data lines may be completely or partially overlapped), or may not completely overlap in space (for example, two data lines may be disposed between two pixel cells or between two columns of pixel cells, and the data lines and the pixel cells do not completely overlap in space).
On the other hand, according to an embodiment of the disclosure, a pair of adjacent data lines, such as the data line A and the data line A′, may be disposed on one pixel cell or one column of pixel cells. For example, as shown in
According to an embodiment of the disclosure, the pixel cells arranged in a vertical direction in the pixel array (that is, a column of pixel cells) may comprise the pixel cells configured to display different colors, and the pixel cells arranged in a horizontal direction in the pixel array (that is, a row of pixel cells) may also comprise the pixel cells configured to display different colors. In the embodiments of the disclosure, based on different optical requirements, there may be a variety of different arrangements for the pixel cells and the data lines. In the following paragraphs, several embodiments of different arrangements for the pixel cells and the data lines will be illustrated. It should be noted that the embodiments described below are just some of a variety of embodiments that can be achieved by the disclosure, that is, the disclosure is not limited to the arrangements shown in the embodiments.
In addition, since each data line is coupled to the pixel cells configured to display the same color, in different embodiments of the disclosure, the data line may be coupled to adjacent pixel cells, or may be not coupled to the adjacent pixel cells. When the data line is coupled to one pixel cell, the arrows shown in
According to an embodiment of the disclosure, a pair of adjacent data lines may be coupled to the display cells configured to display the same color, for providing the image data to the corresponding pixel cells, and a pair of adjacent data lines may be configured to provide image data having opposite voltage polarities, so as to solve the crosstalk problem.
In addition, in the embodiments of the disclosure, based on different optical requirements, there may be a variety of different pixel cells and data lines arrangements. Therefore, in the embodiments of the disclosure, the pixel cells arranged in a vertical direction in the pixel array (that is, a column of pixel cells) may comprise the pixel cells configured to display different colors, and the pixel cells disposed in a horizontal direction in the pixel array (that is, a row of pixel cells) may also comprise the pixel cells configured to display different colors.
It should be noted that for simplicity, the scan lines are not shown in the figures in the following embodiments.
In the embodiment of the disclosure, a width to height ratio (aspect ratio) of the pixel cell may be greater than 1. That is, when designing the size of the pixel cell, it may arrange the width W of the pixel cells in a horizontal direction (such as the X axis) greater than a height H of the pixel cells in a vertical direction (such as the Y axis). For example, in an embodiment of the disclosure, a width-to-height ratio of the pixel cell may be 2:1.5. However, it should be noted that the width-to-height ratio of the pixel cell may also be properly adjusted according to the size of the display panel. Therefore, the implementation of the disclosure is not limited to the width-to-height ratio of 2:1.5, and the width Win the horizontal direction is not limited to be greater than the height H in the vertical direction. In addition, in the embodiment of the disclosure, the definition of the horizontal direction is substantially the main extension direction of the scan lines, and the definition of the width in the horizontal direction is substantially equal to the “fixed pitch” of the pixel electrodes when multiple pixel cells are arranged in the horizontal direction. The definition of the vertical direction is substantially the direction perpendicular to the main extension direction of the scan lines, or is substantially the main extension direction of the data lines. The definition of the height in the vertical direction is substantially equal to the “fixed pitch” of the pixel electrodes when multiple pixel cells are arranged in the vertical direction.
As shown in the figure, in this embodiment, the pixel cells may comprise a plurality of columns of pixel cells, the data lines DL_R+ and DL_R− may be the data lines coupled to the red pixel cells, the data lines DL_G+ and DL_G− may be the data lines coupled to the green pixel cells, and the data lines DL_B+ and DL_B− may be the data lines coupled to the blue pixel cells, where the positive sign ‘+’ indicates that the voltage of the image data signal supplied by the data line is positive with respect to the common voltage VCOM, and the negative sign ‘−’ indicates that the voltage of the image data signal supplied by the data line is negative with respect to the common voltage VCOM. In other words, the positive sign indicates that the voltage of the image data signal supplied by the data line is greater than the common voltage VCOM, and the negative sign indicates that the voltage of the image data signal supplied by the data line is smaller than the common voltage VCOM.
In this embodiment, the adjacent two data lines DL_R+ and DL_R− may be regarded as a pair of data lines, the adjacent two data lines DL_G+ and DL_G− may be regarded as a pair of data lines, and the adjacent two data lines DL_B+ and DL_B− may be regarded as a pair of data lines. According to an embodiment of the disclosure, each pair of adjacent data lines may be coupled to the pixel cells configured to display the same color, and may be configured to provide the image data to the corresponding pixel cells.
In addition, in this embodiment, a pair of adjacent data lines are configured to provide image data having opposite voltage polarities.
In addition, in this embodiment, the polarity inversion method for driving each pixel cell may comprise various methods, such as the dot inversion, the column inversion, the line inversion, etc. The disclosure is not limited to any specific type of polarity inversion method.
In addition, in this embodiment, at least two data lines are disposed between two adjacent pixel cells or two adjacent columns of pixel cells. For example, the data lines DL_B− and DL_G− are disposed between adjacent pixel cells R-1-1 and B-1-1, where the pixel cells R-1-1 and B-1-1 are configured to display different colors.
It should be noted that in the embodiment of the disclosure, the configurations of the pixel cells and the data lines may be spatially overlapped as shown in the figures, for example, the vertical projections of the pixel cells and the data lines may be completely or partially overlapped, or the configurations of the pixel cells and the data lines may not completely overlap in space.
On the other hand, in an embodiment of the disclosure, a pair of adjacent data lines may also be disposed on one pixel cell or one column of pixel cells. For example, as shown in
In addition, in the embodiments of the disclosure, the pixel cells arranged along a vertical direction in the pixel array (for example, a column of pixel cells) may comprise the pixel cells for displaying different colors. The pixel cells arranged along a horizontal direction in the pixel array (for example, a row of pixel cells) may also comprise pixel cells for displaying different colors.
According to a first embodiment of the disclosure, the multiple data lines may comprise multiple first data lines and multiple second data lines, and the multiple first data lines may be coupled to a part of multiple pixel cells (e.g. the first pixel cells) in the pixel array. The multiple second data lines may comprise a third data line and a fourth data line adjacent to the third data line. The third data line is disposed adjacent to a side of a first boundary of a first column of pixel cells, the fourth data line is disposed adjacent to a side of a second boundary of the first column of pixel cells. The third data line is coupled to a part of multiple pixel cells that are configured to display the same color in a second column of pixel cells for providing image data to the corresponding pixel cells, where the second column of pixel cells are adjacent to the first boundary of the first column of pixel cells. The fourth data line is coupled to another part of the multiple pixel cells that are configured to display the same color in a third column of pixel cells for providing image data to the corresponding pixel cells, where the third column of pixel cells are adjacent to the second boundary of the first column of pixel cells.
In an embodiment, the multiple pixel cells may comprise multiple first pixel cells and multiple second pixel cells. The multiple data lines may comprise multiple first data lines and multiple second data lines. One of the multiple first data lines is coupled to the multiple first pixel cells which are configured to display color(s) different from the color of the multiple second pixel cells. One of the multiple first data lines can be coupled to the multiple first pixel cells in the pixel array.
It should be noted that the use of ordinal terms such as “first”, “second”, etc., above does not by itself connote any specific direction or order arrangement in space.
For example, the data line DL_G− may be disposed adjacent to the left hand side of the second column of pixel cells in
In this embodiment, the two adjacent data lines DL_R+ and DL_R− may be regarded as a pair of data lines, the two adjacent data lines DL_G+ and DL_G− may be regarded as a pair of data lines, and the two adjacent data lines DL_B+ and DL_B− may be regarded as a pair of data lines. In an embodiment of the disclosure, each pair of adjacent data lines may be coupled to the pixel cells configured to display the same color, for providing image data to the corresponding pixel cells.
In addition, in this embodiment, a pair of adjacent data lines are configured to provide image data having opposite voltage polarities.
In addition, in this embodiment, the polarity inversion method for driving each pixel cell may comprise various methods, such as the dot inversion, the column inversion, the line inversion, etc. The disclosure is not limited to any specific type of polarity inversion method.
In addition, in this embodiment, at least two data lines are disposed between two adjacent pixel cells or two adjacent columns of pixel cells. For example, the data lines DL_R− and DL_B− are disposed between adjacent pixel cells R-1-1 and B-1-1, where the pixel cells R-1-1 and B-1-1 are configured to display different colors.
It should be noted that in the embodiment of the disclosure, the configurations of the pixel cells and the data lines may be spatially overlapped as shown in the figures, for example, the vertical projections of the pixel cells and the data lines may be completely or partially overlapped, or the configurations of the pixel cells and the data lines may not completely overlap in space.
On the other hand, in an embodiment of the disclosure, a pair of adjacent data lines may also be disposed on one pixel cell or one column of pixel cells. For example, as shown in
In the embodiments of the disclosure, the pixel cells arranged along a vertical direction in the pixel array (for example, a column of pixel cells) may comprise the pixel cells for displaying different colors. The pixel cells arranged along a horizontal direction in the pixel array (for example, a row of pixel cells) may also comprise pixel cells for displaying different colors.
According to the second embodiment of the disclosure, a third data line is disposed adjacent to a side of a first boundary of a first column of pixel cells, a fourth data line is disposed adjacent to a side of a second boundary of the first column of pixel cells. One of the third data line and the fourth data line is coupled to the pixel cells that are configured to display the same color in a first column of pixel cells for providing image data to the corresponding pixel cells.
It should be noted that the use of ordinal terms such as “first”, “second”, etc., above does not by itself connote any specific direction or order arrangement in space.
For example, the data line DL_B− may be disposed adjacent to the left hand side of the second column of pixel cells (for example, comprising the pixel cells B-1-1, R-1-2, R-2-1, G-2-2, G-3-1 . . . etc.), the data line DL_B+ may be disposed adjacent to the right hand side of the second column of pixel cells. Only one of the data lines DL_B− and DL_B+ (for example, the data lines DL_B−) may be coupled to the pixel cells configured to display the blue color (for example, the pixel cells B-1-1, B-4-1 . . . etc.) in the second column of pixel cells, for providing image data to the corresponding pixel cells. The data line DL_B+ may be coupled to the pixel cells configured to display the blue color (for example, the pixel cells B-1-2, B-2-2, B-4-2 . . . etc.) in the third column of pixel cells, for providing image data to the corresponding pixel cells.
In this embodiment, the two adjacent data lines DL_R+ and DL_R− may be regarded as a pair of data lines, the two adjacent data lines DL_G+ and DL_G− may be regarded as a pair of data lines, and the two adjacent data lines DL_B+ and DL_B− may be regarded as a pair of data lines. In an embodiment of the disclosure, each pair of adjacent data lines may be coupled to the pixel cells configured to display the same color, for providing image data to the corresponding pixel cells.
In addition, in this embodiment, a pair of adjacent data lines are configured to provide image data having opposite voltage polarities.
In addition, in this embodiment, the polarity inversion method for driving each pixel cell may comprise various methods, such as the dot inversion, the column inversion, the line inversion, etc. The disclosure is not limited to any specific type of polarity inversion method.
In addition, in this embodiment, at least two data lines are disposed between two adjacent pixel cells or two adjacent columns of pixel cells. For example, the data lines DL_R− and DL_B− are disposed between adjacent pixel cells R-1-1 and B-1-1, where the pixel cells R-1-1 and B-1-1 are configured to display different colors.
It should be noted that in the embodiment of the disclosure, the configurations of the pixel cells and the data lines may be spatially overlapped as shown in the figures, for example, the vertical projections of the pixel cells and the data lines may be completely or partially overlapped, or the configurations of the pixel cells and the data lines may not completely overlap in space.
On the other hand, in an embodiment of the disclosure, a pair of adjacent data lines may also be disposed on one pixel cell or one column of pixel cells. For example, as shown in
In the embodiments of the disclosure, the pixel cells arranged along a vertical direction in the pixel array (for example, a column of pixel cells) may comprise the pixel cells for displaying different colors. The pixel cells arranged along a horizontal direction in the pixel array (for example, a row of pixel cells) may also comprise pixel cells for displaying different colors.
According to a third embodiment of the disclosure, a third data line is disposed adjacent to a side of a first boundary of a first column of pixel cells, a fourth data line is disposed adjacent to a side of a second boundary of the first column of pixel cells. The third data line and the fourth data line are coupled to the pixel cells that are configured to display the same color in the first column of pixel cells, for providing image data to the corresponding pixel cells.
It should be noted that the use of ordinal terms such as “first”, “second”, etc., above does not by itself connote any specific direction or order arrangement in space.
For example, the data line DL_B− may be disposed adjacent to the left hand side of the second column of pixel cells (for example, the pixel cells B-1-1, R-1-2, B-2-2, G-2-1 . . . etc.), the data line DL_B+ may be disposed adjacent to the right hand side of the second column of pixel cells. The data lines DL_B− and DL_B+ may be respectively coupled to the pixel cells configured to display the blue color (for example, the pixel cells B-1-1, B-2-2 . . . etc.) in the second column of pixel cells, for providing image data to the corresponding pixel cells.
In this embodiment, the two adjacent data lines DL_R+ and DL_R− may be regarded as a pair of data lines, the two adjacent data lines DL_G+ and DL_G− may be regarded as a pair of data lines, and the two adjacent data lines DL_B+ and DL_B− may be regarded as a pair of data lines. In an embodiment of the disclosure, each pair of adjacent data lines may be coupled to the pixel cells configured to display the same color, for providing image data to the corresponding pixel cells.
In addition, in this embodiment, a pair of adjacent data lines are configured to provide image data having opposite voltage polarities.
In addition, in this embodiment, the polarity inversion method for driving each pixel cell may comprise various methods, such as the dot inversion, the column inversion, the line inversion, etc. The disclosure is not limited to any specific type of polarity inversion method.
In addition, in this embodiment, at least two data lines are disposed between two adjacent pixel cells or two adjacent columns of pixel cells. For example, the data lines DL_R− and DL_B− are disposed between adjacent pixel cells R-1-1 and B-1-1, where the pixel cells R-1-1 and B-1-1 are configured to display different colors.
It should be noted that in the embodiment of the disclosure, the configurations of the pixel cells and the data lines may be spatially overlapped as shown in the figures, for example, the vertical projections of the pixel cells and the data lines may be completely or partially overlapped, or the configurations of the pixel cells and the data lines may not completely overlap in space.
On the other hand, in an embodiment of the disclosure, a pair of adjacent data lines may also be disposed on one pixel cell or one column of pixel cells. For example, as shown in
In the embodiments of the disclosure, the pixel cells arranged along a vertical direction in the pixel array (for example, a column of pixel cells) may comprise the pixel cells for displaying different colors. The pixel cells arranged along a horizontal direction in the pixel array (for example, a row of pixel cells) may also comprise pixel cells for displaying different colors.
According to a fourth embodiment of the disclosure, a third data line is disposed adjacent to a side of a first boundary of a first column of pixel cells, a fourth data line is disposed adjacent to a side of a second boundary of the first column of pixel cells. One of the third data line and the fourth data line is coupled to the pixel cells that are configured to display the same color in the first column of pixel cells, for providing image data to the corresponding pixel cells.
It should be noted that the use of ordinal terms such as “first”, “second”, etc., above does not by itself connote any specific direction or order arrangement in space.
For example, the data line DL_B− may be disposed adjacent to the left hand side of the second column of pixel cells (for example, comprising the pixel cells B-1-1, R-1-2, B-2-1, R-2-2 . . . etc.), the data line DL_B+ may be disposed adjacent to the right hand side of the second column of pixel cells. One of the data lines DL_B− and DL_B+(for example, the data lines DL_B−) may be coupled to the pixel cells configured to display the blue color (for example, the pixel cells B-1-1, B-2-1 . . . etc.) in the second column of pixel cells, for providing image data to the corresponding pixel cells. The data line DL_B+ may be coupled to the pixel cells configured to display the blue color (for example, the pixel cells B-1-2, B-2-2 . . . etc.) in the third column of pixel cells, for providing image data to the corresponding pixel cells.
In this embodiment, the two adjacent data lines DL_R+ and DL_R− may be regarded as a pair of data lines, the two adjacent data lines DL_G+ and DL_G− may be regarded as a pair of data lines, and the two adjacent data lines DL_B+ and DL_B− may be regarded as a pair of data lines. In an embodiment of the disclosure, each pair of adjacent data lines may be coupled to the pixel cells configured to display the same color, for providing image data to the corresponding pixel cells.
In addition, in this embodiment, a pair of adjacent data lines are configured to provide image data having opposite voltage polarities.
In addition, in this embodiment, the polarity inversion method for driving each pixel cell may comprise various methods, such as the dot inversion, the column inversion, the line inversion, etc. The disclosure is not limited to any specific type of polarity inversion method.
In the embodiment of the disclosure, the pixel cells arranged along a vertical direction in the pixel array may comprise the pixel cells for displaying different colors. The pixel cells arranged along a horizontal direction in the pixel array may also comprise pixel cells for displaying different colors.
In the fifth embodiment of the disclosure, the boundaries of the pixel cells may be interleaved. For example, the boundaries of the pixel cells arranged along the vertical direction in the pixel array may be interleaved. In this embodiment, the positions of pixel cells in each row are adjusted horizontally to achieve a specific optical effect. That is, the application of the disclosure is not limited to the pixel array in which the boundaries of pixel cells are aligned, but also to the pixel array in which the boundaries of pixel cells are interleaved. It is to be noted that the distance of the adjustment in the boundary can be varied according to the optical effect to be achieved. In the embodiments of the disclosure, when arranging the pixel cells displaying different colors, a minimum unit may be defined. For example, the minimum array unit 550 shown in
As discussed above, in the embodiments of the disclosure, each data line is coupled to the pixel cells configured to display the same color, so as to solve the image distortion problem.
In addition, in the embodiments of the disclosure, a pair of adjacent data lines may be coupled to the display cells configured to display the same color, for providing the image data to the corresponding pixel cells, and a pair of adjacent data lines may be configured to provide image data having opposite voltage polarities, so as to solve the crosstalk problem.
In addition, in the embodiments of the disclosure, based on different optical requirements, there may be a variety of different arrangements for the pixel cells and the data lines, wherein the pixel cells arranged along a vertical direction in the pixel array may comprise the pixel cells for displaying different colors. The pixel cells arranged along a horizontal direction in the pixel array may also comprise pixel cells for displaying different colors.
Use of ordinal terms such as “first”, “second”, etc., in the claims to modify a claim element does not by itself connote any priority, precedence, or order of one claim element over another or the temporal order in which acts of a method are performed, but are used merely as labels to distinguish one claim element having a certain name from another element having the same name (but for use of the ordinal term) to distinguish the claim elements.
While the disclosure has been described by way of example and in terms of several embodiments, it is to be understood that the disclosure is not limited thereto. Those who are skilled in this technology can still make various alterations and modifications without departing from the scope and spirit of this disclosure. Therefore, the scope of the present disclosure shall be defined and protected by the following claims and their equivalents.
Number | Date | Country | Kind |
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201710368967.9 | May 2017 | CN | national |