Display panel and display device
By designing two display areas on the display panel, placing sub-pixels in one area and driving pixel circuits in the other area, and optimizing the circuit layout, the problem of uneven display effects of the display panel in the prior art is solved, and a more uniform display effect and more stable signal transmission are achieved.
Patent Information
- Application Number
- JP2023571223
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-01-29
- Filing Date
- 2022-07-22
- Publication Date
- 2025-05-14
- Estimated Expiration
- 2042-07-22
AI Technical Summary
In the display panel of existing electronic devices, the layout density of sub-pixels and pixel circuits is uneven, resulting in uneven display effects.
A display panel design with two display areas is adopted, one area is used to place sub-pixels and the other area is used to place driving pixel circuits. By optimizing the circuit layout and signal transmission path, the corresponding relationship between the circuit and the sub-pixels is ensured to achieve a more uniform display effect.
Through this design, the display effect of the display panel can be improved, the brightness uniformity of the display area and the stability of signal transmission can be ensured, the distance between the circuit and the sub-pixel and the length of the wire can be reduced, and the overall display quality can be improved.
Smart Images

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Abstract
Description
[Technical field]
[0001] This application claims priority to Chinese Patent Application No. 202210111313.9, entitled "Display Panel and Display Device," filed on January 29, 2022, the entire contents of which are incorporated herein by reference.
[0002] The present invention relates to the display field, and in particular to a display panel and a display device. [Background technology]
[0003] 2. Description of the Related Art With the rapid development of electronic devices, users have higher and higher requirements for screen occupancy rate, and the full-screen display of electronic devices is receiving more and more attention from the industry.
[0004] For example, conventional electronic devices such as mobile phones and tablet PCs need to integrate a front camera, a receiver, an infrared sensing element, etc. In the prior art, sub-pixels can be arranged in a photosensitive area where a photosensitive assembly such as a camera is located, and pixel circuits corresponding to these sub-pixels can be arranged in other positions in the display area. In addition, in some display panels, pixel circuits closer to the display area of the bezel are arranged in other positions to realize a narrow frame design. All of the above results in uneven arrangement density of pixel circuits in the display area, which causes display differences in the display panel. Summary of the Invention
[0005] The embodiments of the present application provide a display panel and a display device for improving the display effect of the display panel.
[0006] An embodiment of a first aspect of the present application provides a display panel having a first display area and a second display area, the display panel including a plurality of pixel blocks including a plurality of sub-pixels, and a plurality of circuit blocks located in the second display area, each pixel block including a number of sub-pixels among the plurality of sub-pixels, the plurality of sub-pixels including a first sub-pixel located in the first display area and a second sub-pixel located in the second display area, each circuit block including b pixel circuits, the b pixel circuits including a first circuit and a second circuit, at least a portion of the first circuits are used to drive the first sub-pixels, and the second circuits are used to drive the second sub-pixels, a and b are both positive integers greater than 0, and a is smaller than b, and within the second display area, an orthogonal projection of each circuit block along a thickness direction of the display panel is located within an orthogonal projection of each pixel block along the thickness direction.
[0007] An embodiment of a second aspect of the present application provides a display device including the display panel of the embodiment of the first aspect.
[0008] In the display panel according to the embodiment of the first aspect of the present application, the circuit block is located in the second display area, i.e., the pixel circuits for driving the first sub-pixel and the second sub-pixel are both located in the second display area, and the light transmittance of the first display area can be made larger than that of the second display area. The display panel can integrate a photosensitive assembly behind the first display area, for example, to realize that the photosensitive assembly of a camera is integrated below the screen. Alternatively, a driving circuit such as a shift register of the display panel can be provided in the first display area to realize a narrow frame design of the display panel.
[0009] In the display panel according to the embodiment of the first aspect of the present application, the circuit block is located in the second display area, each pixel block includes b pixel circuits, the pixel block in the second display area includes a second sub-pixels, b is greater than a, and the extra first circuits in at least some of the circuit blocks can drive the first sub-pixels in the first display area. The orthogonal projection of each circuit block along the thickness direction of the display panel is located within the orthogonal projection of each pixel block along the thickness direction, and the arrangement of the circuit blocks in the second display area can be ensured to be the same as the arrangement of the pixel blocks, so that the arrangement of the circuit blocks is more uniform, improving the display effect of the second display area and further improving the display effect of the display panel. Meanwhile, the distance between the second circuits in at least some of the circuit blocks and the second sub-pixels it drives can be reduced, and the wiring length between at least some of the second circuits and the second sub-pixels can be shortened, ensuring the stability of signal transmission. [Brief description of the drawings]
[0010] [Figure 1] 1 is a structural schematic diagram of a display panel according to an embodiment of the first aspect of the present application. [Diagram 2] 2 is a schematic diagram showing an example of a sub-pixel array structure of a Q region in FIG. [Diagram 3] 2 is a schematic diagram showing an arrangement structure of pixel circuits in an example of a Q region in FIG. 1. [Figure 4] 2 is a schematic diagram of an example of a sub-pixel array structure in a W region in FIG. 1. [Diagram 5] 2 is a schematic diagram showing an example of an array structure of pixel circuits in a W region in FIG. 1. [Figure 6] 1. FIG. 4 is a schematic diagram showing an arrangement structure of pixel circuits in another example of the Q region in FIG. [Figure 7] 2 is a schematic diagram showing an example of a sub-pixel array structure in a P region in FIG. 1. [Figure 8] 2 is a schematic diagram showing an example of an array structure of pixel circuits in a P region in FIG. 1. [Figure 9] 1. FIG. 4 is a schematic diagram showing an arrangement structure of pixel circuits in another example of the P region in FIG. [Figure 10]2 is a schematic diagram showing an example of a sub-pixel array structure of an I region in FIG. 1. [Figure 11] 2 is a schematic diagram showing an arrangement structure of pixel circuits in an example of an I region in FIG. 1. [Figure 12] 2 is a schematic diagram showing an example of a sub-pixel arrangement structure in region II in FIG. 1. [Figure 13] 2 is a schematic diagram showing an example of an array structure of pixel circuits in region II in FIG. 1. [Figure 14] 1. FIG. 4 is a schematic diagram showing an arrangement structure of pixel circuits in another example of the I region in FIG. [Figure 15] FIG. 3 is a partial cross-sectional view of a portion CC in FIG. 2. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0011] In electronic devices such as mobile phones and tablets, it is necessary to integrate a photosensitive assembly on one side of a display panel, such as a front camera, an infrared sensor, a proximity sensor, etc. In some embodiments, a light-transmitting display area is provided in the electronic device, and the photosensitive assembly is provided behind the light-transmitting display area, so as to ensure that the photosensitive assembly works normally and to realize a full-screen display of the electronic device.
[0012] In order to improve the light transmittance of the light-transmitting display area, the driving circuit for the light-transmitting area is disposed in the non-light-transmitting area, but this causes the display effect of the non-light-transmitting area of the display panel to be non-uniform.
[0013] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS In order to solve the above problems, the embodiments of the present application provide a display panel and a display device.
[0014] The embodiment of the present application provides a display panel 100, which may be an Organic Light Emitting Diode (OLED) display panel 100.
[0015] Referring to Figs. 1 to 3, Fig. 1 is a schematic top view of a display panel 100 according to one embodiment of the present application. Referring to Fig. 2, Fig. 2 is a partially enlarged schematic structural view of region Q in Fig. 1. Fig. 3 is a partially enlarged schematic structural view of region Q in Fig. 1 in another example. Figs. 3 and 2 show different layer configurations. Fig. 2 shows an arrangement structure diagram of sub-pixels 110a at location Q in Fig. 1, and the difference between Fig. 3 and Fig. 2 is that Fig. 3 shows an arrangement structure diagram of pixel circuits 120a in the second display area AA2 at location Q, and shows a schematic diagram of the arrangement structure of sub-pixels 110a in the first display area AA1.
[0016] As shown in FIGS. 1 to 3, an embodiment of the first aspect of the present application provides a display panel 100 having a first display area AA1 and a second display area AA2. The display panel 100 includes a plurality of sub-pixels, a plurality of pixel blocks 110 including the plurality of sub-pixels, and a plurality of circuit blocks 120. The plurality of sub-pixels include a first sub-pixel 111 located in the first display area AA1 and a second sub-pixel 112 located in the second display area AA2. Each pixel block 110 includes a number of sub-pixels 110a among the plurality of sub-pixels. The plurality of sub-pixels 110a include a first sub-pixel 111 located in the first display area AA1 and a second sub-pixel 112 located in the second display area AA2. 2 and 3, the pixel blocks 110 and the circuit blocks 120 are located in the second display area AA2, each circuit block 120 includes b pixel circuits 120a, each b pixel circuit 120a includes a first circuit 121 and a second circuit 122, at least a part of the first circuits 121 are used to drive the first subpixels 111, and the second circuits 122 are used to drive the second subpixels 112, a and b are both positive integers greater than 0, and a is smaller than b, and in the second display area AA2, the orthogonal projection of each circuit block 120 along the thickness direction of the display panel 100 is located within the orthogonal projection of each pixel block 110 along the thickness direction. In FIG. 2 and FIG. 3, the structures of the pixel blocks 110 and the circuit blocks 120 are defined by rectangular frames, and the rectangular frames do not define the structure of the display panel 100 of the present application. The rectangular frame includes a small portion of subpixels 110a that do not belong to the same pixel block 110, and any subpixel 100a whose area located within the rectangular frame is greater than 50% of its total area is a subpixel 110a within the pixel block 110 indicated by the rectangular frame.
[0017] All of the a sub-pixels 110a in each pixel block 110 located in the first display area AA1 are first sub-pixels 111, and all of the a sub-pixels 110a in each pixel block 110 located in the second display area AA2 are second sub-pixels 112.
[0018] In the display panel 100 according to the embodiment of the first aspect of the present application, the circuit block 120 is located in the second display area AA2, i.e., the pixel circuits 120a for driving the first sub-pixel 111 and the second sub-pixel 112 are both located in the second display area AA2, and the light transmittance of the first display area AA1 can be made greater than that of the second display area AA2. The display panel 100 can integrate a photosensitive assembly on the back surface of the first display area AA1, for example, to realize that the photosensitive assembly of a camera is integrated below the screen. Alternatively, in order to realize a narrow-frame design of the display panel 100, a driving circuit such as a shift register of the display panel 100 can be provided in the first display area AA1.
[0019] In the display panel 100 according to the embodiment of the first aspect of the present application, the circuit block 120 is located in the second display area AA2, each circuit block 120 includes b pixel circuits 120a, the pixel block 110 includes a second sub-pixels 112 located in the second display area AA2, where b is greater than a, and a second circuits 122 are provided in the circuit block 120 to drive a second sub-pixels 112 in the pixel block 110. ba first circuits 120 can be provided in the circuit block 120, and at least a part of the first circuits 121 in the circuit block 120 can drive the first sub-pixels 111 in the first display area AA1. The orthogonal projection of each circuit block 120 along the thickness direction of the display panel 100 is located within the orthogonal projection of each pixel block 110 along the thickness direction. This ensures that the arrangement of the second circuits 122 in the circuit block 120 in the second display area AA2 is the same as the arrangement of the second sub-pixels 112 in the pixel block 110, making the arrangement of the circuit blocks 120 more uniform and improving the display effect of the second display area AA2. Meanwhile, the distance between at least some of the second circuits 122 in the circuit block 120 and the second sub-pixels 112 they drive is reduced, shortening the wiring length between at least some of the second circuits 122 and the second sub-pixels 112, and ensuring the stability of signal transmission.
[0020] Optionally, the pixel block 110 in the second display area AA2 includes a second sub-pixels 112, and the pixel block 110 in the first display area AA1 includes a first sub-pixels 111. When a portion of the display area is located between the first display area AA1 and the second display area AA2, the pixel block 110 located between the first display area AA1 and the second display area AA2 may further include a first sub-pixel 111 and a second sub-pixel 112, and the total number of the first sub-pixels 111 and the second sub-pixels 112 is a.
[0021] Optionally, the circuit block 120 may include b first circuits 121 or b second circuits 122. In some other embodiments, the pixel circuit 120a may include both the first circuits 121 and the second circuits 122, and the total number of the first circuits 121 and the second circuits 122 is b.
[0022] In some optional embodiments, within the second display area AA2, the area of the orthogonal projection of each pixel block 110 along the thickness direction overlaps with the area of the orthogonal projection of the circuit block 120 along the thickness direction, thereby making the area of the pixel circuit 120a within the pixel block 110 larger.
[0023] Optionally, still referring to Fig. 3, the areas in which the first circuit 121 and the second circuit 122 are arranged are equal to each other, which can further improve the display effect of the second display area AA2 and avoid the display difference caused by the different areas in which the first circuit 121 and the second circuit 122 are arranged. Optionally, the circuit structures of the first circuit 121 and the second circuit 122 are the same, with the difference being that a part of the first circuit 121 is used to drive the first sub-pixel 111, and the second circuit 122 is used to drive the second sub-pixel 112.
[0024] The orthogonal projection of the circuit block 120 along the thickness direction of the display panel 100 is the orthogonal projection of the circuit block 120 on the display surface of the display panel 100. The orthogonal projection of the pixel block 110 along the thickness direction is the orthogonal projection of the pixel block 110 on the display surface of the display panel 100.
[0025] Alternatively, the orthogonal projection of the pixel block 110 along the thickness direction of the display panel 100 is an area where the orthogonal projection of a number of sub-pixels 110a in the pixel block 110 along the thickness direction of the display panel 100 is located. For example, when the sub-pixels 110a are arranged to form a pixel array structure, the area where the pixel block 110 is located is an array area occupied by a number of sub-pixels 110a in the pixel array structure. For example, when the size of the pixel array structure is 10 cm×10 cm and the sub-pixels 110a in the pixel array structure are distributed in 10 rows and 10 columns, the array size of a single sub-pixel 110a is 1 cm×1 cm, that is, the orthogonal projection size of a single sub-pixel 110a along the thickness direction of the display panel 100 is 1 cm×1 cm, and the area where the pixel block 110 is located is an area formed by a number of 1 cm×1 cm, which is merely described by way of example and does not mean that the actual array size of the sub-pixels 110a is 1 cm×1 cm.
[0026] The a sub-pixels 110a in the pixel block 110 are adjacently disposed. For example, as shown in Figures 2 and 3, if a is equal to 16 and the pixel block 110 includes 16 sub-pixels 110a, the 16 sub-pixels 110a in the pixel block 110 are adjacently disposed. The 16 sub-pixels 110a may be located in the same row or in two or more adjacent rows.
[0027] Optionally, as shown in Figures 2 and 3, when two adjacent sub-pixels 110a overlap in the row and / or column directions, an area in which the orthogonal projections of the a sub-pixels 110a along the thickness direction of the display panel 100 are located is an average array size of the a sub-pixels 110a. The row direction may be the first direction X, and the column direction may be the second direction Y. In other embodiments, the row direction may be the second direction Y, and the column direction is the first direction X.
[0028] Alternatively, as shown in FIG. 2, the sub-pixels 110a of the display panel 100 are arranged to form a pixel array structure, the pixel array structure includes a repeat unit, the repeat unit includes a plurality of sub-pixels 110a, and the repeat units are arranged repeatedly along the row direction and the column direction to form the pixel array structure. The number of sub-pixels 110a included in the pixel block 110 may be related to the number of sub-pixels 110a included in the repeat unit, for example, the number of sub-pixels 110a included in the pixel block 110 is an integer multiple of the number of sub-pixels 110a included in the repeat unit. For example, as shown in FIG. 2, when the repeat unit includes four sub-pixels 110a, the pixel block 110 includes 16 sub-pixels 110a, and the number of sub-pixels 110a included in the pixel block 110 is four times the number of sub-pixels 110a included in the repeat unit, i.e., the pixel block 110 includes four repeat units, and the orthogonal projection of the pixel block 110 along the thickness direction is the array size occupied by four repeat units.
[0029] Optionally, the orthogonal projection of the circuit block 120 along the thickness direction of the display panel 100 is an area where the orthogonal projection of the circuits of b sub-pixels 110a in the circuit block 120 along the thickness direction is located. The b pixel circuits 120a in the circuit block 120 are adjacently disposed. For example, if b=25 and the circuit block 120 includes 25 pixel circuits 120a, these 25 pixel circuits 120a are adjacently disposed. The 25 pixel circuits 120a may be located in the same row or in two or more rows.
[0030] Optionally, when a sub-pixels 110a in the pixel block 110 are arranged in the same row, b pixel circuits 120a in the circuit block 120 are arranged in the same row. The pixel circuits 120a in the circuit block 120 are compressed in the row direction, and the orthogonal projections of the b pixel circuits 120a along the thickness direction are located within the orthogonal projections of the a sub-pixels 110a along the thickness direction.
[0031] In some alternative embodiments, pixel block 110 includes a plurality of sub-pixels 110a arranged in p rows and q columns, where the product of p and q is a, and circuit block 120 includes a plurality of pixel circuits 120a arranged in e rows and f columns, where the product of e and f is b, where p, q, e, and f are all positive integers greater than 1, and e≧p, f≧q.
[0032] In these alternative embodiments, p, q, e, and f are all positive integers greater than 1, so that the pixel block 110 includes sub-pixels 110a arranged in multiple rows and multiple columns, and the circuit block 120 includes pixel circuits 120a arranged in multiple rows and multiple columns, such that the pixel circuits 120a are compressed in both the row direction and the column direction, thereby avoiding technical problems caused by the pixel circuits 120a being compressed in the same direction.
[0033] The arrangement manner of p, q, e, and f may be various, and in some alternative embodiments, p and q are equal, e and f are equal, and e is greater than p. That is, the pixel block 110 includes sub-pixels 110a arranged in p rows and p columns, and the circuit block 120 includes pixel circuits 120a arranged in e rows and e columns, so that the arrangement of the sub-pixels 110a in the pixel block 110 is more regular, and the arrangement of the pixel circuits 120a in the circuit block 120 is more regular, making it easier to adjust the size of the pixel circuits 120a.
[0034] 2 and 3, for example, when a=16 and the pixel block 110 includes 16 sub-pixels 110a, the pixel block 110 includes 4 rows and 4 columns of sub-pixels 110a. When b=25 and the circuit block 120 includes 25 pixel circuits 120a, the circuit block 120 includes 5 rows and 5 columns of pixel circuits 120a.
[0035] That is, in the display panel 100 according to the embodiment of the present application, 5 rows and 5 columns of pixel circuits 120 are provided in a region in which 4 rows and 4 columns of sub-pixels 110a are located in the second display area AA2. The number of pixel circuits 120a provided in the region in which 4 rows and 4 columns of sub-pixels 110a are located is greater than the number of sub-pixels 110a, and at least a part of the extra pixel circuit 120a in 1 row and 1 column in the region in which 4 rows and 4 columns of sub-pixels 110a are located is used to drive the first sub-pixel 111 in the first display area AA1.
[0036] 1 to 5, FIG. 4 is a schematic diagram of the arrangement structure of the sub-pixels 110a at W locations in FIG. 1, and FIG. 5 is a schematic diagram of the arrangement structure of the pixel circuits 120a at W locations in FIG.
[0037] 1 to 5, in some selectable embodiments, the second display area AA2 includes a main display area ZA and a transition display area TA, the transition display area TA is located between the main display area ZA and the first display area AA1, and the first circuit 121, at least a portion of which is located in the transition display area TA, is used to drive the first sub-pixel 111. That is, the area where the first circuit 121 for driving the first sub-pixel 111 is located is the transition display area TA, and the area where the first circuit 121 that does not drive the first sub-pixel 111 is located is the main display area ZA.
[0038] In these optional embodiments, by placing the first circuit 121 for driving the first subpixel 111 in the transition display area TA close to the first display area AA1, the distance between the first circuit 121 and the first subpixel 111 which are electrically connected to each other can be reduced, the length of the connecting line between the first circuit 121 and the first subpixel 111 can be shortened, and the stability of signal transmission can be ensured.
[0039] Optionally, each circuit block 120 in the main display area ZA is located within the orthogonal projection of each pixel block 110 to be driven, and each circuit block 120 in the main display area ZA includes a second circuit 122 in row p and column q, and a first circuit 121 in row (ep) and column (fq), where the first circuit 121 in row (ep) and column (fq) is in row (ep) and column (fq) in the circuit block 120 in row e and column f.
[0040] 4 and 5, for example, when the pixel block 110 includes sub-pixels 110a arranged in 4 rows and 4 columns, each row and each column has four sub-pixels 110a, and the circuit block 120 includes pixel circuits 120a arranged in 5 rows and 5 columns, each circuit block 120 in the main display area ZA includes a second circuit 122 arranged in 4 rows and 4 columns and a first circuit 121 arranged in 1 row and 1 column, and the first circuit 121 arranged in 1 row and 1 column refers to the first circuit 121 arranged in 1 row and 1 column in the pixel circuits 120a arranged in 5 rows and 5 columns. In the first circuit 121 arranged in 1 row and 1 column, there are five first circuits 121 arranged in one row and five first circuits 121 arranged in one column, and one first circuit 121 is overlapped at an intersection position in the first circuit 121 arranged in 1 row and 1 column. Therefore, each circuit block 120 in the main display area ZA includes 16 second circuits 122 and 9 first circuits 121.
[0041] In these selectable embodiments, the number of second circuits 122 included in the circuit blocks 120 in the main display area ZA is the same as the number of second subpixels 112 included in the pixel blocks 110, so that the second circuits 122 in each circuit block 120 can drive the second subpixels 112 in each pixel block 110. Each circuit block 120 in the main display area ZA is located within an orthogonal projection of each pixel block 110 it drives, which reduces the distance between the second circuits 122 and the second subpixels 112 it drives, and can shorten the wiring length between the second circuits 122 and the second subpixels 112 it drives.
[0042] Optionally, within the main display area ZA, the relative positional relationship of the multiple second circuits 122 in the circuit block 120 is the same as the relative positional relationship of the multiple second subpixels 112 in the pixel block 110, further reducing the distance between the second circuits 122 and the second subpixels 112 they drive, and shortening the length of the connecting lines between the second circuits 122 and the second subpixels 112 they drive.
[0043] Alternatively, the relative positional relationship between the second circuit 122 and the second sub-pixel 112 it drives in the main display area ZA may have a plurality of installation methods.
[0044] For example, the orthogonal projections along the thickness direction of the second circuit 122 and the second subpixel 112 it drives can be arranged to at least partially overlap, thereby further reducing the distance between the second circuit 122 and the second subpixel 112 it drives and shortening the length of the connecting line between the second circuit 122 and the second subpixel 112 it drives.
[0045] Alternatively, the second circuit 122 and the second sub-pixel 112 it drives may be positioned with their orthogonal projections along the thickness direction thereof shifted from each other, and the orthogonal projection along the thickness direction of the circuit block 120 in which the second circuit 122 is located may be located within the orthogonal projection along the thickness direction of the pixel block 110 in which the second sub-pixel 112 it drives is located.
[0046] Optionally, as shown in FIG. 5, a first circuit 121 in a circuit block 120 is located on one side of a second circuit 122 in a row direction, or the first circuit 121 is located on one side of multiple second circuits 122 in a column direction.
[0047] In some other embodiments, within the main display area ZA, the first circuit 121 is located at the middle in the row direction and / or column direction of the multiple second circuits 122. This reduces the offset size between the second circuit 122 and the second sub-pixel 112 it drives, and shortens the wiring length between the second circuit 122 and the second sub-pixel 112 it drives.
[0048] The arrangement manner of the first circuit 121 and the second circuit 122 in the transition display area TA may be various. In some alternative embodiments, still referring to FIG. 3 to FIG. 5, the arrangement manner of the first circuit 121 and the second circuit 122 in the transition display area TA is the same as the arrangement manner of the first circuit 121 and the second circuit 122 in the main display area ZA. That is, each circuit block 120 in the transition display area TA is located in the orthogonal projection of each pixel block 110 to be driven, and the circuit block 120 in the transition display area TA includes the second circuit 122 in p rows and q columns and the first circuit 121 in (ep) rows and (fq) columns. The display difference between the transition display area TA and the main display area ZA can be further improved, and the distance between the second circuit 122 in the transition display area TA and the second sub-pixel 112 it drives can be reduced, and the length of the connecting line between the second circuit 122 and the second sub-pixel 112 it drives can be shortened.
[0049] Optionally, in the transition display area TA, the relative positional relationship of the second circuits 122 in the circuit block 120 is the same as the relative positional relationship of the second subpixels 112 in the pixel block 110. This further reduces the distance between the second circuits 122 in the transition display area TA and the second subpixels 112 they drive, and shortens the wiring length between the second circuits 122 and the second subpixels 112 they drive.
[0050] The arrangement of the first circuits 121 in the transition display area TA may be various. In some selectable embodiments, the first circuits 121 include a plurality of row circuits 121a arranged in parallel along the row direction and a column circuit 121b arranged in parallel along the column direction, and at least a portion of the row circuits 121a and / or the column circuits 121b are used to drive the first subpixels 111. The row circuits 121a refer to a plurality of first circuits 121 arranged in the row direction, and the column circuits 121b refer to a plurality of first circuits 121 arranged in the column direction. Since the row direction and the column direction intersect, the first circuits 121 at the intersecting positions may be the row circuits 121a or the column circuits 121b.
[0051] In these alternative embodiments, the second circuit 122 is not provided in the row in which the row circuit 121a is located, and the second circuit 122 is not provided in the column in which the column circuit 121b is located. When the row circuit 121a and / or the column circuit 121b is used to drive the first subpixel 111, crosstalk between the wiring between the first subpixel 111 and the second circuit 122 and the wiring between the second subpixel 112 and the second circuit 122 can be avoided.
[0052] For example, the distribution image of the first circuits 121 has a lattice pattern and has a hollowed-out region, and the multiple second circuits 122 are located in the hollowed-out region, i.e., at least two first circuits 121 are installed at intervals, and at least some of the second circuits 122 are located between two adjacent first circuits 121, and the first circuits 121 are installed surrounding the multiple second circuits 122. In other words, the first circuits 121 are concentrated and arranged in the same row and the same column in the circuit block 120, so that the arrangement of the multiple second circuits 122 in the circuit block 120 is more concentrated.
[0053] The arrangement manner of the first display area AA1 may vary. For example, still referring to FIG. 1, the first display area AA1 includes a regular area and an irregular-shaped area located on at least one side of the regular area in the row direction, and the first sub-pixels 111 in at least some of the irregular-shaped areas are arranged in the same row as the first sub-pixels 111 in at least some of the regular areas.
[0054] 1, for example, the irregular-shaped region may include a corner region RA, which is bent to surround the second display region AA2. When the first display region AA1 includes a corner region RA, the pixel circuit 120a corresponding to the first sub-pixel 111 in the corner region RA is located in the second display region AA2, and a driving circuit such as a shift register and a driving signal line can be disposed in the corner region RA, thereby reducing the size of the bezel of the display panel 100.
[0055] Optionally, still referring to FIG. 1, the irregular region may further include a photosensitive region UDC, and the second display area AA2 is disposed surrounding at least a part of the photosensitive region UDC. When the first display area AA1 includes a photosensitive region UDC, the pixel circuit 120a corresponding to the first sub-pixel 111 in the photosensitive region UDC is located in the second display area AA2, which can improve the light transmittance of the photosensitive region UDC and is convenient for realizing the photosensitive assembly to be integrated under the screen in the photosensitive region UDC. At the same time, the photosensitive region UDC can display a screen, and the display panel 100 It improves the display area and realizes a full-screen design of the display device.
[0056] Optionally, still referring to Fig. 1, the first display area AA1 includes a bezel display area BA arranged to surround the second display area AA2, and the bezel display area BA includes an end bezel display area BA1 located on at least one side in the column direction of the second display area AA2, and a side bezel display area BA2 located on at least one side in the row direction of the second display area AA2. When the first display area AA1 includes the bezel display area BA, the pixel circuit 120a corresponding to the first sub-pixel 111 in the bezel display area BA is located in the second display area AA2, and further, a driving circuit such as a shift register and a driving signal line can be disposed in the bezel display area BA, thereby reducing the size of the bezel of the display panel 100 and realizing a narrower frame and even a borderless design of the display panel 100.
[0057] Optionally, the regular area may include the display area BA of the bezel, and the regular area may further include a part of the first display area AA1 located on at least one side of the photosensitive area UDC in the row direction. When the irregular area includes a corner area RA, the corner area RA may be connected between the display area BA1 of the adjacent end bezel and the display area BA2 of the side bezel.
[0058] The first sub-pixels 111 located in different regions can be driven by selecting different first circuits 121. In some alternative embodiments, still referring to FIG. 3, at least some of the row circuits 121a drive the first sub-pixels 111 located in the irregular-shaped region. The first sub-pixels 111 in the same row in the irregular-shaped region are driven by the row circuits 121a in the same row, so that the wiring between the first sub-pixels 111 and the row circuits 121a can be simplified. In addition, since the first sub-pixels 111 in the irregular-shaped region are driven by the row circuits 121a, it is only necessary to add row signal lines that transmit driving signals to the row circuits 121a, and there is no need to add column signal lines, so that the number of signal lines in the second display region AA2 can be reduced.
[0059] As shown in Figures 2 and 3, when the first display area AA1 includes a photosensitive area UDC, the first sub-pixels 111 in the photosensitive area UDC may be driven by a row circuit 121a. Optionally, as shown in Figure 3, the first sub-pixels 111 in each row in the first display area AA1 may be driven by different row circuits 121a, i.e., the first sub-pixels 111 in different rows are driven by different row circuits 121a. In some other embodiments, as shown in Figure 6, the first sub-pixels 111 in multiple rows in the first display area AA1 may be driven by the row circuits 121a in the same row, i.e., two or more rows of the first sub-pixels 111 may be driven by the row circuits 121a in the same row.
[0060] Optionally, when the row circuit 121a in the transition display area TA is used to drive the first sub-pixel 111 in the irregular-shaped area, a row signal line may be additionally provided in the transition display area TA to transmit a drive signal to the row circuit 121a.
[0061] 6, in some alternative embodiments, the display panel 100 further includes a first signal line 131 and a second signal line 132, where the first signal line 131 is connected to a row circuit 121a that drives the first sub-pixels 111 to transmit signals to the row circuit 121a, and the second signal line 132 is connected to a second circuit 122 to transmit signals to the second circuit 122. In these alternative embodiments, the addition of the first signal line 131 can transmit driving signals to the row circuit 121a, and the row circuit 121a can drive the first sub-pixels 111 to display.
[0062] 1, 7 and 8, Fig. 7 is a schematic diagram of the arrangement result of the sub-pixel 110a at the P position in Fig. 1, and Fig. 8 is a schematic diagram of the structure of the pixel circuit 120a at the P position in Fig. 1. In Fig. 8, the first sub-pixel 111 in the corner region RA is reserved.
[0063] As shown in Figures 7 and 8, when the first display area AA1 includes a corner area RA, the first sub-pixels 111 in the corner area RA may be driven by a row circuit 121a in the second display area AA2. As shown in Figure 8, multiple rows of first sub-pixels 111 in the corner area RA may be driven by multiple row circuits 121a. Alternatively, as shown in Figure 9, multiple rows of first sub-pixels 111 in the corner area RA may be driven by the row circuits 121a of the same row.
[0064] Optionally, the display panel 100 further includes a column signal line (not shown) extending along the column direction to transmit a driving signal to the first circuit 121 and / or the second circuit 122 provided in the same column.
[0065] Alternatively, the first signal line 131 and the second signal line 132 may be scan signal lines, and the column signal lines may be data signal lines. In another alternative embodiment, the first signal line 131 and the second signal line 132 may be data signal lines, and the column signal lines are scan signal lines.
[0066] In some optional embodiments, the display panel 100 further includes a line buffer (not shown) for storing the driving signal of the first sub-pixel 111 in the irregular region and transmitting the driving signal to the first row signal line 131 based on the driving signal of the first sub-pixel 111 in the irregular region. By adding the line buffer, the driving signal of the first sub-pixel 111 in the irregular region is stored in the line buffer, and the line buffer transmits the driving signal to the first row signal line 131, and further drives the row circuit 121a via the first row signal line 131.
[0067] Optionally, the display panel 100 includes a pixel jump reduction (PJR) processing module, which has functions of image copying and shifting, and processes the image data of the image processing according to the arrangement manner of the first sub-pixel 111 and the second sub-pixel 112, adds data corresponding to the first sub-pixel 111 to the position of the row circuit 121a for driving the first sub-pixel 111 in the image data, and stores the data in a line buffer.
[0068] Optionally, the PJR processing module is connected to a digital-to-analog conversion module for converting the image data into an analog voltage signal by the digital-to-analog conversion module.
[0069] Optionally, when a plurality of first sub-pixels 111 form a display unit emitting one white light, and two adjacent display units share one first sub-pixel 111, the first sub-pixel 111 can be driven to emit light by a first circuit 121 located in the second display area AA2 according to the light emitting needs of the display unit.
[0070] 1 and 10 to 13, Fig. 10 is a schematic diagram of the arrangement of sub-pixels 110a at location I in Fig. 1, Fig. 11 is a schematic diagram of the arrangement of pixel circuits 120a at location I in Fig. 1, and Fig. 11 reserves a first sub-pixel 111 located in a display area BA1 of an end bezel. Fig. 12 is a schematic diagram of the arrangement of sub-pixels 110a at location II in Fig. 1, and Fig. 13 is a schematic diagram of the arrangement of pixel circuits 120a at location II in Fig. 1, and Fig. 13 reserves a first sub-pixel 111 located in a display area BA2 of a side bezel.
[0071] The first sub-pixels 111 in the display area BA of the bezel are arranged in rows and columns. For example, as shown in FIG. 10, the first sub-pixels 111 in the display area BA1 of the edge bezel are arranged in a plurality of rows, and the number of the first sub-pixels 111 arranged in the same row in the display area BA1 of the edge bezel is equal to or less than the number of the row circuits 121a arranged in the same row in the transition display area TA. Therefore, the first sub-pixels 111 in the same row in the display area BA1 of the edge bezel may be driven by the row circuits 121a arranged in the same row in the transition display area TA. The original row signal line for driving the first sub-pixels 111 in the same row in the display area BA1 of the edge bezel may be used in the transition display area TA to connect to the row circuits 121a for driving the first sub-pixels 111.
[0072] 12, the first sub-pixels 111 in the display area BA2 of the side bezel are arranged in a plurality of columns, and the number of the first sub-pixels 111 provided in the same column in the display area BA2 of the side bezel is equal to or less than the number of the column circuits 121b provided in the same column in the transition display area TA. Therefore, the first sub-pixels 111 in the same column in the display area BA2 of the side bezel may be driven by the row circuits 121a provided in the same column in the transition display area TA, and the column signal lines for driving the first sub-pixels 111 in the same column in the display area BA2 of the side bezel may be used for connecting to the column circuits 121b for driving the first sub-pixels 111 in the transition display area TA.
[0073] 10 to 13, at least some of the row circuits 121a are used to drive the first sub-pixels 111 located in the display area BA1 of the end bezel, and / or at least some of the column circuits 121b are used to drive the first sub-pixels 111 located in the display area BA2 of the side bezel. There is no need to add row signal lines or column signal lines, and the wiring of the signal lines of the display panel 100 can be further simplified.
[0074] The above is the installation method of how the first sub-pixel 111 is driven by the first circuit 121 in the transition display area TA when the installation method of the circuit block 120 in the transition display area TA and the installation method of the circuit block 120 in the main display area ZA are the same.
[0075] In another alternative embodiment, the layout of the circuit blocks 120 in the transition display area TA may be different from the layout of the circuit blocks 120 in the main display area ZA.
[0076] Referring to FIG. 14, FIG. 14 is a schematic diagram of a pixel array structure in another embodiment at part I in FIG.
[0077] Optionally, as shown in Fig. 14, all of the first circuits 121 in the transition display area TA are located closer to the first subpixels 111 of the second circuits 122. In these optional embodiments, the first circuits 121 in the transition display area TA are located closer to the first display area AA1, which can reduce the distance between the first circuits 121 and the first subpixels 111 driven by them.
[0078] Optionally, the positional relationship between the second circuit 122 for driving the second subpixel 112 in the transition display area TA and the first circuit 121 for driving the first subpixel 111 in the transition display area TA is the same as the positional relationship between the second subpixel 112 in the transition display area TA and the first subpixel 111 in the first display area AA1. This makes it possible to reduce the distance between the second circuit 122 and the second subpixel 112 it drives in the transition display area TA, and the distance between the first circuit 121 and the first subpixel 111 it drives, and also to simplify the wiring of the signal lines by avoiding intersections between the signal lines connecting the first circuit 121 and the first subpixel 111 and the signal lines connecting the second circuit 122 and the second subpixel 112.
[0079] Also, in these alternative embodiments, there is no need to add row signal lines or column signal lines, and a signal line for driving a first subpixel 111 can be connected to a first circuit 121 that drives the first subpixel 111. The first circuits 121 in the transition display area TA are arranged according to the arrangement manner of the first subpixels 111 they drive, and the first circuits 121 are sequentially connected to the first subpixels 111 according to a relay manner, which not only tends to make the lengths of the signal lines for connecting the first circuits 121 and the first subpixels 111 consistent, but also prevents the signal lines from crossing each other.
[0080] FIG. 14 shows only the connection relationship between the first sub-pixel 111 and the first circuit 121 in the display area BA1 of the end bezel.
[0081] In another embodiment, the first display area AA1 may further include a corner area RA, a photosensitive area UDC and a display area BA2 with a side bezel, and a first circuit 121 for driving the first sub-pixel 111 in the display area BA2 with the corner area RA, the photosensitive area UDC and the side bezel is located on a side of the second circuit 122 closer to the display area BA2 with the corner area RA, the photosensitive area UDC and the side bezel. That is, the first sub-pixel 111 in the display area BA2 of the corner area RA, the photosensitive area UDC and the side bezel and the first circuit 121 in the transition display area TA may be connected to each other in a relay manner, and the relative positional relationship between the first sub-pixel 111 in the display area BA2 of the corner area RA, the photosensitive area UDC and the side bezel and the second sub-pixel 112 in the transition display area TA is the same as the relative positional relationship between the first circuit 121 and the second circuit 122 for driving the first sub-pixel 111 in the display area BA2 of the corner area RA, the photosensitive area UDC and the side bezel in the transition display area TA.
[0082] Referring to FIG. 15, FIG. 15 is a cross-sectional view of a portion CC in FIG.
[0083] In some optional embodiments, as shown in FIG. 15, the display panel 100 further includes a signal line layer 103 including a first connecting signal line 133 for connecting the first circuit 121 and the first subpixel 111.
[0084] In these alternative embodiments, the signal line layer 103 is provided to avoid crosstalk between the first connecting signal line 133 and other signal lines.
[0085] Optionally, still referring to FIG. 15, the display panel 100 further includes a substrate 101, an array substrate disposed on the substrate 101, and a pixel definition layer 102, and the pixel circuit 120a is disposed on the array substrate. The pixel definition layer 102 includes a first pixel opening K1 located in the first display area AA1 and a second pixel opening K2 located in the second display area AA2. The first sub-pixel 111 includes a first light emitting structure 111b located in the first pixel opening K1, a first electrode 111a located on a side of the first light emitting structure 111b facing the array substrate, and a second electrode 111c located on a side of the first light emitting structure 111b facing away from the array substrate. The second subpixel 112 includes a second light emitting structure 121b located within the second pixel aperture K2, a third electrode 121a located on a side of the second light emitting structure 121b facing the array substrate, and a fourth electrode 121c located on a side of the second light emitting structure 121b facing away from the array substrate. The first electrode 111a and the third electrode 121a are, for example, pixel electrodes, and the second electrode 111c and the fourth electrode 121c may be connected to each other to form a common electrode.
[0086] Optionally, the signal line layer 103 may be located between the array substrate and the light emitting layer. The array substrate may include a first metal layer, a second metal layer and a third metal layer, and the pixel circuit 120a includes a thin film transistor (TFT), which is divided into a switching thin film transistor and a driving thin film transistor. The thin film transistor (TFT) may include a semiconductor layer, a gate and a source-drain electrode, and the gate may be located in the first metal layer and the source-drain electrode may be located in the third metal layer. One plate of a capacitor may be provided on the second metal layer, and the other plate of the capacitor may be located on the first metal layer or the third metal layer.
[0087] Optionally, the row signal line is a scan line, and the row signal line is located in the first metal layer and connected to the gate of the switching thin film transistor. Optionally, the display panel 100 further includes a column signal line, and the column signal line is located in the third metal layer as a data line, and the column signal line is connected to one of the source-drain electrodes of the switching thin film transistor.
[0088] Optionally, the source-drain electrodes of the driving thin film transistors of some of the first circuits 121 are connected to the first electrodes 111 a of the first sub-pixels 111 via the first connecting signal lines 133 .
[0089] In some alternative embodiments, still referring to FIG. 14, at least some of the first connection signal lines 133 are formed to extend along the second direction Y, and the portions of the first connection signal lines 133 extending along the second direction Y are located in the same film layer. The arrangement size of the first connection signal lines 133 in the first direction X is m, the arrangement size of the first sub-pixels 111 adjacent to the second display area AA2 along the second direction Y in the first direction X is n, and 2k first sub-pixels 111 are arranged in the first display area AA1 in the second direction Y, where m and n satisfy n=km+d, k is a positive integer, d is a positive integer smaller than m, and d is a redundant amount of the pitch of the signal lines. One of the first direction X and the second direction Y is a row direction, and the other is a column direction. Referring to FIG. 14, the embodiment of the present application will be described by taking an example in which the first direction X is the row direction and the second direction Y is the column direction.
[0090] The array size of the first connection signal lines 133 in the first direction X includes the extension size of the first connection signal lines 133 themselves in the first direction X, and also includes the space size between two adjacent first connection signal lines 133 along the first direction X. The array size of the first subpixels 111 in the first direction X is the same as the average array size of the first subpixels 111 in the first direction X. For example, i first subpixels 111 are arranged in the first direction X, the size that the i first subpixels 111 occupy in the first direction X is j, and the array size n of the first subpixels 111 is equal to j / i.
[0091] In these alternative embodiments, for example, a first sub-pixel 111 adjacent to the second display area AA2 along the second direction Y is an adjacent first sub-pixel 111', as shown in Fig. 14. Any first connection signal line 133 connected to a first sub-pixel 111 located on a side of the adjacent first sub-pixel 111' away from the second display area AA2 must pass through the adjacent first sub-pixel 111', and the extension size of the adjacent first sub-pixel 111' in the first direction X is finite. Then, the quantity of first sub-pixels 111 arranged in the second direction Y of the first display area AA1 is related to the size of the adjacent first sub-pixel 111', i.e., n=km+d. When the number of first sub-pixels 111 arranged in the second direction Y of the first display area AA1 satisfies the above relational expression, signal crosstalk caused by adjacent first connection signal lines 133 being too close to each other in the first direction X or overlapping each other can be avoided.
[0092] Optionally, when the first display area AA1 includes an end bezel display area BA1, when the two end bezel display areas BA1 are provided on either side of the second display area AA2, k first sub-pixels 111 are arranged in the second direction Y in the display area BA1 of one end bezel. The extension size of the end bezel display area BA1 in the second direction Y is equal to or smaller than the arrangement size of the k first sub-pixels 111 along the second direction Y.
[0093] When the first display area AA1 is the display area BA2 of the side bezel, the first direction X is the column direction, the second direction Y is the row direction, and the display areas BA2 of the two side bezels are provided on both sides of the second display area AA2, respectively. Then, in the display area BA2 of one side bezel, k first sub-pixels 111 are arranged in the first direction X, and the extension size of the display area BA2 of the side bezel in the first direction X is equal to or smaller than the arrangement size along the first direction X of the k first sub-pixels 111.
[0094] Optionally, when the first display area AA1 is a photosensitive area UDC and the photosensitive area UDC is circular, the radius of the photosensitive area UDC is equal to or smaller than the arrangement size of the k first sub-pixels 111 along the row direction.
[0095] For example, if the arrangement size in the column direction of the first connection signal line 133 is 5 μm and the arrangement size in the column direction of the adjacent first subpixel 111 is 61.7 μm, the number of first connection signal lines 133 that can be arranged in the adjacent first subpixels 111 is 11 or less, and the extension size in the row direction of the first display area AA1 is less than the arrangement size in the row direction of the 11 first subpixels 111.
[0096] In some optional embodiments, still referring to FIG. 14 , the first connecting signal line 133 includes a first segment 133a and a second segment 133b extending along different directions, and the first segment 133a and the second segment 133b are located in different film layers to improve the risk of short-circuit connection of different first connecting signal lines 133.
[0097] In some optional embodiments, the signal line layer 103 further includes a second connecting signal line 134 for connecting the second circuit 122 and the second sub-pixel 112. By arranging the first connecting signal line 133 and the second connecting signal line 134 in the same layer, the thickness of the display panel 100 can be reduced.
[0098] In some optional embodiments, multiple first circuits 121 for driving first subpixels 111 in the same row may be located in the same row, such that multiple first circuits 121 for driving first subpixels 111 in the same row are connected to the same first row signal line 131.
[0099] Optionally, the first circuits 121 in the same row drive two or more rows of first sub-pixels 111. For example, when the first display area AA1 includes an irregular-shaped area, a row circuit 121a close to the irregular-shaped area in the transition display area TA can be used to drive two or more rows of first sub-pixels 111 in the irregular-shaped area, thereby reducing the distance between the first circuits 121 and the first sub-pixels 111 they drive.
[0100] As described above, the present application provides the pixel circuits 120a in the second display area AA2 without changing the arrangement of the original sub-pixels 110a, thereby securing the first display area AA1, and improving the light transmittance of the first display area AA1, or providing other driving circuits and driving signal lines in the first display area AA1, thereby reducing the bezel size of the display panel 100. In the present application, the arrangement manner of the circuit blocks 120 and the pixel blocks 110 in the second display area AA2 is the same, ensuring that the display effects at different positions in the second display area AA2 are uniform.
[0101] The embodiment of the present application further provides two kinds of pixel circuit 120a arrangement methods and their methods for driving the first sub-pixel 111 to display.
[0102] In the first embodiment, the circuit block 120 in the transition display area TA and the circuit block 120 in the main display area ZA are installed in the same manner, the row circuit 121a in the transition display area TA is used to drive the first sub-pixel 111 in the irregular area, and a first row signal line 131 and a line buffer are added to transmit a driving signal to the row circuit 121a in the transition display area TA. This embodiment ensures that the distances between the second circuits 122 in the transition display area TA and the main display area ZA and the second sub-pixels 112 they drive are short, while only one type of row signal line is added to drive the first sub-pixels 111, thereby simplifying the wiring of the display panel 100.
[0103] In the second embodiment, the pixel block 110 and the circuit block 120 in the main display area ZA are arranged correspondingly along the thickness direction, so that the distance between the second circuit 122 in the main display area ZA and the second sub-pixel 112 driven by it can be reduced. The arrangement manner of the first circuit 121 and the second circuit 122 in the transition display area TA is the same as the arrangement manner of the second sub-pixel 112 in the transition display area TA and the first sub-pixel 111 in the first display area AA1, the circuit block 120 in which the second circuit 122 in the transition display area TA is located is offset from the pixel block 110 in which the second sub-pixel 112 driven by the second circuit 122 is located, and the multiple first circuits 121 are sequentially connected to the first sub-pixels 111 in a relay manner, which not only tends to make the lengths of the multiple signal lines connecting the first circuit 121 and the first sub-pixels 111 consistent, but also avoids the multiple signal lines from crossing each other.
[0104] Therefore, in the embodiment of the present application, by reducing the sizes of the first circuit 121 and the second circuit 122, the number of pixel circuits 120a provided in the same area can be made greater than the number of subpixels 110a, and the pixel circuits 120a for driving the first subpixels 111 can be arranged in the second display area AA2. Furthermore, the width of the first display area AA1 is related to the number of first connection signal lines 133 that can be accommodated within the array size of adjacent first subpixels 111, that is, the number 2k of first subpixels 111 provided in the same row of the first display area AA1 satisfies n=km+d between the array size n of the adjacent first subpixels 111 in the row direction and the array size m of the first connection signal lines 133 in the row direction.
[0105] In some embodiments, the circuit configuration of the first circuit 121 is either a 2T1C circuit, a 7T1C circuit, a 7T2C circuit, or a 9T1C circuit. In this specification, a "2T1C circuit" refers to a pixel driving circuit that includes two thin film transistors (T) and one capacitor (C) in the pixel driving circuit, and other "7T1C circuit", "7T2C circuit", "9T1C circuit", etc. are inferred in order.
[0106] Optionally, the circuit structure of the second circuit 122 is any one of a 2T1C circuit, a 7T1C circuit, a 7T2C circuit, or a 9T1C circuit.
[0107] Optionally, the size of the first subpixel 111 is smaller than the size of the second subpixel 112 of the same color, so that the space occupied by the first subpixel 111 in the first display area AA1 can be reduced, the area of the non-emissive area in the first display area AA1 can be increased, and the light transmittance of the first display area AA1 can be easily improved.
[0108] In some optional embodiments, the first sub-pixels 111 and the first circuits 121 are provided in one-to-one correspondence with each other, and each first sub-pixel 111 is driven by a corresponding first circuit 121, so that the display effect of the display panel 100 can be improved.
[0109] Optionally, to facilitate wiring of the display panel 100, two or more adjacent first sub-pixels 111 of the same color are connected to the same first circuit 121.
[0110] Optionally, as described above, the first sub-pixel 111 includes a first light-emitting structure 111b, a first electrode 111a, and a second electrode 111c. The second sub-pixel 112 includes a second light-emitting structure 121b, a third electrode 121a, and a fourth electrode 121c. In this embodiment, the first electrode 111a and the third electrode 121a are anodes, and the second electrode 111c and the fourth electrode 121c are cathodes.
[0111] The first light-emitting structure 111b and the second light-emitting structure 121b may each include an OLED light-emitting layer, and may each include at least one of a hole injection layer, a hole transport layer, an electron injection layer, or an electron transport layer according to design needs of the first light-emitting structure 111b and the second light-emitting structure 121b.
[0112] In some embodiments, the first electrode 111a is a light-transmitting electrode. In some embodiments, the first electrode 111a includes an indium tin oxide (ITO) layer or an indium zinc oxide layer. In some embodiments, the first electrode 111a is a reflective electrode and includes a first light-transmitting conductive layer, a reflective layer located on the first light-transmitting conductive layer, and a second light-transmitting conductive layer located on the reflective layer. Here, the first light-transmitting conductive layer and the second light-transmitting conductive layer may be ITO, indium zinc oxide, etc., and the reflective layer may be a metal layer, for example, made of a silver material. The third electrode 121a may be disposed to be the same material as the first electrode 111a.
[0113] In some embodiments, the second electrode 111c includes a magnesium silver alloy layer. The fourth electrode 121c can be disposed to be of the same material as the second electrode 111c.
[0114] In some embodiments, the orthogonal projection of each first light emitting structure 111b on the substrate 101 consists of one first pattern unit or two or more first pattern units joined together, and the first pattern units include at least one selected from the group consisting of a circle, an ellipse, a dumbbell, a gourd, and a rectangle.
[0115] In some embodiments, the orthogonal projection of each first electrode 111a on the substrate 101 consists of one second pattern unit or two or more second pattern units joined together, the second pattern units including at least one selected from the group consisting of a circle, an ellipse, a dumbbell, a gourd, and a rectangle.
[0116] In some embodiments, the orthogonal projection of each second light-emitting structure 121b on the substrate 101 consists of one third pattern unit or two or more third pattern units connected together, and the third pattern unit includes at least one selected from the group consisting of a circle, an ellipse, a dumbbell, a gourd, and a rectangle.
[0117] In some embodiments, the orthogonal projection of each third electrode 121a on the substrate 101 consists of one fourth pattern unit or two or more fourth pattern units connected together, and the fourth pattern units include at least one selected from the group consisting of a circle, an ellipse, a dumbbell shape, a gourd shape, and a rectangle.
[0118] For example, the display panel 100 may further include an encapsulating layer, and a polarizer and a cover plate located above the encapsulating layer, or the cover plate may be directly installed above the encapsulating layer without the need to install a polarizer, or at least the cover plate may be directly installed above the encapsulating layer of the first display area AA1 without the need to install a polarizer, to avoid the polarizer affecting the light collection amount of the photosensitive assembly installed below the corresponding first display area AA1, and of course, the polarizer may be installed above the encapsulating layer of the first display area AA1.
[0119] An embodiment of the second aspect of the present application further provides a display device including the display panel 100 of any one of the embodiments of the first aspect described above. Since the display device according to the embodiment of the second aspect of the present application includes the display panel 100 of any one of the embodiments of the first aspect described above, the display device according to the embodiment of the second aspect of the present application has beneficial effects possessed by the display panel 100 of any one of the embodiments of the first aspect described above, and description thereof will be omitted here.
[0120] The display device in the embodiments of the present application includes, but is not limited to, devices with display capabilities such as mobile phones, personal digital assistants (abbreviated as PDAs), tablet computers, e-books, televisions, door access, smart landlines, and consoles.
Claims
1. A display panel having a first display area and a second display area, A plurality of pixel blocks each including a plurality of sub-pixels, and a plurality of circuit blocks; Each of the pixel blocks includes a number of sub-pixels among the plurality of sub-pixels, the plurality of sub-pixels including a first sub-pixel located in the first display region and a second sub-pixel located in the second display region; the plurality of circuit blocks are located only in the second display area, each of the circuit blocks includes b pixel circuits, the b pixel circuits include a first circuit and a second circuit, at least a part of the first circuits are used to drive the first sub-pixels, and the second circuits are used to drive the second sub-pixels; wherein a and b are both positive integers greater than 0 and a is smaller than b, and within the second display region, an orthogonal projection of each circuit block along a thickness direction of the display panel is located within an orthogonal projection of each pixel block along the thickness direction. Display panel.
2. In the second display region, an orthogonal projection of each of the circuit blocks along the thickness direction overlaps with an orthogonal projection of each of the pixel blocks along the thickness direction; or A plurality of the first circuits for driving the first sub-pixels in a same row are located in the same row, and / or the first circuits in a same row drive the first sub-pixels in more than one row, or a signal line layer including a first connecting signal line for connecting the first circuit and the first sub-pixel, the first connecting signal line including a first segment and a second segment extending along different directions, the first segment and the second segment being located in different film layers; The display panel according to claim 1 .
3. The pixel block includes a plurality of the sub-pixels arranged in p rows and q columns, where the product of p and q is a; the circuit block includes a plurality of the pixel circuits arranged in e rows and f columns, a product of e and f is b, p, q, e, and f are all positive integers greater than 1, and e≧p, f≧q; The display panel according to claim 1 .
4. p and q are equal, e and f are equal, and e is greater than p, The display panel according to claim 3 .
5. the second display area includes a main display area and a transition display area, the transition display area is located between the main display area and the first display area, and the first circuit, at least a portion of which is located in the transition display area, is used to drive the first sub-pixel; Each of the circuit blocks in the main display area is located within an orthogonal projection of each of the pixel blocks it drives, and each of the circuit blocks in the main display area includes the second circuit in p rows and q columns, and the first circuit in (e-p) rows and (f-q) columns; a relative positional relationship between the second circuits in the circuit block and a relative positional relationship between the second sub-pixels in the pixel block in the main display area; The display panel according to claim 3 .
6. the second display area includes a main display area and a transition display area, the transition display area is located between the main display area and the first display area, and the first circuit, at least a portion of which is located in the transition display area, is used to drive the first sub-pixel; Each of the circuit blocks in the main display area is located within an orthogonal projection of each of the pixel blocks it drives, and each of the circuit blocks in the main display area includes the second circuit in p rows and q columns, and the first circuit in (e-p) rows and (f-q) columns; Each of the circuit blocks in the transition display area is located within an orthogonal projection of each of the pixel blocks it drives, and the circuit block in the transition display area includes the second circuit in p rows and q columns, and the first circuit in (e-p) rows and (f-q) columns; a relative positional relationship between the second circuits in the circuit block and a relative positional relationship between the second sub-pixels in the pixel block in the transition display area; The display panel according to claim 3 .
7. the second display area includes a main display area and a transition display area, the transition display area is located between the main display area and the first display area, and the first circuit, at least a portion of which is located in the transition display area, is used to drive the first sub-pixel; Each of the circuit blocks in the main display area is located within an orthogonal projection of each of the pixel blocks it drives, and each of the circuit blocks in the main display area includes the second circuit in p rows and q columns, and the first circuit in (e-p) rows and (f-q) columns; Each of the circuit blocks in the transition display area is located within an orthogonal projection of each of the pixel blocks it drives, and the circuit block in the transition display area includes the second circuit in p rows and q columns, and the first circuit in (e-p) rows and (f-q) columns; the first circuit includes a plurality of row circuits arranged in parallel along a row direction and a column circuit arranged in parallel along a column direction, and at least a portion of the row circuits and / or the column circuits are used to drive the first sub-pixels; The display panel according to claim 3 .
8. the first display region includes a rectangular region and an irregular-shaped region located on at least one side of the rectangular region in a row direction, the first sub-pixels in at least a portion of the irregular-shaped regions are arranged in the same row as the first sub-pixels in at least a portion of the rectangular regions, and at least a portion of the row circuits are used to drive the first sub-pixels in the irregular-shaped regions; a first row signal line connected to the row circuit driving the first sub-pixel and for transmitting a signal to the row circuit; a second row signal line connected to the second circuit and for transmitting a signal to the second circuit; and storing a drive signal for the first sub-pixel in the irregular region; and a line buffer for transmitting a driving signal to the first row signal line based on a driving signal of the first sub-pixel in the irregular region. The display panel according to claim 7.
9. the second display area includes a main display area and a transition display area, the transition display area is located between the main display area and the first display area, and the first circuit, at least a portion of which is located in the transition display area, is used to drive the first sub-pixel; Each of the circuit blocks in the main display area is located within an orthogonal projection of each of the pixel blocks it drives, and each of the circuit blocks in the main display area includes the second circuit in p rows and q columns, and the first circuit in (e-p) rows and (f-q) columns; Each of the circuit blocks in the transition display area has a positive polarity for each of the pixel blocks that it drives. Located within the projection, the circuit block of the transition display area includes the second circuit in p rows and q columns and the first circuit in (e-p) rows and (f-q) columns; the first circuit includes a plurality of row circuits arranged in parallel along a row direction and a column circuit arranged in parallel along a column direction, the first display area includes a bezel display area, the bezel display area is provided to surround the second display area, and the bezel display area includes an end bezel display area located on at least one side of the second display area in the column direction and a side bezel display area located on at least one side of the second display area in the row direction, At least some of the row circuits drive the first sub-pixels located within a display area of the edge bezel; and / or at least some of the column circuits drive the first sub-pixels located within a display area of the side bezel. The display panel according to claim 3 .
10. the second display area includes a main display area and a transition display area, the transition display area is located between the main display area and the first display area, and the first circuit, at least a portion of which is located in the transition display area, is used to drive the first sub-pixel; Each of the circuit blocks in the main display area is located within an orthogonal projection of each of the pixel blocks it drives, and each of the circuit blocks in the main display area includes the second circuit in p rows and q columns, and the first circuit in (e-p) rows and (f-q) columns; the first circuits in the transition display area are all located on a side of the second circuits closer to the first sub-pixels, a positional relationship between the second circuit for driving the second sub-pixel in the transition display region and the first circuit for driving the first sub-pixel in the transition display region is the same as a positional relationship between the second sub-pixel in the transition display region and the first sub-pixel in the first display region; The display panel according to claim 3 .
11. A display panel comprising the display panel according to any one of claims 1 to 10. Display device.
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