Display panel and display device
By designing the arrangement of multiple sub-pixel groups and scan line groups in the display panel, the color mixing problem caused by the halved charging time in the DLS pixel architecture is solved, achieving better display effect and brightness uniformity.
Patent Information
- Application Number
- CN202411615747.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-12
- Publication Date
- 2025-12-05
- Estimated Expiration
- 2044-11-12
AI Technical Summary
In the DLS pixel architecture, the charging time of subpixels is halved, which causes color mixing problems in the display panel.
The arrangement of multiple sub-pixel groups and scan line groups is adopted. Each sub-pixel group includes two sub-pixels of different colors arranged along the first direction. The data line extends between the two adjacent sub-pixel groups, and the sub-pixels connected by the two adjacent data lines are different colors. When the scan line scans line by line, the sub-pixels of the same color connected to the same data line are lit up one after another.
By reducing the difference in subpixel charging time, color mixing is avoided, improving the display effect and brightness uniformity of the display panel.
Smart Images

Figure CN119546110B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of display, in particular to a display panel and a display device. BACKGROUND
[0002] In the current display panel DLS (Data Line Sharing) pixel architecture, two columns of sub-pixels of different colors share one data line, which reduces the number of data lines, and two scanning lines are needed to drive one row of sub-pixels, which increases the number of scanning lines, so that the charging time of the sub-pixels is halved, resulting in the problem of color mixing of the display panel. SUMMARY
[0003] The present application provides a display panel and a display device to improve the problem of color mixing of the existing display panel.
[0004] To solve the above-mentioned scheme, the technical scheme provided by the present application is as follows:
[0005] The present application provides a display panel, which comprises:
[0006] a plurality of sub-pixel groups arranged along a first direction and a second direction, each of the sub-pixel groups comprising two sub-pixels of different colors arranged along the first direction;
[0007] a plurality of scanning line groups arranged along the second direction, each of the scanning line groups comprising a first scanning line and a second scanning line extending along the first direction, the first scanning line and the second scanning line being arranged on both sides of a corresponding row of the sub-pixel groups, the first scanning line being connected to one of the sub-pixel groups in a row, and the second scanning line being connected to another of the sub-pixel groups in a row;
[0008] a plurality of data lines extending along the second direction, the plurality of data lines being arranged between adjacent two columns of the sub-pixel groups, and one of the data lines being connected to one of the sub-pixels in the adjacent two columns of the sub-pixel groups;
[0009] wherein each of the data lines is connected to the sub-pixels of the same color, and the colors of the sub-pixels connected by adjacent two of the data lines are different.
[0010] Optionally, the positions of the sub-pixels connected by adjacent two of the first scanning lines in the sub-pixel groups are different, and the positions of the sub-pixels connected by adjacent two of the second scanning lines in the sub-pixel groups are different.
[0011] Optionally, each of the sub-pixel groups comprises a first sub-pixel and a second sub-pixel arranged along the first direction;
[0012] In one of the two adjacent scan line groups, the first scan line is connected with the first sub-pixel in a row of the sub-pixel groups, and the second scan line is connected with the second sub-pixel in the row of the sub-pixel groups.
[0013] In the other of the two adjacent scan line groups, the first scan line is connected with the second sub-pixel in a row of the sub-pixel groups, and the second scan line is connected with the first sub-pixel in the row of the sub-pixel groups.
[0014] Optionally, for the two adjacent scan line groups, in one scan period, the first scan line of the scan line group of the present stage, the second scan line of the scan line group of the present stage, the first scan line of the scan line group of the next stage, and the second scan line of the scan line group of the next stage are sequentially input with scan signals to the corresponding sub-pixels.
[0015] Optionally, the sub-pixels connected by the two adjacent first scan lines are located at the same position in the sub-pixel groups, and the sub-pixels connected by the two adjacent second scan lines are located at the same position in the sub-pixel groups.
[0016] Optionally, each of the sub-pixel groups comprises first sub-pixels and second sub-pixels arranged along the first direction.
[0017] In the two adjacent scan line groups, the first scan line is connected with one of the first sub-pixel or the second sub-pixel in a row of the sub-pixel groups, and the second scan line is connected with the other of the first sub-pixel or the second sub-pixel in the row of the sub-pixel groups.
[0018] Optionally, the display panel comprises N rows of the sub-pixel groups and N scan line groups corresponding to the N rows of the sub-pixel groups, N and n are positive integers, and n is less than or equal to N.
[0019] In the n-th scan line group, the first scan line is connected with one of the first sub-pixel or the second sub-pixel in the n-1-th row of the sub-pixel groups, and the second scan line is connected with the other of the first sub-pixel or the second sub-pixel in the n+1-th row of the sub-pixel groups.
[0020] Optionally, the polarities of the two adjacent data lines are opposite, and the polarities of the two sub-pixels in each of the sub-pixel groups are opposite.
[0021] Optionally, the polarities of the sub-pixels located on both sides of the data line and arranged adjacent to the data line are the same, and the polarities of the sub-pixels located on both sides of the data line are opposite to the polarities of the corresponding data lines.
[0022] This application also proposes a display device that includes the aforementioned display panel.
[0023] Other features and advantages of this application will be described in detail in the following detailed description section. Attached Figure Description
[0024] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0025] To gain a more complete understanding of this application and its beneficial effects, the following description will be provided in conjunction with the accompanying drawings, wherein the same reference numerals in the following description denote the same parts.
[0026] Figure 1 A simplified structural diagram of the display panel provided in an embodiment of this application.
[0027] Figure 2 Provided for the embodiments of this application Figure 1 The first structural diagram of region M;
[0028] Figure 3 for Figure 2 Timing diagram of the middle scan line;
[0029] Figure 4 Provided for the embodiments of this application Figure 1 The third structural diagram of region M;
[0030] Figure 5 Provided for the embodiments of this application Figure 1 The fourth structural diagram of region M. Detailed Implementation
[0031] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of them. All other embodiments obtained by those skilled in the art based on the embodiments of this application without creative effort are within the protection scope of this application.
[0032] Please see Figures 1 to 5 This application provides a display panel 100, which includes a pixel area AA and a non-pixel area NA located on one side of the pixel area AA. The pixel area AA can be an area used to perform display functions, and the non-pixel area NA can be a border area of the display panel 100.
[0033] In this embodiment, the pixel area AA is provided with multiple sub-pixel groups 10, multiple scan line groups 20 and multiple data lines Data.
[0034] In this embodiment, a plurality of sub-pixel groups 10 are arranged along a first direction X and a second direction Y, and each sub-pixel group 10 includes two sub-pixels of different colors arranged along the first direction X.
[0035] In this embodiment, multiple scan line groups 20 are arranged along the second direction Y. Each scan line group 20 includes a first scan line Scan1 and a second scan line Scan2 extending along the first direction X. The first scan line Scan1 and the second scan line Scan2 are disposed on both sides of a corresponding row of sub-pixel groups 10. The first scan line Scan1 is connected to a sub-pixel in the row of sub-pixel groups 10, and the second scan line Scan2 is connected to another sub-pixel in the row of sub-pixel groups 10.
[0036] In this embodiment, multiple data lines Data extend along the second direction Y, and multiple data lines Data are disposed between two adjacent columns of sub-pixel groups 10. One data line Data is connected to one sub-pixel in one of the two adjacent columns of sub-pixel groups 10.
[0037] In this embodiment, each data line Data is connected to a sub-pixel of the same color, and the sub-pixels connected to adjacent data lines Data are of different colors.
[0038] This application improves the display effect of the display panel 100 by connecting each data line Data in the DLS pixel architecture to a sub-pixel of the same color. When the scan line is scanned line by line, the sub-pixels of the same color connected to the same data line Data are lit up one after another. Even if the charging time of the sub-pixels is reduced, there is no color mixing problem because the lit sub-pixels are of the same color.
[0039] It should be noted that the display panel 100 of this application may include a red sub-pixel R, a green sub-pixel G, and a blue sub-pixel, and each sub-pixel group 10 may include two different sub-pixels among the red sub-pixel R, green sub-pixel G, and blue sub-pixel; for example, in the appendix Figures 2 to 5 In the first direction X, red sub-pixels R, green sub-pixels G and blue sub-pixels B are repeatedly arranged, and the sub-pixels in each column have the same color. Part of the sub-pixel group 10 includes red sub-pixels R and green sub-pixels G arranged along the first direction X, part of the sub-pixel group 10 includes blue sub-pixels B and red sub-pixels R arranged along the first direction X, and part of the sub-pixel group 10 includes green sub-pixels G and blue sub-pixels B arranged along the first direction X.
[0040] It should be noted that each row of sub-pixel groups 10 has a first scan line Scan1 and a second scan line Scan2 on both sides, that is, there is a first scan line Scan1 and a second scan line Scan2 between each row of sub-pixel groups 10.
[0041] It should be noted that the first scan line Scan1 and the second scan line Scan2 both extend along the first direction X, and the data line Data extends along the second direction Y. The angle between the first direction X and the second direction Y in this application can be greater than 0 and less than or equal to 90 degrees. For example, the angle between the first direction X and the second direction Y in this application can be 90 degrees.
[0042] It should be noted that the polarities of two adjacent data lines (Data) are opposite, and the polarities of the two sub-pixels in each sub-pixel group 10 are opposite. Simultaneously, the polarities of sub-pixels located on both sides of and adjacent to the data line (Data) are the same, and the polarities of the sub-pixels located on both sides of the data line (Data) are opposite to the polarities of the corresponding data line (Data); for example, in... Figure 2 In the structure, the polarities of the two sub-pixels in each sub-pixel group 10 are positive and negative, respectively, and the polarities of the sub-pixels on both sides of the data line Data that transmits positive signals are negative, while the polarities of the sub-pixels on both sides of the data line Data that transmits negative signals are positive.
[0043] It should be noted that each sub-pixel contains a thin-film transistor, which can be an etch-block type, a back-channel etch type, or, depending on the position of the gate and the active layer, can be classified as a bottom-gate thin-film transistor, a top-gate thin-film transistor, etc. This application does not impose any specific limitations.
[0044] The technical solution of this application will now be described in conjunction with specific embodiments.
[0045] Please see Figures 2 to 5 The subpixels in this application are arranged in a standard RGB layout, that is, the red subpixel R, the green subpixel G, and the blue subpixel B are arranged repeatedly in the first direction X, and the subpixels in each column have the same color.
[0046] In this embodiment, the sub-pixels connected by two adjacent first scan lines Scan1 are in different positions in the sub-pixel group 10, and the sub-pixels connected by two adjacent second scan lines Scan2 are in different positions in the sub-pixel group 10.
[0047] Please see Figure 2Each subpixel group 10 includes a first subpixel PL1 and a second subpixel PL2 arranged along a first direction X; in one scan line group 20 of two adjacent scan line groups 20, the first scan line Scan1 is connected to the first subpixel PL1 in a row of subpixel group 10, and the second scan line Scan2 is connected to the second subpixel PL2 in a row of subpixel group 10; in the other scan line group 20 of two adjacent scan line groups 20, the first scan line Scan1 is connected to the second subpixel PL2 in a row of subpixel group 10, and the second scan line Scan2 is connected to the first subpixel PL1 in a row of subpixel group 10.
[0048] The following explanation uses sub-pixel group 10 in rows 1 and 2 as an example.
[0049] exist Figure 2 In the structure, the first sub-pixel PL1 in the first row and first column of the sub-pixel group 10 is connected to the second data line Data2 and the first scan line Scan1 in the first row of the scan line group 20. The second sub-pixel PL2 in the first row and second column of the sub-pixel group 10 is connected to the second data line Data2 and the second scan line Scan2 in the first row of the scan line group 20. The first sub-pixel PL1 in the second row and first column of the sub-pixel group 10 is connected to the second data line Data2 and the second scan line Scan2 in the second row of the scan line group 20. The second sub-pixel PL2 in the second row and second column of the sub-pixel group 10 is connected to the second data line Data2 and the first scan line Scan1 in the second row of the scan line group 20.
[0050] That is, in Figure 2In the structure, the first scan line Scan1 in the first row scan line group 20 outputs an active level, the transistor in the first sub-pixel PL1 in the first row and first column sub-pixel group 10 turns on, and the second data line Data2 inputs a data signal to the first sub-pixel PL1 in the first row and first column sub-pixel group 10; next, the second scan line Scan2 in the first row scan line group 20 outputs an active level, the transistor in the second sub-pixel PL2 in the first row and second column sub-pixel group 10 turns on, and the second data line Data2 inputs a data signal to the second sub-pixel PL2 in the first row and second column sub-pixel group 10. Next, the first scan line Scan1 in the second row of scan line group 20 outputs an active level, the transistor in the second sub-pixel PL2 in the second row and second column of sub-pixel group 10 turns on, and the second data line Data2 inputs a data signal to the second sub-pixel PL2 in the second row and second column of sub-pixel group 10; finally, the second scan line Scan2 in the second row of scan line group 20 outputs an active level, the transistor in the first sub-pixel PL1 in the second row and first column of sub-pixel group 10 turns on, and the second data line Data2 inputs a data signal to the first sub-pixel PL1 in the second row and first column of sub-pixel group 10.
[0051] In this embodiment, the sub-pixels connected to the second data line Data2 are all red sub-pixels R, the sub-pixels connected to the third data line Data3 are all blue sub-pixels B, the sub-pixels connected to the fourth data line Data4 are all green sub-pixels G, the sub-pixels connected to the fifth data line Data5 are all red sub-pixels R, and so on.
[0052] It should be noted that, since no sub-pixel is set on the left side of the first data line Data1, the first data line Data1 of this application is only connected to the second sub-pixel PL2 in the first column of sub-pixel group 10, that is, the first data line Data1 is only connected to the green sub-pixel G in the first column of sub-pixel group 10.
[0053] Similarly, in Figure 2 In the structure, the first scan line Scan1 in the first row of scan line group 20 is connected to the first sub-pixel PL1 on the left side of sub-pixel group 10, and the second scan line Scan2 in the first row of scan line group 20 is connected to the second sub-pixel PL2 on the right side of sub-pixel group 10; similarly, Figure 2In the odd-numbered rows of the scan line group 20, the first scan line Scan1 and the second scan line Scan2 are connected in the same way. In the even-numbered rows of the scan line group 20, the first scan line Scan1 and the second scan line Scan2 are connected in the same way. The connection methods of the odd-numbered rows and the even-numbered rows are different.
[0054] Please see Figure 2 and Figure 3 For two adjacent scan line groups 20, in one scan cycle, the first scan line Scan1 of the current scan line group 20, the second scan line Scan2 of the current scan line group 20, the first scan line Scan1 of the next scan line group 20, and the second scan line Scan2 of the next scan line group 20 sequentially input valid scan signals to the sub-pixels of the corresponding rows.
[0055] Please see Figure 2 and Figure 3 In this application, the first scan line Scan1 in the first row scan line group 20 is designated as the first scan line G1, and the time when the first scan line G1 inputs the scan signal to the sub-pixel of the corresponding row is T1. The second scan line Scan2 in the first row scan line group 20 is designated as the second scan line G2, and the time when the second scan line G2 inputs the scan signal to the sub-pixel of the corresponding row is T2. The first scan line Scan1 in the second row scan line group 20 is designated as the third scan line G3, and the time when the third scan line G3 inputs the scan signal to the sub-pixel of the corresponding row is T3. The second scan line Scan2 in the second row scan line group 20 is designated as the fourth scan line G4, and the time when the fourth scan line G4 inputs the scan signal to the sub-pixel of the corresponding row is T4. T1 is less than T2, T2 is less than T3, and T3 is less than T4. Figure 2 The scan lines in the structure are scanned line by line.
[0056] At the same time, the time when the (n-1)th scan line Gn-1 inputs the scan signal to the sub-pixel of the corresponding row is Tn-1, the time when the nth scan line Gn inputs the scan signal to the sub-pixel of the corresponding row is Tn, and the time when the nth scan line Gn inputs the scan signal to the sub-pixel of the corresponding row is Tn, and Tn-1 is less than Tn.
[0057] In this embodiment, the sub-pixels connected by two adjacent first scan lines Scan1 are in the same position in the sub-pixel group 10, and the sub-pixels connected by two adjacent second scan lines Scan2 are in the same position in the sub-pixel group 10.
[0058] Please see Figure 4 and Figure 5In two adjacent scan line groups 20, the first scan line Scan1 is connected to either the first sub-pixel PL1 or the second sub-pixel PL2 in a row of sub-pixel groups 10, and the second scan line Scan2 is connected to the other of either the first sub-pixel PL1 or the second sub-pixel PL2 in a row of sub-pixel groups 10.
[0059] Taking sub-pixel group 10 in rows 1 and 2 as an example... Figure 4 The technical solution will be explained.
[0060] exist Figure 4 In the structure, the first sub-pixel PL1 in the first row and first column of the sub-pixel group 10 is connected to the second data line Data2 and the first scan line Scan1 in the first row of the scan line group 20. The second sub-pixel PL2 in the first row and second column of the sub-pixel group 10 is connected to the second data line Data2 and the second scan line Scan2 in the first row of the scan line group 20. The first sub-pixel PL1 in the second row and first column of the sub-pixel group 10 is connected to the second data line Data2 and the first scan line Scan1 in the second row of the scan line group 20. The second sub-pixel PL2 in the second row and second column of the sub-pixel group 10 is connected to the second data line Data2 and the second scan line Scan2 in the second row of the scan line group 20.
[0061] That is, in Figure 4 In the structure, the first scan line Scan1 in the first row scan line group 20 outputs an active level, the transistor in the first sub-pixel PL1 in the first row and first column sub-pixel group 10 turns on, and the second data line Data2 inputs a data signal to the first sub-pixel PL1 in the first row and first column sub-pixel group 10; next, the second scan line Scan2 in the first row scan line group 20 outputs an active level, the transistor in the second sub-pixel PL2 in the first row and second column sub-pixel group 10 turns on, and the second data line Data2 inputs a data signal to the second sub-pixel PL2 in the first row and second column sub-pixel group 10. Next, the first scan line Scan1 in the second row scan line group 20 outputs an active level, the transistor in the first sub-pixel PL1 in the second row and first column sub-pixel group 10 turns on, and the second data line Data2 inputs a data signal to the first sub-pixel PL1 in the second row and first column sub-pixel group 10; finally, the second scan line Scan2 in the second row scan line group 20 outputs an active level, the transistor in the second sub-pixel PL2 in the second row and second column sub-pixel group 10 turns on, and the second data line Data2 inputs a data signal to the second sub-pixel PL2 in the second row and second column sub-pixel group 10.
[0062] exist Figure 4In the structure, the first scan line Scan1 in the first and second row scan line groups 20 are both connected to the first sub-pixel PL1 on the left side of the sub-pixel group 10, and the second scan line Scan2 in the first and second row scan line groups 20 are both connected to the second sub-pixel PL2 on the right side of the sub-pixel group 10, that is... Figure 4 The connection method of the first scan line Scan1 and the second scan line Scan2 in the scan line group 20 of the odd-numbered and even-numbered rows is the same.
[0063] In this embodiment, since no sub-pixels are provided on the left side of the first data line Data1, the first data line Data1 is only connected to the second sub-pixel PL2 in the first column of sub-pixel group 10, that is, the first data line Data1 is only connected to the green sub-pixel G in the first column of sub-pixel group 10; the sub-pixels connected to the second data line Data2 are all red sub-pixels R, the sub-pixels connected to the third data line Data3 are all blue sub-pixels B, the sub-pixels connected to the fourth data line Data4 are all green sub-pixels G, the sub-pixels connected to the fifth data line Data5 are all red sub-pixels R, and so on.
[0064] In this embodiment, the display panel 100 includes N rows of sub-pixel groups 10 and N scan line groups corresponding to the N rows of sub-pixel groups 10, where N and n are positive integers, and n is less than or equal to N.
[0065] In this embodiment, the first scan line Scan1 in the nth scan line group is connected to the first sub-pixel PL1 in the (n-1)th row sub-pixel group 10, and the second scan line Scan2 in the nth scan line group is connected to the second sub-pixel PL2 in the (n+1)th row sub-pixel group 10; similarly, the first scan line Scan1 in the nth scan line group can also be connected to the second sub-pixel PL2 in the (n-1)th row sub-pixel group 10, and the second scan line Scan2 in the nth scan line group can also be connected to the first sub-pixel PL1 in the (n+1)th row sub-pixel group 10.
[0066] Taking sub-pixel group 10 from row (n-1) to row (n+1) as an example... Figure 5 The technical solution will be explained.
[0067] exist Figure 5In the structure, the first sub-pixel PL1 in the sub-pixel group 10 of the nth row and the first column is connected to the second data line Data2 and the second scan line Scan2 in the scan line group 20 of the (n-1)th row. The second sub-pixel PL2 in the sub-pixel group 10 of the nth row and the second column is connected to the second data line Data2 and the first scan line Scan1 in the scan line group 20 of the (n+1)th row. The first sub-pixel PL1 in the sub-pixel group 10 of the (n+1)th row and the first column is connected to the second data line Data2 and the second scan line Scan2 in the scan line group 20 of the nth row. The second sub-pixel PL2 in the sub-pixel group 10 of the (n+1)th row and the second column is connected to the second data line Data2 and the first scan line Scan1 in the scan line group 20 of the (n+2)th row.
[0068] That is, in Figure 5 In the structure, the second scan line Scan2 in the (n-1)th row scan line group 20 outputs an effective level, the transistor in the first sub-pixel PL1 in the sub-pixel group 10 in the nth row and 1st column turns on, and the second data line Data2 inputs a data signal to the first sub-pixel PL1 in the sub-pixel group 10 in the 1st row and 1st column; next, the first scan line Scan1 in the (n+1)th row scan line group 20 outputs an effective level, the transistor in the second sub-pixel PL2 in the sub-pixel group 10 in the nth row and 2nd column turns on, and the second data line Data2 inputs a data signal to the second sub-pixel PL2 in the sub-pixel group 10 in the 1st row and 2nd column.
[0069] exist Figure 5 In the structure, the first scan line Scan1 in each row of scan line group 20 is connected to the second sub-pixel PL2 on the right side in the sub-pixel group 10 of the previous row, and the second scan line Scan2 in each row of scan line group 20 is connected to the first sub-pixel PL1 on the left side in the sub-pixel group 10 of the next row.
[0070] It should be noted that, Figure 3 The timing diagram in the image is also applicable to... Figure 4 and Figure 5 The structure in.
[0071] In this application Figure 2 , Figure 4 and Figure 5 In the DLS pixel architecture, the parasitic capacitance difference between subpixels leads to different degrees of feedthrough effect. Subpixels will have uneven brightness due to the different degrees of feedthrough effect, which brings the risk of head-shaking lines.
[0072] exist Figure 2In the structure, when the first scan line Scan1 of the first row of the scan line group 20 transmits an effective level, the red sub-pixel R in the first row and first column of the sub-pixel group 10 has a coupling capacitance with the first scan line Scan1 of the first row of the scan line group 20, and the red sub-pixel R in the first row and first column of the sub-pixel group 10 experiences the first feedthrough effect. When the second scan line Scan2 of the first row of the scan line group 20 transmits an effective level, the red sub-pixel R in the first row and first column of the sub-pixel group 10 has a coupling capacitance with the second scan line Scan2 of the first row of the scan line group 20, and the red sub-pixel R in the first row and first column of the sub-pixel group 10 experiences the second feedthrough effect.
[0073] exist Figure 2 In the structure, when the first scan line Scan1 of the first row of the scan line group 20 transmits an effective level, the green sub-pixel G in the first row of the first column of the sub-pixel group 10 is not turned on, and there is no coupling capacitor between the green sub-pixel G in the first row of the first column of the sub-pixel group 10 and the first scan line Scan1 of the first row of the scan line group 20. When the second scan line Scan2 of the first row of the scan line group 20 transmits an effective level, the green sub-pixel G in the first row of the first column of the sub-pixel group 10 is turned on, and there is a coupling capacitor between it and the second scan line Scan2 of the first row of the scan line group 20. The green sub-pixel G in the first row of the first column of the sub-pixel group 10 undergoes the first feedthrough effect.
[0074] exist Figure 2 In the structure, when the first scan line Scan1 of the second row scan line group 20 transmits an effective level, the green sub-pixel G in the first column of the second row sub-pixel group 10 has a coupling capacitance with the first scan line Scan1 of the second row scan line group 20, and the green sub-pixel G in the first column of the second row sub-pixel group 10 experiences the first feedthrough effect. When the second scan line Scan2 of the second row scan line group 20 transmits an effective level, the green sub-pixel G in the first column of the second row sub-pixel group 10 has a coupling capacitance with the second scan line Scan2 of the second row scan line group 20, and the green sub-pixel G in the first column of the second row sub-pixel group 10 experiences the second feedthrough effect.
[0075] exist Figure 2In the structure, when the first scan line Scan1 of the second row scan line group 20 transmits an effective level, the red sub-pixel R in the first column of the second row sub-pixel group 10 is not turned on, and there is no coupling capacitor between the red sub-pixel R in the first column of the second row sub-pixel group 10 and the first scan line Scan1 of the first row scan line group 20. When the second scan line Scan2 of the second row scan line group 20 transmits an effective level, the red sub-pixel R in the first column of the second row sub-pixel group 10 is turned on, and there is a coupling capacitor between it and the second scan line Scan2 of the second row scan line group 20. The red sub-pixel R in the first column of the second row sub-pixel group 10 undergoes the first feedthrough effect.
[0076] exist Figure 2 In the structure, for sub-pixels of the same color in the same column, the number of times adjacent sub-pixels experience feedthrough effect is different, and sub-pixels that experience one feedthrough effect and those that experience two feedthrough effects are alternately set. In addition, one data line Data of this application is connected to two adjacent columns of sub-pixels of the same color, so the degree of feedthrough effect of sub-pixels of the same color is comparable, which improves the brightness uniformity of two adjacent columns of sub-pixels of the same color and improves the display effect of the display panel 100.
[0077] At the same time, in the appendix Figure 5 In this structure, since the subpixels in subpixel group 10 are connected to the scan lines of adjacent rows, there is no coupling capacitance between the subpixels and the scan lines they are connected to. Therefore, the attached... Figure 5 The sub-pixels in the image did not experience feedthrough effect.
[0078] This application also proposes a display device, which includes a terminal body and the aforementioned display panel, wherein the terminal body and the display panel are integrated into one unit. The terminal body may include components such as a circuit board bonded to the display panel, and a cover plate disposed on the display panel. Mobile terminals may include electronic devices such as mobile phones, televisions, and laptops.
[0079] In the description of this application, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include one or more features. In the description of this application, "multiple" means two or more, unless otherwise explicitly specified.
[0080] In the above embodiments, the descriptions of each embodiment have different focuses. For parts not described in detail in a certain embodiment, please refer to the relevant descriptions in other embodiments.
[0081] The embodiments, implementation methods, and related technical features of this application can be combined and substituted for each other without conflict.
[0082] The above are merely preferred embodiments of this application and are not intended to limit this application in any way. Any simple modifications, equivalent changes, and alterations made to the above embodiments based on the technical essence of this application without departing from the scope of the technical solution of this application shall still fall within the scope of the technical solution of this application.
Claims
1. A display panel, characterized by, The display panel comprises: a plurality of sub-pixel groups arranged along a first direction and a second direction, each of the sub-pixel groups comprising two sub-pixels of different colors arranged along the first direction, and a plurality of sub-pixels arranged along the second direction having the same color; a plurality of scan line groups arranged along the second direction, each of the scan line groups comprising a first scan line and a second scan line extending along the first direction, the first scan line and the second scan line being arranged on both sides of a corresponding row of the sub-pixel groups, the first scan line being connected to one of the sub-pixel groups in the row, and the second scan line being connected to another of the sub-pixel groups in the row; a plurality of data lines extending along the second direction, the data lines being arranged between two adjacent columns of the sub-pixel groups, each of the data lines being connected to one of the sub-pixels in the two adjacent columns of the sub-pixel groups, each of the data lines being connected to the sub-pixels of the same color, and the colors of the sub-pixels connected by two adjacent data lines being different; wherein, for a column of the sub-pixels arranged along the second direction, the number of times of crosstalk between two adjacent sub-pixels is different, for a row of the sub-pixels arranged along the first direction, the number of times of crosstalk between two adjacent sub-pixels is different, and the sub-pixels with one time of crosstalk and the sub-pixels with two times of crosstalk are arranged alternately, and the degree of crosstalk of the sub-pixels of the same color is equivalent.
2. The display panel of claim 1, wherein, The positions of the sub-pixels connected by two adjacent first scan lines in the sub-pixel groups are different, and the positions of the sub-pixels connected by two adjacent second scan lines in the sub-pixel groups are different.
3. The display panel of claim 2, wherein, Each of the sub-pixel groups comprises a first sub-pixel and a second sub-pixel arranged along the first direction; in one of the two adjacent scan line groups, the first scan line is connected to the first sub-pixel in the row of the sub-pixel groups, and the second scan line is connected to the second sub-pixel in the row of the sub-pixel groups; in the other of the two adjacent scan line groups, the first scan line is connected to the second sub-pixel in the row of the sub-pixel groups, and the second scan line is connected to the first sub-pixel in the row of the sub-pixel groups.
4. The display panel of claim 3, wherein, For the two adjacent scan line groups, in one scan period, the first scan line of the scan line group of the current stage, the second scan line of the scan line group of the current stage, the first scan line of the scan line group of the next stage, and the second scan line of the scan line group of the next stage are sequentially connected to the corresponding row of sub-pixels to input a scan signal.
5. The display panel of any one of claims 1 to 4, wherein, The polarities of two adjacent data lines are opposite, and the polarities of two sub-pixels in each of the sub-pixel groups are opposite.
6. The display panel of claim 5, wherein, The polarities of the sub-pixels arranged on both sides of the data line and adjacent to the data line are the same, and the polarities of the sub-pixels arranged on both sides of the data line are opposite to the polarity of the corresponding data line.
7. A display panel, characterized by The display panel comprises: a plurality of sub-pixel groups arranged along a first direction and a second direction, each of the sub-pixel groups comprising two sub-pixels of different colors arranged along the first direction, the two sub-pixels of different colors comprising a first sub-pixel and a second sub-pixel; a plurality of scan line groups arranged along the second direction, each of the scan line groups comprising a first scan line and a second scan line extending along the first direction, the first scan line and the second scan line being arranged at two sides of a corresponding row of the sub-pixel groups, the first scan line being connected to one of the sub-pixel groups in the row, the second scan line being connected to another of the sub-pixel groups in the row; a plurality of data lines extending along the second direction, the data lines being arranged between two columns of the sub-pixel groups, each of the data lines being connected to one of the sub-pixels in the two columns, the data lines of the same color being connected to the sub-pixels of the same color, and the data lines of different colors being connected to the sub-pixels of different colors; the sub-pixels connected by two adjacent first scan lines are located at the same positions in the sub-pixel groups, and the sub-pixels connected by two adjacent second scan lines are located at the same positions in the sub-pixel groups; wherein the display panel comprises N rows of the sub-pixel groups and N scan line groups corresponding to the N rows of the sub-pixel groups, the first scan line in the nth scan line group being arranged close to the (n-1)th row of the sub-pixel groups, and the second scan line in the nth scan line group being arranged away from the (n-1)th row of the sub-pixel groups, n and N being positive integers, n being greater than or equal to 2 and less than or equal to N. the first scan line in the nth scan line group is connected to one of the first sub-pixel or the second sub-pixel in the (n-1)th row of the sub-pixel groups, and the second scan line in the nth scan line group is connected to the other of the first sub-pixel or the second sub-pixel in the (n+1)th row of the sub-pixel groups.
8. The display panel of claim 7, wherein, the polarities of two adjacent data lines are opposite, and the polarities of the two sub-pixels in each of the sub-pixel groups are opposite.
9. The display panel of claim 8, wherein, the polarities of the sub-pixels arranged at two sides of the data line and adjacent to the data line are the same, and the polarities of the sub-pixels arranged at two sides of the data line are opposite to the polarity of the corresponding data line.
10. A display device, characterized by comprising: the display device comprises the display panel according to any one of claims 1 to 9.
Citation Information
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