Display boards and display devices
The display substrate addresses low light transmittance in OLED screens by employing Real GRB and GGRB pixel arrangements and light-shielding layers, enhancing imaging quality for under-screen cameras.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- BOE TECHNOLOGY GROUP CO LTD
- Filing Date
- 2021-05-17
- Publication Date
- 2026-04-28
AI Technical Summary
The low light transmittance of OLED screens poses a challenge for under-screen camera designs, adversely affecting imaging quality.
A display substrate with a first display area of reduced subpixel density and a second display area of higher resolution, employing Real GRB and GGRB pixel arrangements, along with light-shielding layers to enhance light transmittance and maintain high display quality.
The solution increases light transmittance in the first area for under-screen components while maintaining high resolution and longevity of the second area, ensuring improved imaging quality.
Smart Images

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Abstract
Description
Technical Field
[0001] This application claims the priority of Chinese Patent Application No. 202010617909.7 filed on June 30, 2020, the entire content of which is hereby incorporated by reference as part of this application.
[0002] Embodiments of the present disclosure relate to a display substrate and a display device.
Background Art
[0003] With the development of display technology, organic light-emitting diode (OLED) display technology is increasingly applied to various electronic products due to its advantages such as self-emission, wide viewing angle, high contrast, low power consumption, and high response speed.
[0004] On the other hand, with the development of organic light-emitting diode display technology, people's requirements for the screen occupancy rate of electronic products are also increasing. Therefore, the design of installing some functional components of electronic products under the screen has become a new research hotspot. For example, the camera of an electronic product can be installed under the screen, that is, the design of an under-screen camera.
Summary of the Invention
Means for Solving the Problems
[0005] Embodiments of this disclosure provide a display substrate and a display device. The display substrate includes a base substrate comprising a first display area and a second display area, the second display area at least locally surrounding the first display area, and a plurality of subpixels located on the base substrate and located in the first display area and the second display area, wherein the density of subpixels in the first display area is less than the density of subpixels in the second display area, each subpixel includes a pixel circuit, the plurality of subpixels includes a first subpixel, a second subpixel and a third subpixel, the plurality of subpixels includes a plurality of first pixel groups and a plurality of second pixel groups, the plurality of first pixel groups are located in the first display area and a plurality of second pixels The pixel groups are located in the second display area, the first display area includes a plurality of sub-display areas and sub-light-transmitting areas located between the plurality of sub-display areas, the plurality of first pixel groups are arranged in a one-to-one correspondence with the plurality of sub-display areas, each first pixel group includes one first subpixel, one second subpixel, and one third subpixel arranged sequentially along the first direction, each second pixel group includes one first subpixel, one pair of second subpixels, and one third subpixel arranged along the first direction, and the pair of second subpixels includes two second subpixels arranged along the second direction. The display substrate employs a Real GRB pixel arrangement method in the first display area and a GGRB pixel arrangement method in the second display area. On the one hand, the display substrate can increase the light transmittance of the first display area by reducing the resolution or PPI (Pixels Per Inch) of the first display area. On the other hand, the second display area of the display substrate has high resolution and display effect. Furthermore, because the first display area employs the Real GRB pixel arrangement method, the second subpixel in the first pixel group has a large light-emitting area, resulting in a long service life.
[0006] At least one embodiment of the present disclosure provides a display substrate comprising a base substrate including a first display area and a second display area, wherein the second display area at least locally surrounds the first display area, and a plurality of subpixels located on the base substrate and located in the first display area and the second display area, wherein the density of the subpixels in the first display area is less than the density of the subpixels in the second display area, each subpixel includes a pixel circuit, the plurality of subpixels includes a first subpixel, a second subpixel and a third subpixel, the plurality of subpixels includes a plurality of first pixel groups and a plurality of second pixel groups, and the plurality of first pixel groups are located in the first display area. The plurality of second pixel groups are located in the second display area, the first display area includes a plurality of sub-display areas and sub-light-transmitting areas located between the plurality of sub-display areas, the plurality of first pixel groups are arranged in one-to-one correspondence with the plurality of sub-display areas, each first pixel group includes one first subpixel, one second subpixel and one third subpixel arranged sequentially along a first direction, each second pixel group includes one first subpixel, one pair of second subpixels and one third subpixel arranged along the first direction, and the pair of second subpixels includes two second subpixels arranged along a second direction.
[0007] For example, a display substrate according to one embodiment of the present disclosure further includes a plurality of first light-shielding layers, each installed in a one-to-one correspondence with the plurality of sub-display areas and located on the side of the first pixel group corresponding to the base substrate, and a second light-shielding layer located in the second display area and on the side of the plurality of second pixel groups adjacent to the base substrate.
[0008] For example, in a display substrate according to one embodiment of the present disclosure, each subpixel further includes a power line extending along the second direction, the power line being connected to the pixel circuit and configured to apply a constant voltage to the pixel circuit, the power line of at least one subpixel in each first pixel group being electrically connected to the corresponding first light-shielding layer, and the power line of at least one subpixel in each second pixel group being electrically connected to the second light-shielding layer.
[0009] For example, in a display substrate according to one embodiment of the present disclosure, the power lines of the first subpixel in each first pixel group are electrically connected to the corresponding first light-shielding layer, and the power lines of the first subpixel, second subpixel, and third subpixel in each second pixel group are all electrically connected to the corresponding second light-shielding layer.
[0010] For example, in a display substrate according to one embodiment of the present disclosure, each sub-display area includes three unit areas, the first sub-pixel, the second sub-pixel, and the third sub-pixel in the first pixel group are each installed within the three unit areas, a first spacing area is installed between adjacent first pixel groups in the first direction, the first spacing area includes one unit area, a second spacing area is installed between adjacent first pixel groups in the second direction, the second spacing area includes three unit areas installed along the first direction, and the sub-light-transmitting area includes the first spacing area and the second spacing area.
[0011] For example, in a display board according to one embodiment of the present disclosure, the power lines of the second subpixels in each first pixel group are connected to the power lines of the second subpixels in adjacent first pixel groups in the second direction, passing through the second spacing region, and the power lines of the first subpixels and the third subpixels in each first pixel group are isolated from the power lines of the first subpixels and the third subpixels in adjacent first pixel groups in the second direction.
[0012] For example, in a display board according to one embodiment of the present disclosure, the pixel circuit of the subpixel in each first pixel group includes a first initialization signal line, a first reset signal line, a gate line, a transmit control line, a second initialization signal line, and a second reset signal line extending along the first direction, and in each first pixel group, the first initialization signal line of the first subpixel, the second initialization signal line of the second subpixel, and the second initialization signal line of the third subpixel are connected, and in each first pixel group, the first reset signal line of the first subpixel, the first reset signal line of the second subpixel, and the first reset signal line of the third subpixel are connected, and in each first pixel group The gate line of the first subpixel, the gate line of the second subpixel, and the gate line of the third subpixel are connected, and in each first pixel group, the transmit control line of the first subpixel, the transmit control line of the second subpixel, and the transmit control line of the third subpixel are connected, and in each first pixel group, the second initialization signal line of the first subpixel, the second initialization signal line of the second subpixel, and the second initialization signal line of the third subpixel are connected, and in each first pixel group, the second reset signal line of the first subpixel, the second reset signal line of the second subpixel, and the second reset signal line of the third subpixel are connected.
[0013] For example, in a display substrate according to one embodiment of the present disclosure, the power lines of the first subpixel in each first pixel group are electrically connected to the corresponding first light-shielding layer via a first light-shielding layer through-hole, the power lines of the first subpixel, second subpixel, and third subpixel in each second pixel group are electrically connected to the second light-shielding layer via a second light-shielding layer through-hole, and the orthographic projection of the first light-shielding layer through-hole on the base substrate is located on the side of the second reset signal line away from the transmit signal line.
[0014] For example, in a display substrate according to one embodiment of the present disclosure, one of the first pixel groups includes only one of the first light-shielding layer through-holes.
[0015] For example, in a display board according to one embodiment of the present disclosure, the pixel circuit of the first subpixel includes a wiring area on which the first initialization signal line, the first reset signal line, the gate line, the transmission control line, the second initialization signal line, and the second reset signal line are installed, and a through-hole area located on the side of the wiring area adjacent to the second spacing area, on which the first light-shielding layer through-hole is installed.
[0016] For example, in a display board according to one embodiment of the present disclosure, the pixel circuit of the subpixel in the second pixel group includes a first initialization signal line, a first reset signal line, a gate line, and a transmit control line extending along the first direction, and the extensions of the second initialization signal line and the second reset signal line of the first subpixel in the first pixel group are located between the first transmit control line of the first subpixel in the second pixel group of the same row and the first reset signal line of the first subpixel in the second pixel group of the next row.
[0017] For example, in a display board according to one embodiment of the present disclosure, the first initialization signal line of the third subpixel in each first pixel group is connected by a first connection line to the first initialization signal line of the first subpixel in the adjacent first pixel group in the first direction, the first reset signal line of the third subpixel in each first pixel group is connected by a second connection line to the first reset signal line of the first subpixel in the adjacent first pixel group in the first direction, the gate line and the second reset signal line of the third subpixel in each first pixel group are connected by a third connection line, and the third connection line is connected in the first direction The gate line and the second reset signal line of the first subpixel in the adjacent first pixel group are connected, the transmit control line of the third subpixel in each first pixel group is connected by a fourth connection line to the transmit control line of the first subpixel in the first adjacent first pixel group in the first direction, the second initialization signal line of the third subpixel in each first pixel group is connected by a fifth connection line to the second initialization signal line of the first subpixel in the first adjacent first pixel group in the first direction, and the first, second, third, fourth, and fifth connection lines converge into the first spacing region.
[0018] For example, in a display board according to one embodiment of the present disclosure, the first connection line, the third connection line, and the fifth connection line are installed on the same layer as the power line, and on a different layer from the first initialization signal line, the gate line, and the second initialization signal line.
[0019] For example, in a display board according to one embodiment of the present disclosure, the second connection line is installed in the same layer as the first reset signal line and integrally molded, and the fourth connection line is installed in the same layer as the transmission control line and integrally molded.
[0020] For example, in a display board according to one embodiment of the present disclosure, the first connection line, the second connection line, the third connection line, the fourth connection line, and the fifth connection line are sequentially installed in the second direction.
[0021] For example, in a display substrate according to one embodiment of the present disclosure, the pixel circuit further includes data lines extending along the second direction, wherein the data lines of the first subpixel in each first pixel group are connected by a sixth connection line to the data lines of the first subpixel in an adjacent first pixel group in the second direction, the data lines of the second subpixel in each first pixel group are connected by a seventh connection line to the data lines of the second subpixel in an adjacent first pixel group in the second direction, the data lines of the third subpixel in each first pixel group are connected by an eighth connection line to the data lines of the third subpixel in an adjacent first pixel group in the second direction, and the sixth, seventh, and eighth connection lines converge into the second spacing region.
[0022] For example, in a display board according to one embodiment of the present disclosure, the sixth connection line is installed in the same layer as the first initialization signal line and in a different layer from the data line, the seventh connection line is installed in the same layer as the data line and integrally molded with it, and the eighth connection line is installed in the same layer as the first reset signal line and in a different layer from the data line.
[0023] For example, in a display board according to one embodiment of the present disclosure, the sixth connection line, the seventh connection line, and the eighth connection line are installed sequentially in the first direction.
[0024] For example, in the display substrate according to the embodiment of the present disclosure, the sub-pixels are not installed in the sub-light transmission region.
[0025] For example, in a display substrate according to one embodiment of the present disclosure, the first direction is substantially perpendicular to the second direction.
[0026] For example, in a display substrate according to one embodiment of the present disclosure, the first subpixel is configured to emit light of a first color, the second subpixel is configured to emit light of a second color, and the third subpixel is configured to emit light of a third color.
[0027] For example, in a display substrate according to an embodiment of the present disclosure, the first color is red, the second color is green, and the third color is blue.
[0028] At least one embodiment of the present disclosure further provides a display device including the above display substrate.
[0029] For example, a display device according to an embodiment of the present disclosure further includes a photosensitive functional element located on a side close to the base substrate of the plurality of sub-pixels, and a positive projection of the photosensitive functional element on the base substrate at least partially overlaps with the first display region.
Brief Description of the Drawings
[0030] To more clearly illustrate the technical solutions of the embodiments of the present disclosure, the drawings of the embodiments are briefly introduced below. Obviously, the drawings in the following description do not limit the present disclosure, but are only related to some embodiments of the present disclosure.
[0031] [Figure 1] It is a plan schematic diagram of a display substrate according to an embodiment of the present disclosure. [Figure 2] It is a plan schematic diagram of another display substrate according to an embodiment of the present disclosure. [Figure 3] It is a cross-sectional schematic diagram along the AA direction in FIG. 2 of a display substrate according to an embodiment of the present disclosure. [Figure 4] It is a partial plan schematic diagram of another display substrate according to an embodiment of the present disclosure. [Figure 5] It is a partial plan schematic diagram of a display substrate according to an embodiment of the present disclosure. [Figure 6] It is an enlarged schematic diagram of the first pixel group in FIG. 5. [Figure 7] It is a schematic diagram of a display device according to an embodiment of the present disclosure.
Modes for Carrying Out the Invention
[0032] To further clarify the purpose, technical proposal and merits of this disclosure, the technical proposal of the embodiments of this disclosure will be clearly and completely described below with reference to the drawings of the embodiments of this disclosure. As is obvious, the embodiments described are some, but not all, embodiments of this disclosure. Any other embodiments that a person skilled in the art could obtain without creative work based on the embodiments of this disclosure described are all within the scope of protection of this disclosure.
[0033] Unless otherwise defined, technical or scientific terms used in this disclosure are in the ordinary sense understood by those skilled in the art. The terms “first,” “second,” and similar terms used in this disclosure do not indicate any order, quantity, or importance, but are merely used to distinguish different components. Similar terms such as “includes” and “contains” mean that the elements or things that appear before the term include the elements or things listed after the term, and their equivalents, but do not exclude other elements or things.
[0034] As people's demands for screen-to-body ratios in electronic products continue to rise, under-screen camera design has become a hot topic of research for major manufacturers. The technical challenge in under-screen camera design is that the low light transmittance of the screen severely impacts the imaging quality of the camera positioned below the screen.
[0035] As consumer demands for screen integrity increase, underscreen cameras are becoming increasingly popular. Currently, in the field of OLEDs, the technical difficulty of underscreen imaging is mainly due to the low transmittance of the screen, which seriously affects the imaging quality of the camera placed below the screen. For example, a display screen can be divided into a first display area and a second display area, and the camera can be installed in the first display area, while the second display area may be the normal display area. By reducing the resolution of the first display area and decreasing the density of subpixels in the first display area, the light transmittance can be increased, and the underscreen imaging function can be realized.
[0036] Embodiments of this disclosure provide a display substrate and a display device. The display substrate includes a base substrate comprising a first display area and a second display area, the second display area at least locally surrounding the first display area, and a plurality of subpixels located on the base substrate and located in the first display area and the second display area, wherein the density of subpixels in the first display area is less than the density of subpixels in the second display area, each subpixel includes a pixel circuit, the plurality of subpixels includes a first subpixel, a second subpixel and a third subpixel, the plurality of subpixels includes a plurality of first pixel groups and a plurality of second pixel groups, the plurality of first pixel groups are located in the first display area and a plurality of second pixels The pixel groups are located in the second display area, the first display area includes a plurality of sub-display areas and sub-light-transmitting areas located between the plurality of sub-display areas, the plurality of first pixel groups are arranged in a one-to-one correspondence with the plurality of sub-display areas, each first pixel group includes one first subpixel, one second subpixel, and one third subpixel arranged sequentially along the first direction, each second pixel group includes one first subpixel, one pair of second subpixels, and one third subpixel arranged along the first direction, and the pair of second subpixels includes two second subpixels arranged along the second direction. The display substrate employs a Real GRB pixel arrangement method in the first display area and a GGRB pixel arrangement method in the second display area. On the one hand, the display substrate can increase the light transmittance of the first display area by reducing the resolution or PPI (Pixels Per Inch) of the first display area. On the other hand, the second display area of the display substrate has high resolution and display effect. Furthermore, the first display area employs the Real GRB pixel arrangement method, resulting in a large light-emitting area for the green subpixels, which provides a long service life.
[0037] The display board and display device according to the embodiments of this disclosure will be described in detail below with reference to the drawings.
[0038] Figure 1 is a schematic plan view of a display substrate according to one embodiment of the present disclosure. As shown in Figure 1, the display substrate 100 includes a base substrate 110 and a plurality of subpixels 120, the base substrate 110 includes a first display area 112 and a second display area 114, the second display area 114 at least locally surrounds the first display area 112, the plurality of subpixels 120 are located on the base substrate 110 and are located in the first display area 112 and the second display area 114, the density of subpixels in the first display area 112 is less than the density of subpixels in the second display area 114, and each subpixel 120 includes a pixel circuit. The multiple subpixels 120 include a first subpixel 121, a second subpixel 122, and a third subpixel 123, and the multiple subpixels 120 include a multiple first pixel group 141 and a multiple second pixel group 142, the multiple first pixel group 141 is located in the first display area 112, the multiple second pixel group 142 is located in the second display area 114, and the first display area 112 includes a multiple sub-display area 1124 and a sub-light transmission area 1126 located between the multiple sub-display areas 1124, and the multiple first pixel group 1 41 is installed in a one-to-one correspondence with a plurality of sub-display areas 1124, and each first pixel group 141 includes one first sub-pixel 121, one second sub-pixel 122, and one third sub-pixel 123 arranged sequentially along a first direction, and each second pixel group 142 includes one first sub-pixel 121, one second sub-pixel pair 1220, and one third sub-pixel 123 arranged along a first direction, and the second sub-pixel pair 1220 includes two second sub-pixels 122 arranged along a second direction.
[0039] In the display substrate according to the embodiment of this disclosure, the first display area 112 includes a plurality of sub-display areas 1124 and a sub-light-transmitting area 1126 located between the plurality of sub-display areas 1124, and a plurality of first pixel groups 141 are installed in a one-to-one correspondence with the plurality of sub-display areas 1124. At this time, the plurality of sub-display areas in the first display area 112 can be used for display, and the sub-light-transmitting area 1126 can transmit light rays, so a photosensitive functional element such as a camera can be installed in the first display area 112. Each first pixel group 141 includes one first sub-pixel 121, one second sub-pixel 122, and one third sub-pixel 123 arranged sequentially along a first direction. As can be seen, the sub-pixels in the first display area 112 can employ a Real GRB pixel arrangement method, and at this time, the large light-emitting area of the second sub-pixel provides a long service life. Each second pixel group 142 includes one first subpixel 121, one second subpixel pair 1220, and one third subpixel 123 arranged along the first direction, with the second subpixel pair 1220 including two second subpixels 122 arranged along the second direction. As can be seen, the subpixels in the second display area 114 can have high resolution and high display effect by employing the GGRB pixel arrangement scheme. It should be explained that because the number of subpixels in the first display area is small, the brightness of the subpixels in each first pixel group is greater than the brightness of the subpixels in the second pixel group in order to make the brightness of the entire display board uniform. Therefore, by increasing the light-emitting area of the second subpixels in the first pixel group, the display board can have a longer service life.
[0040] For example, as shown in Figure 1, the orthographic projection shape of the first display area 112 on the base substrate 110 is rectangular, and the second display area 114 surrounds the three edges of the first display area 112. Naturally, the embodiments of this disclosure are not limited thereto. The orthographic projection shape of the first display area 112 on the base substrate 110 may be circular or a teardrop shape, or any other shape. Also, the second display area 114 may surround all the edges of the first display area 112.
[0041] In some cases, subpixels 120 are not installed in the sub-light-transmitting region 1126. This allows the sub-light-transmitting region 1126 to have a high light transmittance.
[0042] In some cases, the first direction is approximately perpendicular to the second direction. It should be explained that the above-mentioned approximately perpendicularity of the first and second directions includes cases where the angle between the first and second directions is 90 degrees, and cases where the angle between the first and second directions is in the range of 80 to 100 degrees.
[0043] In some examples, the first subpixel 121 is configured to emit light of a first color, the second subpixel 122 is configured to emit light of a second color, and the third subpixel 123 is configured to emit light of a third color.
[0044] For example, the first color is red, the second color is green, and the third color is blue.
[0045] Figure 2 is a schematic plan view of another display substrate according to an embodiment of the present disclosure. Figure 3 is a schematic cross-sectional view of a display substrate according to an embodiment of the present disclosure, along the AA direction in Figure 2.
[0046] As shown in Figures 2 and 3, the display substrate 100 includes a plurality of first light-shielding layers 151 and a second light-shielding layer 152. The plurality of first light-shielding layers 151 are installed in a one-to-one correspondence with a plurality of sub-display areas 1124, with each first light-shielding layer 151 located on the side of the corresponding first pixel group 141 that is close to the base substrate 110, and the second light-shielding layer 152 is located in the second display area 114 and on the side of the plurality of second pixel groups 142 that are close to the base substrate 110. This ensures that the first light-shielding layer 151 prevents light emitted from the first pixel group 141 from entering the photosensitive functional element installed in the first display area 112, and similarly, the second light-shielding layer 152 prevents light emitted from the second pixel group 142 from entering the photosensitive functional element installed in the first display area 112, thereby ensuring that the photosensitive functional element can perform its function with high quality. For example, the photosensitive functional element may be a camera.
[0047] For example, the orthographic projection of the pixel circuit 130 of the multiple subpixels 120 in the first pixel group 141 on the base substrate 110 lies within the orthographic projection of the corresponding first light-shielding layer 151 on the base substrate 110. This allows the first light-shielding layer 151 to block the pixel circuit 130 of the multiple subpixels 120 in the first pixel group 141, preventing light rays from entering the photosensitive functional element through slit diffraction between the signal lines of the pixel circuit 130.
[0048] For example, as shown in Figures 2 and 3, adjacent sub-display areas 1124 are spaced apart. Naturally, embodiments of this disclosure include, but are not limited to, the arrangement of two or more adjacent sub-display areas to form a larger area.
[0049] In some examples, as shown in Figures 2 and 3, the second light-shielding layer 151 occupies the entire area of the second display area 114, while the first light-shielding layer 151 occupies only the area of the sub-display area 1124 within the first display area 112, thereby ensuring that the first display area 112 has a certain degree of light transmittance.
[0050] In some examples, as shown in Figure 2, each sub-display area 1124 includes three unit areas 200, and the first sub-pixel 121, second sub-pixel 122, and third sub-pixel 123 of the first pixel group 141 are each placed in these three unit areas 200, that is, one sub-pixel 120 is placed in one unit area 200. A first spacing area 161 is placed between adjacent first pixel groups 141 in the first direction, and the first spacing area 161 includes one unit area 200. A second spacing area 162 is placed between adjacent first pixel groups 141 in the second direction, and the second spacing area 162 includes three unit areas 200 placed along the first direction, and the sub-light transmission area 1126 includes the first spacing area 161 and the second spacing area 162. In the display substrate according to this example, the pixel density of the first display area is approximately 3 / 8 of the pixel density of the second display area, and the PPI of the first display area is approximately 1 / 2 of the PPI of the second display area. As a result, the first display area has a high light transmittance, and the photosensitive functional element installed in the first display area can have high performance.
[0051] Figure 4 is a schematic partial plan view of another display substrate according to one embodiment of the present disclosure. Figure 4 shows only the power lines and pixel circuits of the first and second pixel groups. As shown in Figure 4, each sub-pixel 120 further includes a power line 128 extending along a second direction, the power line 128 being connected to a pixel circuit 130 and configured to apply a constant voltage to the pixel circuit 130, the power line 128 of at least one sub-pixel 120 in each first pixel group 141 being electrically connected to the corresponding first light-shielding layer 151, and the power line 128 of at least one sub-pixel 128 in each second pixel group 142 being electrically connected to the second light-shielding layer 152. In the display substrate according to this example, both the first and second light-shielding layers are connected to the power lines, and the first and second light-shielding layers are not in a floating state during display, thereby improving the display quality of the display substrate.
[0052] In some examples, as shown in Figure 4, in order to reduce the area of each first pixel group 141, the power lines 128 of the first sub-pixel 121 in each first pixel group 141 are connected to the corresponding first light-shielding layer 151, while the power lines 128 of the second sub-pixel 122 and the third sub-pixel 123 in each first pixel group 141 are not connected to the corresponding first light-shielding layer 151. As a result, in each first pixel group 141, only the power lines 128 of the first sub-pixel 121 apply a constant voltage to the first light-shielding layer 151 corresponding to that first pixel group 141.
[0053] In some examples, as shown in Figure 4, the power lines 128 of the first subpixel 121, second subpixel 122, and third subpixel 123 in each second pixel group 142 are all electrically connected to the corresponding second light-shielding layer 152. Naturally, embodiments of the present disclosure include, but are not limited to, the power lines of only some of the subpixels in each second pixel group being connected to the corresponding second light-shielding layer.
[0054] Figure 5 is a schematic partial plan view of a display board according to an embodiment of the present disclosure. Figure 6 is an enlarged schematic view of the first pixel group in Figure 5. As shown in Figures 5 and 6, the power lines 128 of the second sub-pixel 122 in each first pixel group 141 pass through the second spacing region 162 and are connected to the power lines 128 of the second sub-pixel 122 in the adjacent first pixel group 141 in the second direction. The power lines 128 of the first sub-pixel 121 and the power lines 128 of the third sub-pixel 123 in each first pixel group 141 are isolated from the power lines 128 of the first sub-pixel 121 and the power lines 128 of the third sub-pixel 123 in the adjacent first pixel group 141 in the second direction. In other words, the power lines 128 of the first sub-pixel 121 in each first pixel group 141 are not connected to the power lines 128 of the first sub-pixel 121 in the adjacent first pixel group 141 in the second direction, and the power lines 128 of the third sub-pixel 123 in each first pixel group 141 are not connected to the power lines 128 of the third sub-pixel 123 in the adjacent first pixel group 141 in the second direction. As a result, the display board can reduce the number of wires in the second spacing region, thereby improving the light transmittance of the second spacing region.
[0055] It should be explained that, as shown in Figures 5 and 6, the power lines 128 of the first subpixel 121, the second subpixel 122, and the third subpixel 123 in each first pixel group 141 can be electrically connected to each other via the second gate layer in the pixel circuit.
[0056] In some examples, as shown in Figures 5 and 6, the pixel circuit 130 of the subpixel 120 in each first pixel group 141 includes a first initialization signal line 1311, a first reset signal line 1321, a gate line 133, a transmit control line 134, a second initialization signal line 1312, and a second reset signal line 1322, all extending along a first direction. In each first pixel group 141, the first initialization signal line 1311 of the first subpixel 121, the first initialization signal line 1311 of the second subpixel 122, and the first initialization signal line 1311 of the third subpixel 123 are connected, and in each first pixel group 141, the first reset signal line 1321 of the first subpixel 121, the first reset signal line 1321 of the second subpixel 122, and the first reset signal line 1321 of the third subpixel 123 are connected, and in each first pixel group 141, the gate line 133 of the first subpixel 121, the gate line 133 of the second subpixel 122, and the gate line 133 of the third subpixel 123 are connected, and In one pixel group 141, the transmit control line 134 of the first subpixel 121, the transmit control line 134 of the second subpixel 122, and the transmit control line 134 of the third subpixel 123 are connected. In each first pixel group 141, the second initialization signal line 1312 of the first subpixel 121, the second initialization signal line 1312 of the second subpixel 122, and the second initialization signal line 1312 of the third subpixel 123 are connected. In each first pixel group 141, the second reset signal line 1322 of the first subpixel 121, the second reset signal line 1322 of the second subpixel 122, and the second reset signal line 1322 of the third subpixel 123 are connected.
[0057] It should be explained that this disclosure divides these signal lines into signal line segments corresponding to each subpixel in order to more clearly explain the connection relationships of these signal lines. However, each signal line in each first pixel group may be integrally formed. For example, as shown in Figure 5, in each first pixel group 141, the first initialization signal line 1311 of the first subpixel 121, the first initialization signal line 1311 of the second subpixel 122, and the first initialization signal line 1311 of the third subpixel 123 are integrally formed, and the first reset signal line 1321 of the first subpixel 121, the first reset signal line 1321 of the second subpixel 122, and the first reset signal line 1321 of the third subpixel 123 are integrally formed, and the gate line 133 of the first subpixel 121, the gate line 133 of the second subpixel 122, and the gate line of the third subpixel 123 133 is integrally molded, the transmit control line 134 of the first subpixel 121, the transmit control line 134 of the second subpixel 122, and the transmit control line 134 of the third subpixel 123 are integrally molded, the second initialization signal line 1312 of the first subpixel 121, the second initialization signal line 1312 of the second subpixel 122, and the second initialization signal line 1312 of the third subpixel 123 are integrally molded, and the second reset signal line 1322 of the first subpixel 121, the second reset signal line 1322 of the second subpixel 122, and the second reset signal line 1322 of the third subpixel 123 are integrally molded.
[0058] In some examples, as shown in Figures 4, 5, and 6, the power lines 128 of the first subpixel 121 in each first pixel group 141 are electrically connected to the corresponding first light-shielding layer 151 via a first light-shielding layer through-hole 171, for example, as shown in Figures 4, 5, and 6, one first pixel group 141 contains only one first light-shielding layer through-hole 171. The power lines 128 of the first subpixel 121, second subpixel 122, and third subpixel 123 in each second pixel group 142 are electrically connected to the second light-shielding layer 152 via a second light-shielding layer through-hole 172, and the orthographic projection of the first light-shielding layer through-hole 171 on the base substrate 110 is located on the side of the second reset signal line 1322 away from the transmit signal line 134. As a result, the second initialization signal line 1312 and the second reset signal line 1322 can be positioned closer to the transmit signal line 134, thereby reducing the area occupied by the pixel circuit, further reducing the area of the first light-shielding layer, and improving the light transmittance of the first display area. In some examples, as shown in Figures 5 and 6, the pixel circuit 130 of the first sub-pixel 121 includes a wiring area 1215 and a through-hole area 1217, the first initialization signal line 1311, the first reset signal line 1321, the gate line 133, the transmit control line 134, the second initialization signal line 1312, and the second reset signal line 1322 are located in the wiring area 1215, the through-hole area 1217 is located on the side of the wiring area 1215 that is close to the second spacing area 162, and the first light-shielding layer through-hole 171 is located in the through-hole area 1217. As a result, the first light-shielding layer through-hole 171 is installed in the through-hole region 1217, allowing the first initialization signal line 1311, the first reset signal line 1321, the gate line 133, the transmit control line 134, the second initialization signal line 1312, and the second reset signal line 1322 to be installed more densely in the wiring region 1215. This reduces the area occupied by the pixel circuit on the display board, further reduces the area of the first light-shielding layer, and improves the light transmittance of the first display area.
[0059] In some examples, as shown in Figures 5 and 6, the pixel circuit 130 of a subpixel 120 in each second pixel group 142 includes a first initialization signal line 1311, a first reset signal line 1321, a gate line 133, and a transmit control line 134 extending along a first direction, and the extensions of the second initialization signal line 1312 and the second reset signal line 1322 of the first subpixel 121 in the first pixel group 141 are located between the first transmit control line 134 of the first subpixel 121 in the second pixel group 142 of the same row and the first reset signal line 1311 of the first subpixel 121 in the second pixel group 142 of the next row. In this display board, the pixel circuit of a subpixel in each second pixel group does not need to have a second initialization signal line and a second reset signal line, and the first initialization signal line and the first reset signal line of the subpixel of the next row of the second pixel group are used as the second initialization signal line and the second reset signal line of the subpixel of the previous row of the second pixel group. At this time, the extensions of the second initialization signal line and the second reset signal line of the first subpixel in the first pixel group are located between the first transmission control line of the first subpixel in the second pixel group of the same row and the first reset signal line of the first subpixel in the second pixel group of the next row. As a result, the display board can reduce the area occupied by the pixel circuit of each subpixel in the first pixel group, thereby reducing the area of the first light-shielding layer and improving the light transmittance of the first display area.
[0060] In some examples, as shown in Figures 5 and 6, the first initialization signal line 1311 of the third subpixel 123 in each first pixel group 141 is connected by a first connection line 181 to the first initialization signal line 1311 of the first subpixel 121 in the first adjacent first pixel group 141 in the first direction, the first reset signal line 1321 of the third subpixel 123 in each first pixel group 141 is connected by a second connection line 182 to the first reset signal line 1321 of the first subpixel 121 in the first adjacent first pixel group 141 in the first direction, the gate line 133 and the second reset signal line 1322 of the third subpixel 123 in each first pixel group 141 are connected by a third connection line 183, and are adjacent in the first direction by the third connection line 183. The gate line 133 and second reset signal line 1322 of the first subpixel 121 in the first pixel group 141 are connected, the transmit control line 124 of the third subpixel 123 in each first pixel group 141 is connected to the transmit control line 124 of the first subpixel 121 in the first adjacent first pixel group 141 by a fourth connection line 184, the second initialization signal line 1312 of the third subpixel 123 in each first pixel group 141 is connected to the second initialization signal line 1312 of the first subpixel 121 in the first adjacent first pixel group 141 by a fifth connection line 185, and the first connection line 181, second connection line 182, third connection line 183, fourth connection line 184 and fifth connection line 185 converge into a first spacing region 161. For example, “convergence” in this disclosure means that the array density of the connection lines is less than the array density of the various signal lines connected to the connection lines. For example, the first to fifth connection lines 181 to 185 are arranged densely in the second direction, and the various signal lines connected to them are arranged more sparsely in the second direction. As a result, the display board can reduce the area occupied by the first, second, third, fourth, and fifth connection lines by converging them into a first spacing region, thereby improving the light transmittance of the first display region.
[0061] In some examples, as shown in Figures 5 and 6, the first connection line 181, the third connection line 183, and the fifth connection line 185 are installed on the same layer as the power line 128, and on a different layer from the first initialization signal line 1311, the gate line 133, and the second initialization signal line 1312. For example, the first connection line 181, the third connection line 183, and the fifth connection line 185 are electrically connected to the first initialization signal line 1311, the gate line 133, and the second initialization signal line 1312, respectively, via through-holes.
[0062] In some examples, as shown in Figures 5 and 6, the second connection line 182 is installed in the same layer as the first reset signal line 1321 and integrally molded with it, and the fourth connection line 184 is installed in the same layer as the transmit control line 134 and integrally molded with it. As a result, the first, third, and fifth connection lines are located in the same layer, and the second and fourth connection lines are located in the same layer. Since the first, third, and fifth connection lines and the second and fourth connection lines are located in different film layers, the first, second, third, fourth, and fifth connection lines can be installed closely together, provided that insulation between them is ensured, thereby further reducing the area occupied by the first, second, third, fourth, and fifth connection lines.
[0063] In some examples, as shown in Figures 5 and 6, the first connection wire 181, the second connection wire 182, the third connection wire 183, the fourth connection wire 184, and the fifth connection wire 185 are installed sequentially in the second direction. This allows the first, second, third, fourth, and fifth connection wires to be installed closely together, provided that they are insulated from each other, thereby further reducing the area occupied by the first, second, third, fourth, and fifth connection wires.
[0064] In some examples, as shown in Figures 5 and 6, the pixel circuit 130 further includes data lines 136 extending along a second direction, wherein the data line 136 of a first subpixel 121 in each first pixel group 141 is connected by a sixth connection line 186 to the data line 136 of a first subpixel 121 in an adjacent first pixel group 141 in the second direction, the data line 136 of a second subpixel 122 in each first pixel group 141 is connected by a seventh connection line 187 to the data line 136 of a second subpixel 122 in an adjacent first pixel group 141 in the second direction, the data line 136 of a third subpixel 123 in each first pixel group 141 is connected by an eighth connection line 188 to the data line 136 of a third subpixel 123 in an adjacent first pixel group 141 in the second direction, and the sixth connection line 186, the seventh connection line 187 and the eighth connection line 188 converge to a second spacing region 162. As a result, the display board can reduce the area occupied by the sixth, seventh, and eighth connection lines by converging them into the second spacing region, thereby improving the light transmittance of the first display region.
[0065] In some examples, as shown in Figures 5 and 6, the sixth connection line 186 is located in the same layer as the first initialization signal line 1311 and in a different layer from the data line 136; the seventh connection line 187 is located in the same layer as the data line 136 and integrally molded with it; and the eighth connection line 188 is located in the same layer as the first reset signal line 1321 and in a different layer from the data line 136. For example, the sixth connection line 186 and the eighth connection line 188 may be electrically connected to the corresponding data line 136 via through-holes. In this way, the sixth and eighth connection lines are located in a different layer from the data line, and the seventh connection line is located in the same layer as the data line; that is, the film layer in which the sixth and eighth connection lines are located and the film layer in which the seventh connection line is located are different film layers. Therefore, provided that mutual insulation is guaranteed, the sixth, seventh, and eighth connection lines can be installed closely together, thereby further reducing the area occupied by the sixth, seventh, and eighth connection lines.
[0066] In some examples, as shown in Figure 6, the sixth connection line 186, the eighth connection line 188, and the seventh connection line 187 are installed sequentially in the first direction.
[0067] It should be explained that the number of first pixel groups in the first display area of the display substrate according to the embodiment of this disclosure is not limited to the specific number of first pixel groups in the first display area shown in the drawings, but is determined based on the specific size of the product.
[0068] One embodiment of the present disclosure further provides a display device. Figure 7 is a schematic diagram of a display device according to one embodiment of the present disclosure. As shown in Figure 7, the display device 300 includes the display substrate 100. Thus, the display device has technical effects corresponding to the beneficial technical effects of the display substrate, and specifically, refer to the relevant description of the display substrate.
[0069] For example, the display device may be a display device such as an organic light-emitting diode (OLED) display, or any product or component having a display function, such as a television, digital camera, mobile phone, wristwatch, tablet computer, laptop computer, or navigator, that includes such a display device.
[0070] In some examples, as shown in Figure 7, the display device 300 further includes a photosensitive functional element 310 located on the side of the base substrate 110 adjacent to the plurality of subpixels 120, and the orthographic projection of the photosensitive functional element 310 on the base substrate 110 overlaps at least locally with the first display area 112. The photosensitive functional element 310 is configured to perform various functions by receiving light rays from the side of the display substrate where the plurality of subpixels are located.
[0071] For example, the photosensitive element 310 may be a camera, thereby enabling the display device to achieve a full-screen design while simultaneously realizing functions such as image capture.
[0072] The following points need further explanation. (1) The drawings of the embodiments of this disclosure relate only to the structures relating to the embodiments of this disclosure, and for other structures, conventional designs may be referenced.
[0073] (2) Where there is no conflict, features in the same and different embodiments of the present disclosure can be combined with each other.
[0074] The foregoing are merely exemplary embodiments of the present disclosure and do not limit the scope of protection of the present disclosure, which is determined by the appended claims.
Claims
1. A base substrate including a first display area and a second display area, wherein the second display area at least locally surrounds the first display area, A display substrate comprising a plurality of subpixels located on the base substrate and located in the first display area and the second display area, wherein the density of the subpixels in the first display area is less than the density of the subpixels in the second display area, and each subpixel includes a pixel circuit, The plurality of subpixels include a first subpixel, a second subpixel, and a third subpixel, and the plurality of subpixels include a plurality of first pixel groups and a plurality of second pixel groups, the plurality of first pixel groups are located in the first display area, and the plurality of second pixel groups are located in the second display area. The first display area includes a plurality of sub-display areas and sub-light-transmitting areas located between the plurality of sub-display areas, the plurality of first pixel groups are arranged in a one-to-one correspondence with the plurality of sub-display areas, each first pixel group includes one first subpixel, one second subpixel and one third subpixel arranged sequentially along a first direction, each second pixel group includes one first subpixel, one pair of second subpixels and one third subpixel arranged along the first direction, and the pair of second subpixels includes two second subpixels arranged along a second direction. The system further includes a plurality of first light-shielding layers installed in a one-to-one correspondence with the plurality of sub-display areas, and a second light-shielding layer located in the second display area and on the side of the plurality of second pixel groups that is close to the base substrate, Each subpixel further includes a power line extending along the second direction, The power line is connected to the pixel circuit and configured to apply a constant voltage to the pixel circuit. The power lines of at least one subpixel in each of the first pixel groups are electrically connected to the corresponding first light-shielding layer. The power lines of at least one subpixel in each of the second pixel groups are electrically connected to the second light-shielding layer. A display substrate in which the second light-shielding layer occupies the entire area of the second display region, and the first light-shielding layer occupies only the area of the sub-display region within the first display region.
2. The display substrate according to claim 1, wherein the power lines of the first subpixel in each of the first pixel groups are electrically connected to the corresponding first light-shielding layer, and the power lines of the first subpixel, second subpixel, and third subpixel in each of the second pixel groups are all electrically connected to the corresponding second light-shielding layer.
3. Each of the sub-display areas includes three unit areas, and the first sub-pixel, second sub-pixel, and third sub-pixel in the first pixel group are each located within the three unit areas. A first spacing region including one unit region is provided between adjacent first pixel groups in the first direction, a second spacing region is provided between adjacent first pixel groups in the second direction, and the second spacing region includes three unit regions arranged along the first direction. The display substrate according to claim 1 or 2, wherein the sub-light transmission region includes the first interval region and the second interval region.
4. The power lines of the second subpixels in each of the first pixel groups are connected to the power lines of the second subpixels in adjacent first pixel groups in the second direction, passing through the second spacing region. The display board according to claim 3, characterized in that the power lines of the first subpixel and the third subpixel in each of the first pixel groups are isolated from the power lines of the first subpixel and the third subpixel in the first pixel group adjacent in the second direction.
5. The pixel circuit of the subpixel in each of the first pixel groups includes a first initialization signal line, a first reset signal line, a gate line, a transmit control line, a second initialization signal line, and a second reset signal line extending along the first direction. In each of the first pixel groups, the first initialization signal line of the first subpixel, the first initialization signal line of the second subpixel, and the first initialization signal line of the third subpixel are connected. In each of the first pixel groups, the first reset signal line of the first subpixel, the first reset signal line of the second subpixel, and the first reset signal line of the third subpixel are connected. In each of the first pixel groups, the gate line of the first subpixel, the gate line of the second subpixel, and the gate line of the third subpixel are connected. In each of the first pixel groups, the first transmission control line of the first subpixel, the second transmission control line of the second subpixel, and the third transmission control line of the third subpixel are connected. In each of the first pixel groups, the second initialization signal line of the first subpixel, the second initialization signal line of the second subpixel, and the second initialization signal line of the third subpixel are connected. The display board according to claim 3, wherein in each of the first pixel groups, the second reset signal line of the first subpixel, the second reset signal line of the second subpixel, and the second reset signal line of the third subpixel are connected.
6. The power lines of the first subpixels in each of the first pixel groups are electrically connected to the corresponding first light-shielding layer via through-holes in the first light-shielding layer. The power lines of the first subpixel, the second subpixel, and the third subpixel in each of the second pixel groups are electrically connected to the second light-shielding layer via through-holes in the second light-shielding layer. The display board according to claim 5, wherein the orthographic projection of the first light-shielding layer through-hole on the base substrate is located on the side of the second reset signal line away from the transmit control line.
7. The display substrate according to claim 6, wherein one of the first pixel groups includes one of the first light-shielding layer through-holes.
8. The pixel circuit of the first sub-pixel is, A wiring area in which the first initialization signal line, the first reset signal line, the gate line, the transmit control line, the second initialization signal line, and the second reset signal line are installed, The display substrate according to claim 6, further comprising: a through-hole region located on the side of the wiring region adjacent to the second spacing region, wherein the first light-shielding layer through-hole is installed.
9. The pixel circuit of the subpixel in each of the second pixel groups includes a first initialization signal line, a first reset signal line, a gate line, and a transmit control line extending along the first direction. The display board according to any one of claims 6 to 8, wherein the second initialization signal line and the second reset signal line of the first subpixel in the first pixel group are located between the first transmit control line of the first subpixel in the second pixel group of the same row and the first reset signal line of the first subpixel in the second pixel group of the next row.
10. The first initialization signal line of the third subpixel in each of the first pixel groups is connected by a first connection line to the first initialization signal line of the first subpixel in the first adjacent first pixel group in the first direction. The first reset signal line of the third subpixel in each of the first pixel groups is connected by a second connecting line to the first reset signal line of the first subpixel in the first adjacent first pixel group in the first direction. The gate line and the second reset signal line of the third subpixel in each of the first pixel groups are connected by a third connecting line, and the gate line and the second reset signal line of the first subpixel in the first pixel group adjacent to it in the first direction are also connected by the third connecting line. The third transmit control line of the third subpixel in each of the first pixel groups is connected by a fourth connecting line to the first transmit control line of the first subpixel in the first adjacent first pixel group in the first direction. The second initialization signal line of the third subpixel in each of the first pixel groups is connected by a fifth connection line to the second initialization signal line of the first subpixel in the first adjacent first pixel group in the first direction. The display board according to any one of claims 5 to 9, wherein the first connection line, the second connection line, the third connection line, the fourth connection line and the fifth connection line converge to a first spacing region.
11. The display board according to claim 10, wherein the first connection line, the third connection line, and the fifth connection line are installed on the same layer as the power line, and on a different layer from the first initialization signal line, the gate line, and the second initialization signal line.
12. The display board according to claim 11, wherein the second connection line is installed in the same layer as the first reset signal line and integrally molded, and the fourth connection line is installed in the same layer as the transmit control line and integrally molded.
13. The display board according to claim 11, wherein the first connection line, the second connection line, the third connection line, the fourth connection line, and the fifth connection line are installed sequentially in the second direction.
14. The pixel circuit further includes data lines extending along the second direction, The data lines of the first subpixels in each of the first pixel groups are connected by a sixth connecting line to the data lines of the first subpixels in the adjacent first pixel groups in the second direction. The data lines of the second subpixels in each of the first pixel groups are connected by a seventh connecting line to the data lines of the second subpixels in adjacent first pixel groups in the second direction. The data lines of the third subpixel in each of the first pixel groups are connected by an eighth connecting line to the data lines of the third subpixel in the adjacent first pixel group in the second direction. The display board according to claim 5, wherein the sixth connection line, the seventh connection line, and the eighth connection line converge to the second spacing region.
15. The display board according to claim 14, wherein the sixth connection line is installed in the same layer as the first initialization signal line and in a different layer from the data line, the seventh connection line is installed in the same layer as the data line and integrally molded with it, and the eighth connection line is installed in the same layer as the first reset signal line and in a different layer from the data line.
16. The display board according to claim 15, wherein the sixth connection line, the eighth connection line, and the seventh connection line are installed sequentially in the first direction.
17. The display substrate according to any one of claims 1 to 16, wherein the sub-pixels are not installed in the sub-light transmission region.
18. The display substrate according to any one of claims 1 to 16, wherein the first direction is substantially perpendicular to the second direction.
19. The display substrate according to any one of claims 1 to 16, wherein the first subpixel is configured to emit light of a first color, the second subpixel is configured to emit light of a second color, and the third subpixel is configured to emit light of a third color.
20. The display substrate according to claim 19, wherein the first color is red, the second color is green, and the third color is blue.
21. A display device comprising a display board according to any one of claims 1 to 20.
22. The present invention further includes a photosensitive functional element located on the side of the plurality of subpixels that is adjacent to the base substrate, The display device according to claim 21, wherein the orthographic projection of the photosensitive functional element on the base substrate overlaps at least locally with the first display area.
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