ARRAY SUBSTRATE, DISPLAY PANEL, SPLICING DISPLAY PANEL, AND DISPLAY DRIVING METHOD
The array substrate design addresses the challenge of seamless splicing in display panels by strategically placing pixel driving subcircuits and shift register circuits within the array substrate, reducing the frame size and enabling seamless integration of large-screen Mini-LED and Micro-LED displays.
Patent Information
- Application Number
- JP2024004286
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2024-01-16
- Publication Date
- 2025-05-14
- Estimated Expiration
- 2039-11-29
AI Technical Summary
Conventional splicing display panels face challenges in achieving seamless splicing due to the presence of seams from sealants and virtual pixels in LCD panels, and the need for encapsulation in OLED panels, which limits the size and resolution of Mini-LED and Micro-LED displays.
The array substrate design includes a display area with pixel groups and pixel circuit groups, where pixel driving subcircuits and shift register circuits are strategically located between rows or columns of pixels, allowing for modular arrangement of functional subcircuits and reducing the frame size, enabling seamless splicing.
This design effectively reduces the frame size of the array substrate, allowing for seamless splicing of display panels, improved space utilization, and enhanced display uniformity, particularly beneficial for large-screen Mini-LED and Micro-LED displays.
Smart Images

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Abstract
Description
[Technical field]
[0001] The present disclosure relates to the field of display technology, and in particular to an array substrate, a display panel, a splicing display panel, and a display driving method. [Background technology]
[0002] With the development of display technology, consumer demands for display device performance such as screen size, frame width, display brightness, display image quality, etc. For example, there is a demand for larger display screens, narrower frames, and improved uniformity of display brightness. Summary of the Invention [Means for solving the problem]
[0003] In one embodiment, an array substrate is provided, the array substrate comprising a display area, at least one pixel group, at least one pixel circuit group, and at least one shift register circuit, the at least one pixel group being located within the display area, and each of the at least one pixel group including a plurality of pixels arranged in an array, each of the at least one pixel circuit group being located between two adjacent rows of pixels or two adjacent columns of pixels in the corresponding pixel group, the at least one pixel circuit group including at least one pixel driving sub-circuit group, and the at least one shift register circuit and the at least one pixel driving sub-circuit group being located between two different rows of pixels or two different columns of pixels, respectively.
[0004] In some embodiments, each of the plurality of pixels includes at least one sub-pixel, and each of the at least one pixel drive subcircuit group is electrically connected to a corresponding pair of adjacent rows or columns of sub-pixels, and is arranged to provide a pixel drive signal to each sub-pixel electrically connected to the pixel drive subcircuit group.
[0005] In some embodiments, the at least one pixel group is at least two pixel groups, the at least two pixel groups being arranged along a row direction, each of the pixel driving sub-circuit groups being located between two adjacent columns of sub-pixels in the corresponding pixel group, and a length of each of the pixel driving sub-circuit groups in the column direction being shorter than a length of the pixel group in the column direction, the at least one pixel circuit group further including at least one functional sub-circuit located on at least one side of each of the pixel driving sub-circuit groups along the column direction, the functional sub-circuit including a data selection circuit, an electrostatic discharge protection circuit, or a signal wiring concentration area.
[0006] In some other embodiments, the at least one pixel group is at least two pixel groups, the at least two pixel groups being arranged along a column direction, each of the pixel driving sub-circuit groups being located between two adjacent rows of sub-pixels in the corresponding pixel group, and a length of each of the pixel driving sub-circuit groups in the row direction being shorter than a length of the pixel group in the row direction, the at least one pixel circuit group further including at least one functional sub-circuit located on at least one side of each of the pixel driving sub-circuit groups along the row direction, the functional sub-circuit including a data selection circuit, an electrostatic discharge protection circuit, or a signal wiring concentration area.
[0007] In some embodiments, the at least one shift register circuit is correspondingly electrically connected to the at least one pixel drive sub-circuit group and arranged to provide scan drive signals to the at least one pixel drive sub-circuit group.
[0008] In some embodiments, the at least one pixel group is at least two pixel groups, the at least two pixel groups being arranged along a row direction, the at least one shift register circuit being located between two of the pixel groups or between two adjacent columns of sub-pixels in a corresponding pixel group, the length of the shift register circuit being shorter in the column direction than the length of the pixel group in the column direction, the at least one pixel circuit group further including at least one functional sub-circuit located on at least one side of the shift register circuit along the column direction, the functional sub-circuit including a data selection circuit, an electrostatic discharge protection circuit, or a signal wiring concentration area.
[0009] In some other embodiments, the at least one pixel group is at least two pixel groups, the at least two pixel groups being arranged along a column direction, the at least one shift register circuit being located between two of the pixel groups or between two adjacent rows of sub-pixels in a corresponding pixel group, the length of the shift register circuit in the row direction being shorter than the length of the pixel group in the row direction, the at least one pixel circuit group further including at least one functional sub-circuit located on at least one side of the shift register circuit along the row direction, the functional sub-circuit including a data selection circuit, an electrostatic discharge protection circuit, or a signal wiring concentration area.
[0010] In some embodiments, the at least one pixel driving sub-circuit group is a plurality of pixel driving sub-circuit groups, and the at least one shift register circuit includes a first shift register circuit and a second shift register circuit, the first shift register circuit and the second shift register circuit being electrically connected to a corresponding one of the plurality of pixel driving sub-circuit groups, respectively.
[0011] In some embodiments, the at least one pixel driving subcircuit group is a plurality of pixel driving subcircuit groups, and the at least one shift register circuit includes a first shift register circuit and a second shift register circuit, the first shift register circuit correspondingly and electrically connected to a portion of the plurality of pixel driving subcircuit groups, and the second shift register circuit correspondingly and electrically connected to another portion of the plurality of pixel driving subcircuit groups.
[0012] In some embodiments, the first shift register circuit and the second shift register circuit are provided adjacent to each other in a row direction or a column direction.
[0013] In some embodiments, the first shift register circuit and the second shift register circuit are located between two different rows of pixels or between two different columns of pixels, respectively.
[0014] In some embodiments, the at least one shift register circuit further includes a first backup circuit and a second backup circuit, the first backup circuit being a backup for the first shift register circuit, electrically connected to a corresponding pixel drive sub-circuit group and arranged to provide a scan drive signal to the corresponding pixel drive sub-circuit group when the first shift register circuit fails, and the second backup circuit being a backup for the second shift register circuit, electrically connected to a corresponding pixel drive sub-circuit group and arranged to provide a scan drive signal to the corresponding pixel drive sub-circuit group when the second shift register circuit fails.
[0015] In some embodiments, the first backup circuit and the first shift register circuit are located between the same two rows or columns of pixels, and the second backup circuit and the second shift register circuit are located between the same two rows or columns of pixels.
[0016] In some embodiments, the array substrate further comprises a base, at least one fan-out structure, and at least one side structure. The base includes a first surface and a second surface opposite the first surface. The at least one pixel group and the at least one pixel circuit group are located on the first surface. The at least one fan-out structure is located on the second surface. Each of the at least one fan-out structure includes a plurality of signal connection lines extending from an edge of the second surface to a non-edge region of the second surface. Each of the at least one side structure includes a plurality of side connection lines.
[0017] In some examples, one end of each of the plurality of side connection lines is electrically connected to one signal connection line in a corresponding fan-out structure, and the other end is connected to a corresponding one of the functional subcircuits.
[0018] In some other examples, when the array substrate includes a shift register circuit, the shift register circuit is located on the first surface, and one end of each of the side connection lines among the plurality of side connection lines is electrically connected to one signal connection line in a corresponding fan-out structure, and the other end is connected to a corresponding one of the functional sub-circuits or the shift register circuit.
[0019] In another aspect, a display panel is provided, the display panel comprising an array substrate according to any of the above-mentioned embodiments.
[0020] In some embodiments, the display panel further comprises a control integrated circuit located on a second surface of the base of the array substrate, the control integrated circuit being electrically connected to a plurality of signal connecting lines in a corresponding fan-out structure of the array substrate and configured to output control signals to the plurality of signal connecting lines.
[0021] In yet another aspect, there is provided a splicing display panel, the splicing display panel comprising at least two display panels according to any of the embodiments as described above spliced together.
[0022] In yet another aspect, there is provided a display driving method, the display driving method being applied to a display panel according to any of the embodiments as described above, the display driving method comprising controlling each pixel drive sub-circuit in the at least one pixel circuit group to provide pixel drive signals to two rows or two columns of sub-pixels adjacent to and electrically connected to the pixel drive sub-circuit group.
[0023] In some embodiments, the display driving method further includes a control integrated circuit located on a second surface of a base of the array substrate transmitting control signals to the at least one pixel circuit group and / or a shift register circuit located on a first surface of the base of the array substrate via at least one side structure. [Brief description of the drawings]
[0024] In order to more clearly describe the technical solutions in the present disclosure, the following will briefly introduce the drawings used in some embodiments of the present disclosure. It is clear that the drawings in the following description are only drawings of some embodiments of the present disclosure. Those skilled in the art can obtain other drawings through these drawings. In addition, the drawings in the following description can be regarded as schematic diagrams, and do not limit the actual dimensions of the products and the actual processes of the methods according to some embodiments of the present disclosure.
[0025] [Figure 1] 2 is a wiring schematic diagram of an array substrate according to some embodiments.
[0026] [Diagram 2] FIG. 2 is a wiring schematic diagram of another array substrate according to some embodiments.
[0027] [Diagram 3] FIG. 13 is a wiring schematic diagram of yet another array substrate according to some embodiments.
[0028] [Figure 4] FIG. 13 is a wiring schematic diagram of yet another array substrate according to some embodiments.
[0029] [Diagram 5] FIG. 13 is a wiring schematic diagram of yet another array substrate according to some embodiments.
[0030] [Figure 6] 4 is a structural diagram of a second surface of an array substrate according to some embodiments. FIG.
[0031] [Figure 7] 4A-4C are cross-sectional views of edge portions of array substrates according to some embodiments.
[0032] [Figure 8] 4 is a cross-sectional view of an edge portion of another array substrate according to some embodiments.
[0033] [Figure 9] FIG. 2 is an equivalent circuit diagram of a pixel driving sub-circuit according to some embodiments.
[0034] [Figure 10] FIG. 2 is an equivalent circuit diagram of a shift register according to some embodiments.
[0035] [Figure 11] 4 is an equivalent circuit diagram of a data selection circuit according to some embodiments.
[0036] [Figure 12] 1 is a cross-sectional view of an edge portion of yet another array substrate according to some embodiments.
[0037] [Figure 13] 1 is a structural diagram of a display panel according to some embodiments.
[0038] [Figure 14] 1 is a structural diagram of a splicing display panel according to some embodiments. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0039] The following clearly and completely describes the technical solutions in the embodiments of the present disclosure with reference to the drawings. Of course, it should be understood that the embodiments described herein are only a part of the embodiments of the present disclosure, and are not all of the embodiments. Based on the embodiments in the present disclosure, all other embodiments that a person skilled in the art can obtain shall be included in the claims of the present disclosure.
[0040] Unless otherwise required by context, throughout this specification and claims, the term "comprise" and other forms, such as the third person singular "comprises" and the present participle form "comprising" should be interpreted in an open, inclusive sense, i.e., "including but not limited to." In the description of the specification, the terms "one embodiment," "some embodiments," "exemplary embodiments," "examples," "specific examples," "some examples," and the like, are intended to indicate that a particular feature, structure, material, or characteristic associated with this embodiment or example is included in at least one embodiment or example of the present disclosure. General expressions of the above terms do not necessarily refer to the same embodiment or example. Moreover, a particular feature, structure, material, or characteristic described may be included in any one or more embodiments or examples in any suitable manner.
[0041] Hereinafter, the terms "first" and "second" are used for descriptive purposes only and should not be understood to express or imply relative importance or the number of technical features. Thus, a feature qualified with "first" or "second" may explicitly or implicitly include one or more of the features. In the description of the embodiments of the present disclosure, unless otherwise specified, "multiple" means two or more. "A and / or B" includes three combinations: A only, B only, and a combination of A and B.
[0042] With the continuous development of display technology, consumers' requirements for the screen size of display devices are increasing, and splicing display panels have emerged to meet such demand. Traditional splicing display panels are usually constructed by splicing multiple display panels together.
[0043] In some examples, each display panel is a liquid crystal display (LCD) display panel, but due to the presence of a sealant for sealing the frame and virtual pixels in the LCD display panel, the splicing display panel constructed by splicing each LCD display panel inevitably has seams, and perfect seamless splicing cannot be achieved.
[0044] In some other examples, each display panel is an organic light-emitting diode (OLED) display panel. However, the cathode of each OLED in the OLED display panel is generally formed by deposition, and the OLED light-emitting device needs to be encapsulated to block moisture and oxygen in the air and ensure the life of the display panel, so the splicing display panel formed by splicing each OLED display panel inevitably has seams, and seamless splicing cannot be realized.
[0045] For Mini Light-Emitting Diode (Mini-LED) display panels and Micro Light-Emitting Diode (Micro-LED) display panels, due to the limited development level of mass transfer technology in the current production process, there are many obstacles to directly realize the high resolution and large size of Mini-LED display panels and Micro-LED display panels. The seamless splicing technology can effectively make up for the shortcomings of the existing mass transfer technology, and can use Mini-LED display panels or Micro-LED display panels to realize large screen display.
[0046] Based on this, some embodiments of the present disclosure provide an array substrate. As shown in Figures 1 to 3, the array substrate 101 includes a display area AA, at least one pixel group 1, and at least one pixel circuit group 2. The at least one pixel group 1 is located within the display area AA, and each of the at least one pixel group 1 includes a plurality of pixels 10 arranged in an array. Each of the at least one pixel circuit group 2 is located between adjacent two rows of pixels 10 or adjacent two columns of pixels 10 in the corresponding pixel group 1.
[0047] Here, each pixel 10 includes at least one sub-pixel 11. The at least one pixel circuit group 2 includes at least one pixel drive sub-circuit group 20. Each pixel drive sub-circuit group 20 is electrically connected to two adjacent rows of sub-pixels 11 or two adjacent columns of sub-pixels 11, and is arranged to provide pixel drive signals to each sub-pixel 11 electrically connected thereto.
[0048] Optionally, the array substrate adopts an RGB color display mode. Each pixel 10 includes three sub-pixels 11, namely a red sub-pixel R, a green sub-pixel G and a blue sub-pixel B. As shown in FIG. 3, each pixel driving sub-circuit group 20 includes a plurality of independent pixel driving sub-circuits 21, where one pixel driving sub-circuit 21 is connected correspondingly to three sub-pixels in one pixel 10.
[0049] In some embodiments of the present disclosure, each pixel driving subcircuit group 20 is disposed between two adjacent rows of pixels 10 or two adjacent columns of pixels 10 corresponding thereto, and each pixel driving subcircuit group 20 is used to provide pixel driving signals to each subpixel 11 in the corresponding adjacent rows or columns of pixels 10, thereby effectively realizing integration of the pixel driving subcircuits 21. That is, the pixel driving subcircuits 21 corresponding to each subpixel 11 in the array substrate 101 are modularized and centrally arranged between the pixels 10 in some rows or some columns, thereby freeing up a lot of space in the display area AA of the array substrate. Using this space, other circuits required for display on the array substrate 101, such as a shift register circuit, a data selection (MUX) circuit, or an electrostatic discharge protection (abbreviated as ESD) circuit, are modularized and arranged. This effectively reduces or removes the frame of the array substrate 101, which is advantageous for realizing seamless splicing of the display panel.
[0050] The number of the pixel groups 1 and the number of the pixels 10 in each pixel group 1 can be selected and set according to actual requirements, for example, according to the resolution of the display panel on which the array substrate is located. For example, each pixel group 1 includes 12 (2×6) pixels 10, where 2 is the number of columns and 6 is the number of rows. In this way, each pixel driving sub-circuit group 20 can be located between two columns of pixels 10 in the corresponding pixel group 1. Also, exemplarily, the width of each pixel group 1 in the row direction or column direction may be sufficient to realize the arrangement of the corresponding pixel driving sub-circuit group 20 in each pixel group 1. The interval in the row direction or the interval in the column direction between each two adjacent pixel groups 1 is greater than 70 μm.
[0051] It should be noted that the above-mentioned array substrate 101 is applied to a Micro-LED display panel or a Mini-LED display panel. Due to the small size and high luminous intensity of the Micro-LED or Mini-LED, the Micro-LED or Mini-LED can occupy at least 10% of the area of each pixel 10 of the array substrate 101. Therefore, there is enough space within each pixel 10 of the array substrate 101 or between adjacent pixels 10 to provide electrical elements of each circuit.
[0052] In some examples, as shown in FIG. 1, the number of pixel groups 1 is at least two. The at least two pixel groups 1 are arranged along the row direction, i.e., each pixel 10 in the array substrate 101 is divided into at least two groups along the row direction. Each pixel driving subcircuit group 20 is located between two adjacent columns of subpixels 11 in the corresponding pixel group 1. The length of each pixel driving subcircuit group 20 in the column direction is shorter than the length of the pixel group 1 in the column direction. That is, each pixel driving subcircuit group 20 is concentrated between some of the pixels 10 in the corresponding two columns. This allows a space to be provided on at least one side of each pixel driving subcircuit group 20 in the column direction. In this way, the at least one pixel circuit group 2 further includes at least one functional subcircuit 30 located on at least one side of each pixel driving subcircuit group 20 along the column direction. The functional subcircuits 30 may include data selection (MUX) circuits, electrostatic discharge protection (ESD) circuits, or signal wiring concentration areas.
[0053] Of course, the types of the functional subcircuits 30 are not limited to these, and may include all other circuits having functions such as driving, compensation, or detection required for displaying the array substrate 101. The signal wiring concentrated area refers to a collective drawing terminal of a plurality of signal lines within the display area AA, such as a power supply voltage terminal, a common voltage terminal, a clock signal terminal, etc., and is arranged so as to couple each signal wiring to an external input circuit.
[0054] As shown in FIG. 1, the pixel groups 1 are arranged along the row direction, for example, at equal intervals. Thus, being located on at least one side of each pixel driving sub-circuit group 20 in the column direction means being located on at least one side of the array substrate 101 in the column direction (for example, the upper side, the lower side, or both the upper and lower sides shown in FIG. 1). This effectively improves the space utilization rate of the display area AA of the array substrate 101, and other functional sub-circuits 30 required for display on the array substrate 101, such as a shift register circuit, a data selection (MUX) circuit, an electrostatic discharge protection (abbreviated as ESD) circuit, etc., can be reasonably and easily arranged. Furthermore, the frame of the array substrate 101 can be effectively reduced or removed, which is advantageous for realizing seamless splicing of the display panel. In addition, each pixel driving sub-circuit group 20 and each functional sub-circuit 30 in the array substrate 101 are modularized and regularly arranged in the display area AA, which can effectively reduce the risk of static electricity and excess capacitance being formed.
[0055] The size of the array substrate 101 is appropriately set according to actual requirements, for example, to a relatively small size. In this way, by making the display panel corresponding to each array substrate 101 the smallest splicable unit, a large display panel of any size can be formed by splicing.
[0056] Furthermore, the more the pixel driving subcircuit groups 20 are concentrated among a smaller number of pixels 10 among the pixels 10 in the corresponding two columns, the more space can be allocated. Considering the uniformity of signal transmission, the wiring resistance between each pixel driving subcircuit 21 in each pixel driving subcircuit group 20 and the corresponding subpixel 11 needs to be equal or approximately equal to each other. Optionally, the difference in wiring resistance between any two pixel driving subcircuits 21 in each pixel driving subcircuit group 20 and the corresponding subpixel 11 is 100 ohms or less, so that the delay of the signal transmitted from the any two pixel driving subcircuits 21 to the corresponding subpixel 11 does not exceed 0.01 μs at most, and the requirement of uniform display can be met.
[0057] Similarly, in some other examples, the number of pixel groups 1 is at least two, as shown in FIG. 2. The at least two pixel groups 1 are arranged along the column direction. Each pixel driving subcircuit group 20 is located between two adjacent rows of subpixels 11 in the corresponding pixel group 1. The length of each pixel driving subcircuit group 20 in the row direction is shorter than the length of the pixel group 1 in the row direction. The at least one pixel circuit group 2 includes at least one functional subcircuit 30 located on at least one side of each pixel driving subcircuit group 20 along the row direction, and the functional subcircuit 30 includes a data selection (MUX) circuit, an electrostatic discharge protection (ESD) circuit, or a signal wiring concentration area (Side wire bonding pin area).
[0058] As shown in Fig. 2, the pixel groups 1 are arranged along the column direction, for example at equal intervals. Thus, being located on at least one side in the row direction of each pixel driving sub-circuit group 20 means being located on at least one side in the row direction of the array substrate 101 (for example, the left side, the right side, or both the left side and the right side as shown in Fig. 2). In this way, the beneficial effects achieved by the array substrate 101 employing the above-mentioned structure can be referred to the beneficial effects achieved by the corresponding array substrate 101 in the case where the pixel groups 1 are linearly arranged along the row direction, as described above. A description thereof will be omitted here.
[0059] Note that each pixel driving sub-circuit 21 in each pixel driving sub-circuit group 20 of the array substrate 101 usually requires a shift control signal output from a shift register circuit to be turned on sequentially. In some embodiments, as still shown in FIGS. 1 to 3, the array substrate 101 further includes a shift register circuit 4. The shift register circuit 4 is located between two different rows of pixels 10 or between two different columns of pixels 10 from the at least one pixel driving sub-circuit group 20. Optionally, the shift register circuit 4 is located within a space in a row or column direction between two adjacent pixel groups 1, or within a space between two adjacent rows of sub-pixels 11 or two adjacent columns of sub-pixels 11 in the corresponding pixel group 10, and the space is greater than 70 μm.
[0060] In some embodiments of the present disclosure, by disposing the shift register circuit 4 between two corresponding rows of pixels 10 or two corresponding columns of pixels 10, the frame of the array substrate 101 can be effectively reduced or removed, which is advantageous for realizing seamless splicing of the display panel. Furthermore, by disposing the shift register circuit 4 as described above, not only can division of the shift register circuit 4 be avoided and a signal transmission delay associated with the division be reduced, but also it is advantageous for simplifying the design of the wiring layout of the array substrate 101 (for example, realizing a layout array arrangement that reduces the size of the layout unit), thereby improving the efficiency of the layout design and, in turn, the efficiency of subsequent detection.
[0061] In addition, there is no need to divide and distribute each electronic element such as a thin film transistor in the shift register circuit 4 to each pixel 10, which makes it possible to avoid complicating the wiring of the array substrate 101, reduce excess parasitic capacitance, and further avoid problems such as a decrease in the aperture ratio of the array substrate 101 and electrostatic interference.
[0062] The shift register circuit 4 is correspondingly electrically connected to the at least one pixel driving sub-circuit group 20 and arranged to provide scan driving signals to the at least one pixel driving sub-circuit group 20 .
[0063] Here, the pixel driving sub-circuits 21 corresponding to at least one row or at least one column of pixels 10 are electrically connected to the same scanning signal line. The shift register circuit 4 being electrically connected to at least one pixel driving sub-circuit group 20 means that the shift register circuit 4 is electrically connected to each corresponding pixel driving sub-circuit 21 via each scanning signal line and provides each pixel driving sub-circuit 21 with a scanning driving signal.
[0064] Alternatively, the scanning signal lines include gate scanning signal lines or emission scanning signal lines. The arrangement and functions of the gate scanning signal lines and emission scanning signal lines may be referred to in the related art, and the description thereof will be omitted here. In some embodiments, as shown in FIG. 1, the number of pixel groups 1 is at least two. The at least two pixel groups 1 are arranged along the row direction. The shift register circuit 4 is located between the two pixel groups 10 or between two adjacent columns of sub-pixels 11 in the corresponding pixel group 10. The length of the shift register circuit 4 in the column direction is shorter than the length of the pixel group 1 in the column direction, that is, the shift register circuit 4 is concentrated between some of the pixels 10 of the corresponding two columns, so that a space can be provided on at least one side of the shift register circuit 4 in the column direction. Thus, the at least one pixel circuit group 2 includes at least one functional sub-circuit 30 located on at least one side of the shift register circuit 4 along the column direction, the functional sub-circuit 30 including a data selection (MUX) circuit, an electrostatic discharge protection (ESD) circuit, or a signal wiring concentration area.
[0065] As shown in Fig. 1, each pixel group 1 is linearly arranged along the row direction, and thus being located on at least one side of the shift register circuit 4 along the column direction means being located corresponding to at least one side in the column direction of the array substrate 101 (for example, the upper side, the lower side, or both the upper and lower sides shown in Fig. 1). This further improves the space utilization rate within the display area AA of the array substrate 101, and allows other functional sub-circuits 30 required for display on the array substrate 101 to be rationally and easily arranged. Furthermore, the frame of the array substrate 101 can be effectively reduced or eliminated, which is advantageous for realizing seamless splicing of the display panel.
[0066] Moreover, the more the shift register circuit 4 is concentrated between a smaller number of pixels 10 among some of the pixels 10 in the corresponding two columns, the more space can be provided for spatial arrangement. Considering the uniformity of signal transmission, the wiring resistance between the shift register circuit 4 and each scanning signal line needs to be equal or approximately equal to each other. Alternatively, the difference in wiring resistance between the shift register circuit 4 and any two of the scanning signal lines is 100 ohms or less, so that the delay of the signal transmitted from the shift register circuit 4 to the any two scanning signal lines does not exceed 0.01 μs at most, and the requirement for uniform display can be met.
[0067] Similarly, in some other embodiments, the number of pixel groups 1 is at least two, as shown in FIG. 2. The at least two pixel groups 1 are arranged along a column direction. A shift register circuit 4 is located between two pixel groups 1 or between two adjacent rows of sub-pixels 11 in a corresponding pixel group 1. The length of the shift register circuit 4 in the row direction is shorter than the length of the pixel group 1 in the row direction. The at least one pixel circuit group 2 includes at least one functional sub-circuit 3 located on at least one side of the shift register circuit 4 along the row direction, and the functional sub-circuit 3 includes a data selection (MUX) circuit, an electrostatic discharge protection (ESD) circuit, or a signal wiring concentration area.
[0068] As shown in Fig. 2, the pixel groups 1 are linearly arranged along the column direction, and being located on at least one side of the shift register circuit 4 along the row direction thus means being located on at least one side in the row direction of the array substrate 101 (for example, the left side, right side, or both the left side and right side as shown in Fig. 2). In this way, the beneficial effects achieved by the array substrate employing the above-mentioned structure can be referred to the beneficial effects achieved by the corresponding array substrate 101 when the pixel groups 1 are linearly arranged along the row direction, as described above. A description thereof will be omitted here.
[0069] In some embodiments, as shown in FIGS. 4 and 5, the shift register circuit 4 includes a first shift register circuit 41 and a second shift register circuit 42, which facilitates bidirectional driving of the scanning signal, thereby effectively improving the display uniformity of the display panel on which the array substrate 101 is disposed.
[0070] The positions of the first shift register circuit 41 and the second shift register circuit 42 in the display area AA may be set according to actual requirements. For example, as shown in FIG. 4, the first shift register circuit 41 and the second shift register circuit 42 are located in the central area of the display area AA, i.e., the first shift register circuit 41 and the second shift register circuit 42 transmit the scan driving signal from the central area of the display area AA to both sides thereof. Of course, as shown in FIG. 5, the first shift register circuit 41 and the second shift register circuit 42 may be located in the portions extending inward from both edges of the display area AA, i.e., the first shift register circuit 41 and the second shift register circuit 42 transmit the scan driving signal from both sides of the display area AA to the central area thereof. Some embodiments of the present disclosure are not limited thereto.
[0071] In some examples, the positions of the first shift register circuit 41 and the second shift register circuit 42 on the array substrate 101 are determined by the size of the gap formed between two adjacent rows or columns of pixels 10 on the array substrate 101. Optionally, the first shift register circuit 41 and the second shift register circuit 42 are provided adjacent to each other along the row direction or column direction, which facilitates wiring design and manufacturing. Optionally, the first shift register circuit 41 and the second shift register circuit 42 are respectively located between two different rows of pixels 10 or between two different columns of pixels 10. This is advantageous in improving the uniformity of the display.
[0072] In some examples, the array substrate includes a plurality of pixel driving subcircuit groups 20, and the first shift register circuit 41 and the second shift register circuit 42 are electrically connected to each corresponding pixel driving subcircuit group 20, i.e., the first shift register circuit 41 and the second shift register circuit 42 are electrically connected to the same pixel driving subcircuit group 20. In other examples, the first shift register circuit 41 is electrically connected to a portion of the pixel driving subcircuit groups 20 of each pixel driving subcircuit group 20. The second shift register circuit 42 is electrically connected to a portion of the pixel driving subcircuit groups 20 of each pixel driving subcircuit group 20. In other words, the first shift register circuit 41 and the second shift register circuit 42 are electrically connected to different pixel driving subcircuit groups 20.
[0073] In some of the above-described embodiments, the first shift register circuit 41 being electrically connected to the pixel driving subcircuit group 20 means that the first shift register circuit 41 is electrically connected to each pixel driving subcircuit in the pixel driving subcircuit group 20 via a plurality of scanning signal lines. The second shift register circuit 42 being electrically connected to the pixel driving subcircuit group 20 means that the second shift register circuit 42 is electrically connected to each pixel driving subcircuit in the pixel driving subcircuit group 20 via a plurality of scanning signal lines.
[0074] 4 and 5, in some embodiments, the shift register circuit 4 further includes a first backup circuit 43 and a second backup circuit 44. The first backup circuit 43 is a backup for the first shift register circuit 41, and is electrically connected to the corresponding pixel driving sub-circuit group 20 and arranged to provide the scan drive signal to the corresponding pixel driving sub-circuit group when the first shift register circuit 41 fails. The second backup circuit 44 is a backup for the second shift register circuit 42, and is electrically connected to the corresponding pixel driving sub-circuit group 20 and arranged to provide the scan drive signal to the corresponding pixel driving sub-circuit group 20 when the second shift register circuit 42 fails.
[0075] Here, the first backup circuit 43 being a backup for the first shift register circuit 41 means that the electronic elements included therein, the connection method thereof, and the operation principle thereof are the same. The first backup circuit 43 is usually provided separately on the array substrate 101 (i.e., it is not electrically connected to other circuits and exists as a redundant circuit). In this way, when the first shift register circuit 41 fails, the first backup circuit 43 can be electrically connected to the corresponding pixel driving sub-circuit group 20 by a method such as laser repair, and the first backup circuit 43 can be used instead of the first shift register circuit 41 to provide the scanning driving signal to the corresponding pixel driving sub-circuit group, thereby ensuring the normal use of the array substrate. It should be noted that the first backup circuit 43 and the first shift register circuit 41 may be located on different film layers. In this way, the first backup circuit 43 can protect the first shift register circuit 41 from static electricity, thereby effectively improving the yield of the array substrate and the corresponding display panel.
[0076] Regarding the relationship between the second backup circuit 44 and the second shift register circuit 42, the explanation regarding the relationship between the first backup circuit 43 and the first shift register circuit 41 described above can be referred to, and therefore the explanation will be omitted here.
[0077] Also, in some examples, the first backup circuit 43 and the first shift register circuit 41 are located between the same two rows of pixels 10 or two columns of pixels 10. The second backup circuit 44 and the second shift register circuit 42 are located between the same two rows of pixels 10 or two columns of pixels 10.
[0078] Due to the first backup circuit 43 and the first shift register circuit 41 being located on different film layers, the orthogonal projections of the first backup circuit 43 and the first shift register circuit 41 on the base of the array substrate may overlap, nearly overlap, or not overlap. Similarly, the orthogonal projections of the second backup circuit 44 and the second shift register circuit 42 on the base of the array substrate may overlap, nearly overlap, or not overlap.
[0079] 6 to 8, the base 100 of the array substrate 101 includes a first surface S1 and a second surface S2 opposite to the first surface S1. In some of the above embodiments, the pixel groups 1, the pixel circuit groups 2, and the shift register circuit 4 are each located on the first surface S1 of the base 100.
[0080] In some embodiments, still as shown in Figures 6 to 8, the array substrate 101 further includes at least one fan-out structure 200 located on the second surface S2 of the base 100, and at least one side structure 300 located on a side surface between the first surface S1 and the second surface S2 of the base 100.
[0081] Each fan-out structure 200 includes a plurality of signal connection lines 201 extending from an edge of the second surface S2 of the base 100 to a non-edge region thereof. Each fan-out structure 200 further includes a signal coupling terminal 202 electrically connected to the plurality of signal connection lines 201, the signal coupling terminal 202 being arranged to be coupled to an external input circuit. The external input circuit includes a control integrated circuit, a flexible circuit board, a printed circuit board, or the like.
[0082] Each side structure 300 includes a plurality of side connection lines 301, where one end of each side connection line 301 is electrically connected to one signal connection line 201 in the corresponding fan-out structure 200 and the other end is connected to a corresponding functional sub-circuit 3 or shift register circuit 4.
[0083] Here, the fan-out structures 200 and the side structures 300 may have a one-to-one correspondence, or multiple side structures 300 may correspond to one fan-out structure 200. The number of the fan-out structures 200 and the side structures 300 and their specific positions can be selectively set according to actual needs, so as to facilitate wiring and accurately realize the electrical connection of the corresponding circuits.
[0084] Each of the signal connecting lines 201 and each of the side connecting lines 301 is made of a conductive material. Illustratively, the conductive material is a metal containing at least one of silver, copper, etc., or a conductive silver paste, so that each of the signal connecting lines 201 and each of the side connecting lines 301 can ensure good conductivity.
[0085] Moreover, the side structure 300 is located on a side between the first surface S1 and the second surface S2 of the base 100 and can be provided in various manners, for example, an orthogonal projection of the side structure 300 on the second surface S2 of the base 100 does not overlap (as shown in FIG. 7) or only partially overlaps (as shown in FIG. 8) with an orthogonal projection of the corresponding fan-out structure 200 on said second surface S2.
[0086] In some embodiments of the present disclosure, a fan-out structure 200 is provided on the second surface S2 of the base 100, and a side edge structure 300 is provided on the side of the base 100, so that each signal wiring originally located in the non-display area of the array substrate can be provided on the side surface S2 of the base 100 and the second surface S2, which further reduces or eliminates the frame size of the array substrate and is advantageous for realizing seamless splicing.
[0087] When manufacturing the array substrate in some of the above embodiments, the circuit structures such as the pixel groups 1, the pixel circuit groups 2, and the shift register circuit 4 may be formed on the first surface S1 of the base 100 first, and then the fan-out structures 200 may be formed on the second surface S2 of the base 100; alternatively, the fan-out structures 200 may be formed on the second surface S2 of the base 100 first, and then the pixel groups 1, the pixel circuit groups 2, and the shift register circuit 4 may be formed on the first surface S1 of the base 100. That is, in some of the embodiments of the present disclosure, the order of forming the circuit structures on the first surface S1 of the base 100 and the fan-out structures on the second surface S2 of the base 100 is not limited.
[0088] Finally, each side structure 300 is formed on a side surface located between the first surface S1 and the second surface S2 of the base 100. Each side structure 300 can be formed by one of 3D printing, photocopying, sputtering, or etching.
[0089] It should be noted that the drawings in the above several embodiments merely show schematic circuit layouts in the array substrate 101, i.e., merely limit the spatial locations of different circuit configurations in the array substrate 101. For the electrical elements in each of the different circuit configurations and the corresponding electrical connection relationships between them, reference can be made to related solutions in the prior art.
[0090] In order to more clearly describe the array substrate 101 in the above embodiments, the following description takes the array substrate in a Micro-LED display panel or a Mini-LED display panel as an example.
[0091] In the array substrate of the Micro-LED display panel or the Mini-LED display panel, as shown in Fig. 3, based on the mass transfer process of the LED and its conductive characteristics, the LED coupling terminal of each sub-pixel in each pixel 10 is located in the central region of the pixel 10, and the distance L from each LED coupling terminal close to the edge of the display area AA to the corresponding edge is usually a constant value, for example, within the range of 150μm to 200um. Therefore, the functional sub-circuits 30, such as the data selection circuit, the electrostatic discharge protection circuit, and the signal wiring concentration area, which occupy a large space in the array substrate, are arranged in the region close to the edge of the display area AA, for example, in the space corresponding to the pixels 10 in the first row and the pixels 10 in the second row, or in the space corresponding to the pixels 10 in the last row and the second row from the last row, so that the layout of each circuit configuration in the array substrate can be designed more rationally, and the space utilization rate in the display area AA of the array substrate can be effectively improved.
[0092] 4 and 5, an electrostatic discharge protection circuit 32 and a signal wiring concentrated area 33 are provided in an edge area of the display area AA or in a space of some rows of pixels 10 or some columns of pixels 10 extending inward from the edge, thereby facilitating electrical connection to an external input circuit (e.g., an integrated circuit IC) via a side structure 300 located on a side surface of the base 100, and facilitating coupling to the external input circuit, for example, via a fan-out structure 200 corresponding to the side structure 300. Here, the electrostatic discharge protection circuit 32 and the signal wiring concentrated area 33 may be arranged in a ring shape along the edge of the display area AA.
[0093] By providing a data selection circuit 31 within the space of pixels 10 in some rows extending inward from the edge of the display area AA, and providing a pixel driving sub-circuit group 20 and a shift register circuit 4 within the space of pixels 10 in some columns within the display area AA, it is possible to effectively reduce signal overlap and reduce signal transmission delays.
[0094] In some examples, each type of signal line (e.g., an emission signal line EM, an enable signal line Vinit, a reset signal line Reset, or a reference voltage line Vref, etc.) in the display area AA of the array substrate is connected in a grid-like manner, and the difference in the corresponding signal input can be reasonably reduced by using a global input form for the entire panel.
[0095] In some examples, the structure of the pixel driving sub-circuit 21 is as shown in FIG. 9. The pixel driving sub-circuit 21 includes a first transistor T1, a second transistor T2, a third transistor T3, a fourth transistor T4, a fifth transistor T5, a sixth transistor T6, a seventh transistor T7, a first storage capacitor C1, and a light-emitting element D. Here, a first electrode of the first transistor T1 is connected to an initial voltage signal terminal Vint. A second electrode of the first transistor T1 is connected to a second electrode of the first storage capacitor C1, a first electrode of the second transistor T2, and a control electrode of the third transistor T3. A control electrode of the first transistor T1 is connected to a reset signal terminal Reset. A second electrode of the second transistor T2 is connected to a second electrode of the third transistor T3 and a first electrode of the sixth transistor T6. A control electrode of the second transistor T2 is connected to a gate scanning signal line Gate. A first electrode of the third transistor T3 is connected to a first power supply voltage terminal VDD. A first electrode of the fourth transistor T4 is connected to a data line Data. A second electrode of the fourth transistor T4 is connected to a second electrode of the fifth transistor T5, a second electrode of the seventh transistor T7, and a first electrode of the first storage capacitor C1. A control electrode of the fourth transistor T4 is connected to the gate scanning signal line Gate. A first electrode of the fifth transistor T5 is connected to the reference voltage signal terminal Vref. A control electrode of the fifth transistor T5 is connected to the light emission scanning signal line EM. A second electrode of the sixth transistor T6 is connected to a first electrode of the light emitting element D. A control electrode of the sixth transistor T6 is connected to the light emission scanning signal line EM. A first electrode of the seventh transistor T7 is connected to the reference voltage signal terminal Vref. A control electrode of the seventh transistor T7 is connected to the reset signal terminal Reset. A second electrode of the light emitting element is connected to the second power supply voltage terminal VSS.
[0096] In some examples, the shift register circuit 4 includes a plurality of cascaded shift registers, where the structure of each shift register is as shown in FIG. 10. The shift register includes an eighth transistor T8, a ninth transistor T9, a tenth transistor T10, an eleventh transistor T11, a twelfth transistor T12, a thirteenth transistor T13, a fourteenth transistor T14, a second storage capacitor C2, and a third storage capacitor C3. Here, a first electrode of the eighth transistor T8 is connected to a signal input terminal Input. A second electrode of the eighth transistor T8 is connected to an N1 node. A control electrode of the eighth transistor T8 is connected to a first clock signal terminal CLK. A first electrode of the ninth transistor T9 is connected to a first clock signal terminal CLK. A second electrode of the ninth transistor T9 is connected to an N2 node. A control electrode of the ninth transistor T9 is connected to an N1 node. A first electrode of the tenth transistor T10 is connected to a low level signal terminal VGL. A second electrode of the tenth transistor T10 is connected to an N2 node. A control electrode of the tenth transistor T10 is connected to the first clock signal terminal CLK. A first electrode of the eleventh transistor T11 is connected to the high level signal terminal VGH and the second electrode of the third storage capacitor C3. A second electrode of the eleventh transistor T11 is connected to the signal output terminal Output. A control electrode of the eleventh transistor T11 is connected to the N2 node. A first electrode of the third storage capacitor C3 is connected to the N2 node. A first electrode of the twelfth transistor T12 is connected to the second clock signal terminal CLKB. A second electrode of the twelfth transistor T12 is connected to the second electrode of the second storage capacitor C2 and the signal output terminal Output. A control electrode of the twelfth transistor T12 is connected to the first electrode of the second storage capacitor C2. A first electrode of the thirteenth transistor T13 is connected to the high level signal terminal VGH. A second electrode of the thirteenth transistor T13 is connected to the first electrode of the fourteenth transistor T14. A control electrode of the thirteenth transistor T13 is connected to the N2 node. A second electrode of the fourteenth transistor T14 is connected to the N1 node. A control electrode of the fourteenth transistor T14 is connected to the second clock signal terminal CLKB. A first electrode of the fifteenth transistor T15 is connected to the N1 node.A second electrode of the fifteenth transistor T15 is connected to a first electrode of the second storage capacitor C2. A control electrode of the fifteenth transistor T15 is connected to the low level signal terminal VGL.
[0097] In some examples, the data selection circuit 31 includes a sixteenth transistor T16, a seventeenth transistor T17, and an eighteenth transistor T18. Here, the first electrode of the sixteenth transistor T16, the first electrode of the seventeenth transistor T17, and the first electrode of the eighteenth transistor T18 are connected to each other and are connected to a source electrode driver (not shown) via a data voltage lead-in line Data1'. The second electrode of the sixteenth transistor T16 is connected to a first data line Data11, and the control electrode of the sixteenth transistor T16 is connected to a first output terminal of a timing controller (not shown). The second electrode of the seventeenth transistor T17 is connected to a second data line Data12, and the control electrode of the seventeenth transistor T17 is connected to a second output terminal of the timing controller. The second electrode of the eighteenth transistor T18 is connected to a third data line Data13, and the control electrode of the eighteenth transistor T18 is connected to a third output terminal of the timing controller.
[0098] The transistors used in the above examples may be thin film transistors or field effect transistors, or other devices with the same characteristics. The source and drain electrodes of the transistors used are symmetrical, so there is no distinction between them.
[0099] In some of the above examples, in order to distinguish between the source electrode and the drain electrode of a transistor, one of the source electrode and the drain electrode is called the first electrode, the other is called the second electrode, and the gate electrode is called the control electrode. In addition, transistors can be classified into N-type and P-type according to the characteristics of the transistor. When a P-type transistor is used, the first electrode is the source electrode of the P-type transistor, and the second electrode is the drain electrode of the P-type transistor, and when a low level is input to the gate electrode, the source electrode and the drain electrode are turned on. When an N-type transistor is used, the first electrode is the source electrode of the N-type transistor, and the second electrode is the drain electrode of the N-type transistor, and when a high level is input to the gate electrode, the source electrode and the drain electrode are turned on.
[0100] In addition, although each transistor of the pixel driving sub-circuit 21 described above has been described using an N-type transistor as an example, a person skilled in the art can easily come up with the idea of realizing it using a P-type transistor without requiring any special ingenuity, and therefore this is within the scope of protection of the present disclosure.
[0101] In some embodiments, the array substrate 101 adopts the structure as shown above, and a side connection line 301 in its side structure 300 is connected to a signal connection line 201 in the corresponding fan-out structure 200, and is connected to a corresponding pixel driving sub-circuit 21 in the display area AA, thereby transmitting a data signal to the pixel driving sub-circuit 21. The connection structure between the side connection line 301, the corresponding signal connection line 201, and the corresponding pixel driving sub-circuit 21 is as shown in FIG.
[0102] Fig. 12 merely illustrates a schematic diagram of the positional relationship of each film layer at the edge portion of the array substrate 101, and does not limit the structure of the array substrate 101. Furthermore, Fig. 12 illustrates only some elements such as the fourth transistor T4 and the sixth transistor T6, and the fourth transistor T4 and the sixth transistor T6 are top-gate type thin film transistors in the following description.
[0103] 12, the array substrate 101 includes a base 100, a buffer layer 110 located on a first surface S1 of the base 100, an active layer of a fourth transistor T4 and an active layer of a sixth transistor T6 located on the buffer layer 110 and provided in the same layer, a gate insulating layer 120 located on a layer in which the active layer of the fourth transistor T4 and the active layer of the sixth transistor T6 are located, a gate electrode of the fourth transistor T4 and a gate electrode of the sixth transistor T6 located on the gate insulating layer 120 and provided in the same layer, a first insulating layer 130 located on a layer in which the gate electrode of the fourth transistor T4 and the gate electrode of the sixth transistor T6 are located, a data line Data located on the first insulating layer 130 and provided in the same layer, the data line Data connected to a source electrode and a drain electrode of the fourth transistor T4, a source electrode and a drain electrode of the sixth transistor T6, and the source electrode of the fourth transistor T4, a first planarization layer 141 located on a layer in which a data line Data connected to a source electrode and a drain electrode of the sixth transistor T4, a source electrode and a drain electrode of the sixth transistor T6, and a source electrode of the fourth transistor T4 are located; a first passivation layer 142 located on the first planarization layer 141; a second sub-signal introduction line 152 and a first connection electrode 160 located on the first planarization layer 141 and provided in the same layer, where the second sub-signal introduction line 152 is a first via penetrating the planarization layer 141 and the first passivation layer 142, which is connected to the data line Data, and a first connection electrode 160 is connected to the drain electrode of the sixth transistor T6 by a third via penetrating the first planarization layer 141 and the first passivation layer 142; a second planarization layer 143 located above the layer in which the second sub-signal introduction line 152 and the first connection electrode 160 are located; and a second passivation layer 144 located above the second planarization layer 143;a first sub-signal introduction line 151, a first conductive pad 171, and a second conductive pad 172 located on the second passivation layer 144 and provided in the same layer, where the first sub-signal introduction line 151 extends from the display area to the signal wiring concentrated area and is connected to the second sub-signal introduction line 152 by a second via that penetrates the second planarization layer 143 and the second passivation layer 144, and the first conductive pad 171 is connected to the second sub-signal introduction line 152 by a second via that penetrates the second planarization layer 143 and the second passivation layer 144; a third passivation layer 180 located above the first sub-signal introduction wire 151, the first conductive pad 171, and the second conductive pad 172, wherein the first electrode of the light-emitting element D is electrically connected to the first conductive pad 171 by a fifth via that penetrates the third passivation layer 180, and the second electrode is electrically connected to the second conductive pad 172 by a fifth via that penetrates the third passivation layer 180; The second surface of the base 100 is provided with a signal connection line 201, a fourth passivation layer 190 located on the signal connection line 201, and a signal coupling terminal 202 and a second pad 192 located on the fourth passivation layer 190, where the second pad 192 is connected to one end of the signal connection line 201 by a sixth via that penetrates the fourth passivation layer 190, and the signal coupling terminal 202 is connected to the other end of the signal connection line 201 by a seventh via that penetrates the fourth passivation layer 190; the first sub-signal lead-in line 151 is connected to a first pad 191 in the signal wiring concentration area, and the first pad 191 is connected to a second pad 192 on the second surface of the base 100 by a side connection line 301. The control IC 5 is electrically connected to the signal coupling terminal 202 located in the base 100 of the array substrate, and is arranged to output a control signal to the signal coupling terminal 202.
[0104] The first conductive pad 171 and the second conductive pad 172 are respectively electrically connected to two pins of the light-emitting element D, which may be a micro inorganic light-emitting diode, and may also be a current-type light-emitting diode, such as a micro light-emitting diode (abbreviated as Micro LED) or a mini light-emitting diode (abbreviated as Mini LED).
[0105] Of course, in some other embodiments, the light-emitting element D may be an organic light-emitting diode (abbreviated as OLED), whereby one of the first electrode and the second electrode of the light-emitting element D is an anode and the other is a cathode.
[0106] Some embodiments of the present disclosure provide a display panel and a display driving method. As shown in Fig. 13, the display panel 1001 includes an array substrate 101 according to some embodiments as described above. The display driving method is applied to the display panel 1001. The display driving method includes controlling each pixel driving sub-circuit 20 in the at least one pixel circuit group 2 to provide pixel driving signals to two rows of sub-pixels 11 or two columns of sub-pixels 11 adjacent to and electrically connected to the pixel driving sub-circuit group.
[0107] The beneficial effects that can be achieved by the display panel 1001 and the display driving method according to some embodiments of the present disclosure are the same as the beneficial effects that can be achieved by the array substrate 101 described in the above-mentioned some embodiments, and the description thereof will be omitted here.
[0108] 13 , in some embodiments, the display panel 1001 further includes a control integrated circuit (IC) 5. The control IC 5 is located on the second surface S2 of the base 100 of the array substrate 101. The control IC 5 is electrically connected to a plurality of signal connection lines 201 of a corresponding fan-out structure 200 in the array substrate 101, and is arranged to output control signals to the plurality of signal connection lines 201.
[0109] Here, the control signals outputted from the control IC 5 to the plurality of signal connection lines 201 can be transmitted to each circuit structure in the display area AA of the array substrate 101 via the side connection lines 301 in the corresponding side structures 300 .
[0110] The display driving method applied to the display panel 1001 further includes a control IC 5 transmitting control signals to the at least one pixel circuit group 2 and / or the shift register circuit 4 located on the first surface S1 of the base 100 of the array substrate 101 via at least one side structure 300.
[0111] In the display panel 1001 according to some embodiments of the present disclosure, the control IC 5 is located on the second surface S2 of the base 100, and can output a control signal on the back surface of the display area AA of the array substrate 101. This effectively reduces the need for a non-display area on the first surface S1 for the array substrate 101, that is, the frame of the array substrate 101 can be reduced or eliminated, which is favorable for realizing seamless splicing.
[0112] In addition, in some other examples, the display panel 1001 further includes a flexible printed circuit (abbreviated as FPC) located on the second surface S2 of the base 100 of the array substrate 101. The flexible printed circuit can be electrically connected to the multiple signal connection lines 201 of the corresponding fan-out structure 200 in the array substrate 101 by a chip-on-film or a lead wire, etc., and is arranged to output signals to the multiple signal connection lines 201.
[0113] Some embodiments of the present disclosure do not limit the type of the display panel 1001. Illustratively, the display panel 1001 is a micro light emitting diode (abbreviated as Micro-LED) display panel or a mini light emitting diode (abbreviated as Mini-LED) display panel. Of course, the display panel 1001 may be a liquid crystal display panel (abbreviated as LCD) or an organic light-emitting diode (abbreviated as OLED) display panel.
[0114] Some embodiments of the present disclosure provide a splicing display panel. As shown in Fig. 14, the splicing display panel 1000 includes at least two display panels 1001 according to some embodiments as described above spliced together.
[0115] Illustratively, as shown in FIG. 14, the splicing display panel is formed by seamless splicing of four display panels 1001. There are no seams on the display screen of the splicing display panel, or the seams are so small that they are barely visible. The splicing display panel has a large display screen and good display quality.
[0116] Each display panel in the splicing display panel according to some embodiments of the present disclosure is the same as the display panel described in the above several embodiments, and the description of the beneficial effects they can achieve is omitted here.
[0117] In the above-described description of the embodiments, the particular features, structures, materials, or characteristics may be combined in any suitable manner in any one or more embodiments or examples.
[0118] The above are merely specific embodiments of the present disclosure, and the scope of protection of the present disclosure is not limited thereto, and any modifications or replacements that can be easily conceived by a person skilled in the art within the technical scope of the present disclosure are all included within the technical scope of the present disclosure. Therefore, the scope of protection of the present disclosure shall be equivalent to the scope of protection of the claims.
Claims
1. A display device comprising: a display area; at least one pixel group; at least one pixel circuit group; and at least one shift register circuit; the at least one pixel group is located within the display area, each of the at least one pixel group includes a plurality of pixels arranged in an array, each of the plurality of pixels includes at least one sub-pixel; Each of the at least one pixel circuit group is located between two adjacent rows of pixels or two adjacent columns of pixels in the corresponding pixel group, the at least one pixel circuit group includes at least one pixel drive sub-circuit group arranged to provide a pixel drive signal to each sub-pixel electrically connected to the pixel drive sub-circuit; the at least one shift register circuit and the at least one pixel driving sub-circuit group are located between two different rows of pixels or between two different columns of pixels, respectively; Array board.
2. Each of the at least one pixel driving subcircuit group is electrically connected to corresponding two adjacent rows of subpixels or two adjacent columns of subpixels. The array substrate according to claim 1 .
3. the at least one pixel group is at least two pixel groups; the at least two pixel groups are arranged along a row direction; each of the pixel driving subcircuit groups is located between two adjacent columns of subpixels in the corresponding pixel group, and a length of each of the pixel driving subcircuit groups in the column direction is shorter than a length of the pixel group in the column direction; the at least one pixel circuit group further includes at least one functional subcircuit located on at least one side of each of the pixel driving subcircuit groups along the column direction, the functional subcircuit including a data selection circuit, an electrostatic discharge protection circuit, or a signal wiring concentration area; Or, the at least two pixel groups are arranged along a column direction; each of the pixel driving subcircuit groups is located between two adjacent rows of subpixels in the corresponding pixel group, and a length of each of the pixel driving subcircuit groups in the row direction is shorter than a length of the pixel group in the row direction; the at least one pixel circuit group further includes at least one functional subcircuit located on at least one side of each of the pixel driving subcircuit groups along the row direction, the functional subcircuit including a data selection circuit, an electrostatic discharge protection circuit, or a signal wiring concentration area; The array substrate according to claim 2 .
4. the at least one shift register circuit is correspondingly electrically connected to the at least one pixel drive sub-circuit group and is arranged to provide a scan drive signal to the at least one pixel drive sub-circuit group. The array substrate according to claim 2 .
5. the at least one pixel group is at least two pixel groups; the at least two pixel groups are arranged along a row direction; the at least one shift register circuit is located between two of the pixel groups or between two adjacent columns of sub-pixels in a corresponding pixel group; a length of the shift register circuit in the column direction is shorter than a length of the pixel group in the column direction; the at least one pixel circuit group further includes at least one functional sub-circuit located on at least one side of the shift register circuit along the column direction, the functional sub-circuit including a data selection circuit, an electrostatic discharge protection circuit, or a signal wiring concentration area; Or, the at least two pixel groups are arranged along a column direction; the at least one shift register circuit is located between two of the pixel groups or between two adjacent rows of sub-pixels in a corresponding pixel group; a length of the shift register circuit in the row direction is shorter than a length of the pixel group in the row direction; the at least one pixel circuit group further includes at least one functional sub-circuit located on at least one side of the shift register circuit along the row direction; the functional sub-circuit includes a data selection circuit, an electrostatic discharge protection circuit, or a signal wiring concentration area.
5. The array substrate according to claim 4.
6. the at least one pixel drive sub-circuit group is a plurality of pixel drive sub-circuit groups; the at least one shift register circuit includes a first shift register circuit and a second shift register circuit; the first shift register circuit and the second shift register circuit are electrically connected to correspond to the plurality of pixel driving sub-circuit groups, respectively; Or, the first shift register circuit is electrically connected to correspond to a portion of the pixel driving sub-circuit groups among the plurality of pixel driving sub-circuit groups, and the second shift register circuit is electrically connected to correspond to another portion of the pixel driving sub-circuit groups among the plurality of pixel driving sub-circuit groups.
5. The array substrate according to claim 4.
7. the first shift register circuit and the second shift register circuit are provided adjacent to each other in a row direction or a column direction, Or, the first shift register circuit and the second shift register circuit are located between pixels of different two rows or between pixels of different two columns, 7. The array substrate according to claim 6.
8. the at least one shift register circuit further includes a first backup circuit and a second backup circuit; the first backup circuit is a backup for the first shift register circuit, and is electrically connected to a corresponding pixel driving sub-circuit group and arranged to provide a scan drive signal to the corresponding pixel driving sub-circuit group when the first shift register circuit fails; the second backup circuit is a backup for the second shift register circuit, and is electrically connected to a corresponding pixel drive sub-circuit group and arranged to provide a scan drive signal to the corresponding pixel drive sub-circuit group when the second shift register circuit fails.
8. The array substrate according to claim 6 or 7.
9. the first backup circuit and the first shift register circuit are located between the pixels of the same two rows or the pixels of the same two columns; the second backup circuit and the second shift register circuit are located between the pixels of the same two rows or the pixels of the same two columns; The array substrate according to claim 8 .
10. 6. The array substrate according to claim 3, further comprising a base, at least one fan-out structure, and at least one side structure; the base includes a first surface and a second surface opposite the first surface, the at least one pixel group and the at least one pixel circuit group being located on the first surface; the at least one fan-out structure is located on the second surface, each of the at least one fan-out structure including a plurality of signal connection lines extending from an edge of the second surface to a non-edge region of the second surface; each of the at least one side structure includes a plurality of side connection lines; wherein one end of each of the plurality of side connection lines is electrically connected to one signal connection line in a corresponding fan-out structure, and the other end is connected to the corresponding functional sub-circuit; or, if the array substrate includes a shift register circuit, the shift register circuit is located on the first surface, and one end of each of the plurality of side connection lines is electrically connected to one signal connection line in a corresponding fan-out structure, and the other end is connected to the corresponding functional sub-circuit or the shift register circuit. Array board.
11. A display panel comprising the array substrate according to any one of claims 1 to 10.
12. A control integrated circuit is further provided, the control integrated circuit is located on a second surface of a base of the array substrate, the control integrated circuit being electrically connected to a plurality of signal connection lines in a corresponding fan-out structure of the array substrate and configured to output control signals to the plurality of signal connection lines; The display panel according to claim 11.
13. A display panel comprising at least two display panels according to claim 11 or claim 12 spliced together. Splicing display panel.
14. A display driving method applied to the display panel according to claim 11 or 12, comprising: The display driving method includes: controlling each pixel drive sub-circuit in the at least one pixel circuit group to provide pixel drive signals to two rows or two columns of sub-pixels adjacent to and electrically connected to the pixel drive sub-circuit group; Display driving method.
15. a control integrated circuit located on the second surface of the base of the array substrate, further comprising: transmitting control signals to the at least one pixel circuit group and / or a shift register circuit located on the first surface of the base of the array substrate via at least one side structure, respectively; The display driving method according to claim 14.
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