Display substrate and manufacturing method for the same, and display device

The optimized layout and wiring of shift register units in the display substrate address spatial congestion and signal interference issues, enabling a narrower frame and improved display quality.

JP2025075034APending Publication Date: 2025-05-14BOE TECHNOLOGY GROUP CO LTD +1

Patent Information

Application Number
JP2025019479
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2025-02-07
Publication Date
2025-05-14

AI Technical Summary

Technical Problem

Existing display panel designs face challenges in achieving a narrow frame design due to spatial congestion and signal interference caused by inefficient layout and wiring of shift register units, which affect display quality.

Method used

The display substrate incorporates a shift register unit with a specific layout and wiring configuration, including elongated input transistors and vertically arranged control and noise reduction transistors, optimized clock signal lines, and capacitors, to reduce spatial congestion and improve signal integrity.

Benefits of technology

This configuration allows for a narrower frame design and enhances display quality by reducing parasitic capacitance and signal interference, facilitating a more efficient display panel.

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Abstract

To provide a display substrate and a manufacturing method for the same, and a display device.SOLUTION: A display substrate includes a base substrate, and a shift register unit and a first clock signal line provided on the base substrate. The first clock signal line extends in a first direction on the base substrate, and is configured to supply a first clock signal to the shift register unit. The shift register unit includes an input circuit, an output circuit, a first control circuit, and an output control circuit. The input circuit includes an input transistor. An active layer of the input transistor is long and extending along a second direction. The second direction is different from the first direction. The display substrate optimizes the layout of a line structure and is advantageous in achieving the design of a narrower frame of a display panel.SELECTED DRAWING: Figure 2A
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Description

[Technical field]

[0001] The embodiments of the present disclosure relate to a display substrate, a manufacturing method thereof, and a display device. [Background technology]

[0002] In the display technology field, a pixel array of, for example, a liquid crystal display panel or an organic light emitting diode (OLED) display panel generally includes a number of rows of gate lines and a number of columns of data lines intersecting with the gate lines. The driving of the gate lines can be realized by a bound integrated driving circuit. In recent years, with the continuous improvement of the manufacturing process of amorphous silicon thin film transistors or oxide thin film transistors, a gate line driving circuit can be directly integrated on a thin film transistor array substrate to form a GOA (Gate Driver On Array) to drive the gate lines. For example, a GOA including a number of cascaded shift register units can be adopted to provide switch-state voltage signals (scanning signals) to the gate lines of the pixel array, for example to control the gate lines to be turned on sequentially, and the data lines provide data signals to the pixel units of the corresponding rows in the pixel array, thereby forming gray scale voltages required for the gray scale of a display image for each pixel unit, and then displaying an image of one frame. Summary of the Invention [Means for solving the problem]

[0003] At least one embodiment of the present disclosure provides a display substrate, the display substrate including a base substrate, a shift register unit and a first clock signal line provided on the base substrate, the first clock signal line extending along a first direction on the base substrate and configured to provide a first clock signal to the shift register unit, the shift register unit including an input circuit, an output circuit, a first control circuit, and an output control circuit, the input circuit configured to input an input signal to a first node according to the first clock signal, the output circuit configured to output an output signal to an output terminal, the first control circuit configured to control a level of a second node according to a level of the first node and the first clock signal, the output control circuit configured to control a level of the second node according to a level of the first node and the first clock signal, the input circuit includes an input transistor, an active layer of the input transistor has an elongated shape extending along a second direction, the second direction being different from the first direction, the input transistor includes a first gate electrode, a second gate electrode, and a connection electrode connecting the first gate electrode and the second gate electrode, the connection electrode extends along the first direction and includes a first portion connected to the first gate electrode, a second portion connected to the second gate electrode, and a third portion extending along the second direction and connecting the first portion and the second portion, the third portion of the connection electrode being connected to the first clock signal line to receive the first clock signal.

[0004] For example, in a display substrate according to at least one embodiment of the present disclosure, the angle between the first direction and the second direction is between 70° and 90°.

[0005] For example, in a display substrate according to at least one embodiment of the present disclosure, a first electrode of the input transistor is connected to a signal input electrode by a first connection wiring extending along the second direction, thereby receiving the input signal.

[0006] For example, in a display substrate according to at least one embodiment of the present disclosure, the shift register unit further includes a wiring switching electrode, a first electrode of the input transistor is electrically connected to a first end of the wiring switching electrode, the wiring switching electrode is located in a layer different from an active layer of the input transistor, a second end of the wiring switching electrode is connected to a first end of the first connecting wiring, the wiring switching electrode is located in a layer different from the first connecting wiring, the second end of the first connecting wiring is electrically connected to the signal input electrode, and the wiring switching electrode is located in the same layer as the signal input electrode.

[0007] For example, in a display substrate according to at least one embodiment of the present disclosure, the shift register unit further includes a first insulating layer, a second insulating layer, and a third insulating layer, the first insulating layer is located between an active layer of the input transistor and the first connecting wiring, the second insulating layer and the third insulating layer are located between the first connecting wiring and the wiring switching electrode, a first electrode of the input transistor is located in the same layer as the wiring switching electrode, a second end of the wiring switching electrode is connected to a first end of the first connecting wiring through a via hole penetrating the second insulating layer and the third insulating layer, and the second end of the first connecting wiring is electrically connected to the signal input electrode through a via hole penetrating the second insulating layer and the third insulating layer.

[0008] For example, in a display substrate according to at least one embodiment of the present disclosure, the display substrate further includes a second clock signal line and is configured to provide a second clock signal to the shift register unit, and the shift register unit further includes a second control circuit, which is connected to the first node and the second node, and is configured to control the level of the first node by controlling the level of the second node and the second clock signal.

[0009] For example, in a display substrate according to at least one embodiment of the present disclosure, the second control circuit includes a first noise reduction transistor and a second noise reduction transistor, an active layer of the first noise reduction transistor and an active layer of the second noise reduction transistor are one continuous noise reduction semiconductor layer, the noise reduction semiconductor layer extends along the first direction and is juxtaposed with the active layer of the input transistor in the first direction, a gate electrode of the first noise reduction transistor and a gate electrode of the second noise reduction transistor extend along the second direction and are juxtaposed in the first direction, a first electrode of the input transistor is connected to the first node, and a gate electrode of the first noise reduction transistor is connected to the second node.

[0010] For example, in a display substrate according to at least one embodiment of the present disclosure, a gate electrode of the second noise reduction transistor is electrically connected to the second clock signal line by a third connection wiring, the third connection wiring includes a third sub-connection wiring and a fourth sub-connection wiring, the third sub-connection wiring is connected to the gate electrode of the second noise reduction transistor and extends along the first direction, the orthogonal projection of the third sub-connection wiring onto the base substrate and the orthogonal projection of the active layer of the second noise reduction transistor onto the base substrate are arranged opposite to each other along the second direction, the fourth sub-connection wiring is connected to the third sub-connection wiring and the second clock signal line and extends along the second direction, and the orthogonal projection of the fourth sub-connection wiring onto the base substrate is located on the side of the orthogonal projection of the active layer of the second noise reduction transistor onto the base substrate that is away from the orthogonal projection of the active layer of the first noise reduction transistor onto the base substrate.

[0011] For example, a display substrate according to at least one embodiment of the present disclosure further includes a fourth connecting wiring, a first insulating layer, a second insulating layer, and a third insulating layer, wherein the first insulating layer is located between the active layer of the input transistor and the gate electrode of the input transistor, the second insulating layer and the third insulating layer are located between the gate electrode of the input transistor and the fourth connecting wiring, the third sub-connecting wiring and the fourth sub-connecting wiring are integrally formed, and the third sub-connecting wiring is connected to the fourth connecting wiring through a via hole that penetrates the second insulating layer and the third insulating layer.

[0012] For example, a display substrate according to at least one embodiment of the present disclosure further includes a fourth connecting wiring, a first insulating layer, a second insulating layer, and a third insulating layer, wherein the first insulating layer is located between the active layer of the input transistor and the gate electrode of the input transistor, the second insulating layer and the third insulating layer are located between the gate electrode of the input transistor and the fourth connecting wiring, the third sub-connecting wiring is connected to the fourth connecting wiring via a via hole penetrating the second insulating layer and the third insulating layer, and the fourth sub-connecting wiring is connected to the fourth connecting wiring via a via hole penetrating the second insulating layer and the third insulating layer.

[0013] For example, in a display substrate according to at least one embodiment of the present disclosure, the first control circuit includes a first control transistor and a second control transistor, an active layer of the first control transistor and an active layer of the second control transistor are one continuous control semiconductor layer, the control semiconductor layer extends along the first direction, and a gate electrode of the first control transistor and a gate electrode of the second control transistor extend along the second direction and are arranged side by side in the first direction.

[0014] For example, in a display substrate according to at least one embodiment of the present disclosure, the active layer of the first control transistor, the active layer of the second control transistor and the active layer of the input transistor are arranged in parallel in the second direction.

[0015] For example, in a display substrate according to at least one embodiment of the present disclosure, the active layer of the input transistor is located on a virtual line along which the active layer of the first noise reduction transistor and the active layer of the second noise reduction transistor extend along the first direction, and the active layer of the first control transistor and the active layer of the second control transistor are located on a virtual line along which the active layer of the input transistor extends along the second direction.

[0016] For example, in a display substrate according to at least one embodiment of the present disclosure, the shift register unit further includes an intermediate switching electrode, wherein the active layer of the first control transistor and the active layer of the second control transistor, and the active layer of the first noise reduction transistor and the active layer of the second noise reduction transistor are juxtaposed in the second direction, the orthogonal projection of the intermediate switching electrode onto the base substrate is located between the orthogonal projection of the active layer of the first control transistor and the active layer of the second control transistor onto the base substrate and the orthogonal projection of the active layer of the first noise reduction transistor and the active layer of the second noise reduction transistor onto the base substrate, and the gate electrode of the first noise reduction transistor is connected to the first electrode of the first control transistor and the first electrode of the second control transistor by the intermediate switching electrode.

[0017] For example, in a display substrate according to at least one embodiment of the present disclosure, the second node includes the middle switching electrode.

[0018] For example, in a display substrate according to at least one embodiment of the present disclosure, the shift register unit further includes a first insulating layer and a second insulating layer, the first insulating layer being located between an active layer of the first noise reduction transistor and a gate electrode of the first noise reduction transistor in a direction perpendicular to the base substrate, the second insulating layer being located between a gate electrode of the first noise reduction transistor and the intermediate switching electrode in a direction perpendicular to the base substrate, the gate electrode of the first noise reduction transistor being connected to a first end of the intermediate switching electrode through a via hole penetrating the second insulating layer, and a first electrode of the first control transistor and a first electrode of the second control transistor being connected to a second end of the intermediate switching electrode and being located in the same layer as the intermediate switching electrode.

[0019] For example, in a display substrate according to at least one embodiment of the present disclosure, the second node includes the middle switching electrode.

[0020] For example, in a display substrate according to at least one embodiment of the present disclosure, the shift register unit further includes a first insulating layer, a second insulating layer, a third insulating layer, and a second connecting wire, the first insulating layer being located between an active layer of the first noise reduction transistor and a gate electrode of the first noise reduction transistor in a direction perpendicular to the base substrate, the second insulating layer being located between the gate electrode of the first noise reduction transistor and the intermediate switching electrode in a direction perpendicular to the base substrate, and the third insulating layer being located between the intermediate switching electrode and the second connecting wire in a direction perpendicular to the base substrate. a first electrode of the first control transistor and a first electrode of the second control transistor are connected to the second sub-connection wiring and located in the same layer, the second connecting wiring includes a first sub-connection wiring and a second sub-connection wiring, a gate electrode of the first noise reduction transistor is connected to the first sub-connection wiring through a via hole that penetrates the second insulating layer and the third insulating layer, a first end of the intermediate switching electrode is connected to the first sub-connection wiring through a via hole that penetrates the third insulating layer, a first electrode of the first control transistor and a first electrode of the second control transistor are connected to the second sub-connection wiring and are located in the same layer, and a second end of the intermediate switching electrode is connected to the second sub-connection wiring through a via hole that penetrates the third insulating layer.

[0021] For example, in a display substrate according to at least one embodiment of the present disclosure, the second node includes the middle switching electrode and the second connecting line.

[0022] For example, in a display substrate according to at least one embodiment of the present disclosure, the shift register unit further includes a voltage stabilizing circuit, the voltage stabilizing circuit is connected to the first node and a third node and configured to stabilize a level of the third node, and the output circuit is connected to the third node and configured to output the output signal to the output terminal under control of the level of the third node.

[0023] For example, a display substrate according to at least one embodiment of the present disclosure further includes a first power line and a second power line, and is configured to provide a first voltage and a second voltage to the shift register unit, the voltage stabilization circuit includes a voltage stabilization transistor, the second power line includes a protrusion protruding in the second direction, a positive projection of an active layer of the voltage stabilization transistor onto the base substrate is located between a positive projection of an active layer of the second control transistor onto the base substrate and a positive projection of an active layer of the second noise reduction transistor onto the base substrate in the first direction, and a second electrode of the second control transistor and a gate electrode of the voltage stabilization transistor are both connected to the protrusion on the second power line to receive the second voltage, a first electrode of the voltage stabilization transistor is connected to the third node, and a second electrode of the voltage stabilization transistor is connected to the first node.

[0024] For example, in a display substrate according to at least one embodiment of the present disclosure, a first electrode of the input transistor is connected to a signal input electrode to receive the input signal, the output control circuit includes an output control transistor and a first capacitor, first and second electrodes of the first capacitor include a notch, and an orthogonal projection of the signal input electrode onto the base substrate falls within the notch of the orthogonal projection of the first capacitor onto the base substrate.

[0025] For example, in a display substrate according to at least one embodiment of the present disclosure, the output circuit includes an output transistor and a second capacitor, a first electrode of the output transistor is connected to the fourth connecting wiring, the fourth connecting wiring is connected to the second clock signal line by the third connecting wiring, a positive projection of a third sub-connecting wiring of the third connecting wiring onto the base substrate is located on a side of the positive projection of the active layer of the second noise reduction transistor onto the base substrate that is close to the positive projection of the active layer of the output transistor onto the base substrate, a gate electrode of the output transistor is electrically connected to a first electrode of the voltage stabilization transistor, and a second electrode of the output transistor is connected to the output terminal.

[0026] For example, in a display substrate according to at least one embodiment of the present disclosure, the second capacitor has a rectangular shape.

[0027] For example, in a display substrate according to at least one embodiment of the present disclosure, when the output control circuit includes an output control transistor and a first capacitor, an active layer of the output control transistor and an active layer of the output transistor are integrally provided and extend along the first direction, a gate electrode of the output control transistor and a gate electrode of the output transistor extend along the second direction and are arranged side by side in the first direction, and when the display substrate includes a first power supply line, a first electrode of the output control transistor is electrically connected to the first power supply line to receive a first voltage.

[0028] For example, in a display substrate according to at least one embodiment of the present disclosure, the second electrode of the output transistor is connected to a signal input electrode of a next-stage shift register unit adjacent to the shift register unit.

[0029] For example, a display substrate according to at least one embodiment of the present disclosure further includes a pixel array region and a peripheral region, the first power supply line, the second power supply line, the first clock signal line, the second clock signal line and the shift register unit are located in the peripheral region, orthogonal projections of the second power supply line, the first clock signal line and the second clock signal line onto the base substrate are located on a side of the orthogonal projection of the shift register unit onto the base substrate that is away from the pixel array region, and the orthogonal projection of the first power supply line onto the base substrate is located on a side of the orthogonal projection of the shift register unit onto the base substrate that is close to the pixel array region.

[0030] For example, a display substrate according to at least one embodiment of the present disclosure further includes a first power line, a second control circuit, a voltage stabilizing circuit, a first switching electrode, a second switching electrode, and a third switching electrode, the first power line being configured to provide a first voltage to the shift register unit, the second control circuit being connected to the first node and the second node, and configured to control the level of the first node by controlling the level of the second node and a second clock signal, the voltage stabilizing circuit being connected to the first node and a third node, and configured to stabilize the level of the third node, the first control circuit including a first control transistor and a second control transistor, the second control circuit including a first noise reduction transistor and a second noise reduction transistor, the voltage stabilizing circuit including a voltage stabilizing transistor, the output control circuit includes an output control transistor and a first capacitor, the output circuit includes an output transistor and a second capacitor, the first switching electrode is connected to a first electrode of the input transistor, a gate electrode of the first control transistor, a second electrode of the voltage stabilizing transistor and a first electrode of the second noise reduction transistor, the first switching electrode is not located in a same layer as the gate electrode of the first control transistor, the second switching electrode is connected to the first electrode of the voltage stabilizing transistor and a gate electrode of the output transistor, wherein the second switching electrode is not located in a same layer as the gate electrode of the output transistor, and the third switching electrode is connected to the first electrode of the first noise reduction transistor and the first electrode of the output control transistor, and is connected to the first power supply line.

[0031] For example, in a display substrate according to at least one embodiment of the present disclosure, the first node includes the first switching electrode, and the third node includes the second switching electrode.

[0032] At least one embodiment of the present disclosure further provides a display device including a display substrate according to any one of the embodiments of the present disclosure.

[0033] For example, in the display device according to at least one embodiment of the present disclosure, the display device is an organic light emitting diode display device.

[0034] For example, a display device according to at least one embodiment of the present disclosure further includes pixel units arranged in an array, in which an output signal output by an output circuit of the shift register unit serves as a gate electrode scanning signal to cause the pixel units to emit light.

[0035] At least one embodiment of the present disclosure further provides a method for fabricating a display substrate. The method includes the steps of providing the base substrate, and forming a shift register unit, a first power supply line, a second power supply line, the first clock signal line, and a second clock signal line on the base substrate, where forming the shift register unit includes the steps of sequentially forming a semiconductor layer, a first insulating layer, a first conductive layer, a second insulating layer, a second conductive layer, a third insulating layer, and a third conductive layer in a direction perpendicular to the base substrate, where an active layer of each transistor is located in the semiconductor layer, a gate electrode of each transistor and a first electrode of each capacitor are located in the first conductive layer, a second electrode of each capacitor are located in the second conductive layer, the first power supply line, the second power supply line, the first clock signal line, the second clock signal line, and a first electrode and a second electrode of each transistor are located in the third conductive layer, and the transistors and the capacitors are connected to each other through via holes penetrating the first insulating layer, the second insulating layer, or the third insulating layer, and connected to the first power supply line, the second power supply line, the first clock signal line, and the second clock signal line.

[0036] In order to more clearly describe the technical solutions of the embodiments of the present invention, the following briefly introduces the accompanying drawings of the embodiments. It is obvious that the accompanying drawings in the following description only relate to some embodiments of the present invention and are not limitations on the present invention. [Brief description of the drawings]

[0037] [Figure 1A]FIG. 2 is a schematic diagram of the overall circuit structure of a display panel. [Figure 1B] FIG. 2 is a circuit diagram of a shift register unit. [Figure 1C] FIG. 1C is a signal sequence diagram during operation of the shift register unit shown in FIG. 1B. [Figure 1D] FIG. 2 is a schematic layout diagram of the shift register unit shown in FIG. 1B on a display substrate. [Figure 2A] FIG. 2 is a schematic diagram of a layout of a display substrate according to at least one embodiment of the present disclosure. [Figure 2B] FIG. 2 is a schematic diagram of a layout of another display substrate in accordance with at least one embodiment of the present disclosure. [Figure 3A] 2B shows plan views of wiring layers of the shift register unit of the display substrate shown in FIG. 2A. [Figure 3B] 2C are plan views of wiring layers of the shift register unit of the display substrate shown in FIG. 2B. [Figure 4A] 2B shows plan views of wiring layers of the shift register unit of the display substrate shown in FIG. 2A. [Figure 4B] 2C are plan views of wiring layers of the shift register unit of the display substrate shown in FIG. 2B. [Figure 5A] 2B shows plan views of wiring layers of the shift register unit of the display substrate shown in FIG. 2A. [Figure 5B] 2C are plan views of wiring layers of the shift register unit of the display substrate shown in FIG. 2B. [Figure 5C] 2B is a plan view of via holes between each layer wiring of the shift register unit of the display substrate shown in FIG. 2A. [Figure 5D] 2C is a plan view of via holes between each layer wiring of the shift register unit of the display substrate shown in FIG. 2B. [Figure 6A] 2B shows plan views of wiring layers of the shift register unit of the display substrate shown in FIG. 2A. [Figure 6B] 2C are plan views of wiring layers of the shift register unit of the display substrate shown in FIG. 2B. [Figure 7A] 2B is a cross-sectional view of an example of a display substrate shown in FIG. 2A. [Figure 7B] 2B are cross-sectional views of some examples of the display substrate shown in FIG. 2A along the AA′ direction. [Figure 7C] 2C are cross-sectional views of some examples of the display substrate shown in FIG. 2B along the BB′ direction. [Figure 7D] 2B are cross-sectional views of some examples along the CC' direction of the display substrate shown in FIG. 2A. [Figure 7E] 2C are cross-sectional views of some examples of the display substrate shown in FIG. 2B along the DD direction. [Figure 8] FIG. 1 is a schematic diagram of a display device in accordance with at least one embodiment of the present disclosure. [Figure 9] 1 is a flowchart of a method for fabricating a display substrate in accordance with at least one embodiment of the present disclosure. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0038] In order to more clearly explain the objectives, technical solutions and advantages of the embodiments of the present invention, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the drawings of the embodiments of the present invention. It is obvious that the described embodiments are only some of the embodiments of the present invention, and not all of the embodiments. Based on the described embodiments of the present invention, any other embodiments obtained by those skilled in the art without creative labor are all included in the protection scope of the present invention.

[0039] Unless otherwise defined, technical or scientific terms used in this disclosure have the ordinary meaning as 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. Similarly, similar terms such as "a", "one", "the" and the like are not a quantity limitation, but indicate the presence of at least one. Similar terms such as "comprise" and "include" mean that the element or thing appearing before the term includes the element or thing listed after the term and their equivalents, but do not exclude other elements or things. Similar terms such as "connected" and "connected to each other" are not limited to physical or mechanical connections, but may include electrical connections, whether direct or indirect. Terms such as "upper", "lower", "left", "right" and the like are merely used to indicate relative positional relationships, and if the absolute position of the described object is changed, the relative positional relationships may change accordingly.

[0040] In the following, the present disclosure will be described by some specific embodiments. In order to maintain the clarity and conciseness of the following description of the embodiments of the present invention, detailed descriptions of known functions and known components may be omitted. When any component of the embodiments of the present invention appears in one or more of the accompanying drawings, the component is represented by the same reference numeral in each of the accompanying drawings.

[0041] Fig. 1A is a schematic diagram of the overall circuit structure of a display panel. For example, as shown in Fig. 1A, 101 represents the entire outer frame of the display panel, the display panel includes an effective display area (i.e., pixel array area) 102 and a peripheral area located around the effective display area 102, the effective display area includes pixel units 103 arranged in an array, the peripheral area includes a shift register unit 104, a plurality of cascaded shift register units 104 constitute a gate electrode driving circuit and are used to provide gate electrode scanning signals shifted, for example, row by row, to the pixel units 103 arranged in an array in the effective display area 102 of the display panel 101, the peripheral area further includes a light emission control unit 105, a plurality of cascaded light emission control units 105 constitute a light emission control array and are used to provide light emission control signals shifted, for example, row by row, to the pixel units 103 arranged in an array in the effective display area 102 of the display panel 101.

[0042] As shown in FIG. 1A, data lines D1-DN (N is an integer greater than 1) connected to the data driving chip IC pass through the effective display area 102 in the vertical direction to provide data signals to the pixel units 103 arranged in an array, and gate lines G1-GM (M is an integer greater than 1) connected to the shift register unit 104 and the light emission control unit 105 pass through the effective display area 102 in the horizontal direction to provide gate electrode scanning signals and light emission control signals to the pixel units arranged in an array. For example, each pixel unit 103 may include a pixel circuit having a circuit structure such as 7T1C, 8T2C, or 4T1C in the art and a light emitting element, and the pixel circuit operates under the control of the data signal transmitted by the data line, the gate electrode scanning signal transmitted by the gate line, and the light emission control signal to drive the light emission of the light emitting element, thereby realizing operations such as display. The light emitting element may be, for example, an organic light emitting diode (OLED) or a quantum dot light emitting diode (QLED).

[0043] Figure 1B is a circuit diagram of a shift register unit. Figure 1C is a signal sequence diagram of the shift register unit shown in Figure 1B during operation. The following will briefly introduce the operation process of the shift register unit in combination with Figure 1B and Figure 1C.

[0044] As shown in FIG. 1B, the shift register unit 104 includes eight transistors (an input transistor T1, a first control transistor T2, a second control transistor T3, an output control transistor T4, an output transistor T5, a first noise reduction transistor T6, a second noise reduction transistor T7, and a voltage stabilization transistor T8) and two capacitors (a first capacitor C1 and a second capacitor C2). For example, when a plurality of shift register units 104 are cascaded, a first electrode of an input transistor T1 in a first-stage shift register unit 104 is connected to an input terminal IN, and the input terminal IN is connected to a trigger signal line GSTV, thereby configured to receive a trigger signal as an input signal, and a first electrode of an input transistor T1 in each of the other stages of shift register units 104 is electrically connected to an output terminal of the previous-stage shift register unit 104, thereby receiving an output signal output by the output terminal GOUT of the previous-stage shift register unit 104 as an input signal, thereby realizing a shift output, which is used to scan an array of pixel units in an active display area, for example, row by row.

[0045] 1B, the shift register unit further includes a first clock signal end CK and a second clock signal end CB, GCK represents the first sub-clock signal line, and GCB represents the second sub-clock signal line, for example, when the first clock signal end CK is connected to the first sub-clock signal line GCK to receive the first clock signal, the first sub-clock signal line GCK is the first clock signal line, when the first clock signal end CK is connected to the second sub-clock signal line GCB to receive the first clock signal, the second sub-clock signal line GCB is the first clock signal line, the specifics depend on the actual situation, and the embodiment of the present disclosure does not limit this. The second clock signal end CB is connected to the second sub-clock signal line GCB or the first sub-clock signal line GCK to receive the second clock signal. In the following, an example is taken in which the first clock signal terminal CK is connected to the first sub-clock signal line GCK to receive the first clock signal, and the second clock signal terminal CB is connected to the second sub-clock signal line GCB to receive the second clock signal, i.e., the first sub-clock signal line GCK is the first clock signal line, and the second sub-clock signal line GCB is the second clock signal line, but the embodiments of the present disclosure are not limited to this. For example, the first clock signal GCK and the second clock signal GCB may adopt pulse signals with a duty cycle greater than 50%, and there is a difference between them, for example, by a half period; VGH represents the first power line and the first voltage provided by the first power line, for example, the first voltage is a DC high level; VGL represents the second power line and the second voltage provided by the second power line, for example, the second voltage is a DC low level, and the first voltage is greater than the second voltage; and N1, N2, and N3 represent the first node, the second node, and the third node, respectively, in the circuit schematic diagram.

[0046] 1B, the gate electrode of the input transistor T1 is connected to a first clock signal terminal CK (the first clock signal terminal CK is connected to a first sub-clock signal line GCK) to receive a first clock signal, the second electrode of the input transistor T1 is connected to an input terminal IN, and the first electrode of the input transistor T1 is connected to a first node N1. For example, if the shift register unit is a first-stage shift register unit, the input terminal IN is connected to a trigger signal line GSTV to receive a trigger signal, and if the shift register unit is a shift register unit of any stage other than the first-stage shift register, the input terminal IN is connected to the output terminal GOUT of the previous-stage shift register unit.

[0047] The gate electrode of the first control transistor T2 is connected to the first node N1, the second electrode of the first control transistor T2 is connected to the first clock signal end CK to receive the first clock signal, and the first electrode of the first control transistor T2 is connected to the second node N2.

[0048] The gate electrode of the second control transistor T3 is connected to the first clock signal end CK to receive the first clock signal, the second electrode of the second control transistor T3 is connected to the second power line VGL to receive the second voltage, and the first electrode of the second control transistor T3 is connected to the second node N2.

[0049] The gate electrode of the output control transistor T4 is connected to the second node N2, and the first electrode of the output control transistor T4 is connected to the first power supply line VGH to receive the first voltage, and the second electrode of the output control transistor T4 is connected to the output terminal GOUT.

[0050] A first electrode of the first capacitor C1 is connected to the second node N2, and a second electrode of the first capacitor C1 is connected to the first power supply line VGH.

[0051] The gate electrode of the output transistor T5 is connected to the third node N3, the first electrode of the output transistor T5 is connected to the second clock signal terminal CB, and the second electrode of the output transistor T5 is connected to the output terminal GOUT.

[0052] A first electrode of the second capacitor C2 is connected to the third node N3, and a second electrode of the second capacitor C2 is connected to the output terminal GOUT.

[0053] The gate electrode of the first noise reduction transistor T6 is connected to the second node N2, and the first electrode of the first noise reduction transistor T6 is connected to the first power supply line VGH to receive the first voltage, and the second electrode of the first noise reduction transistor T6 is connected to the second electrode of the second noise reduction transistor T7.

[0054] The gate electrode of the second noise reduction transistor T7 is connected to the second clock signal terminal CB (the second clock signal terminal CB is connected to the second sub-clock signal line GCB) to receive the second clock signal, and the first electrode of the second noise reduction transistor T7 is connected to the first node N1.

[0055] The gate electrode of the voltage stabilization transistor T8 is connected to the second power line VGL to receive the second voltage, the second electrode of the voltage stabilization transistor T8 is connected to the first node N1, and the first electrode of the voltage stabilization transistor T8 is connected to the third node N3.

[0056] 1B, the transistors in the shift register unit 104 are all P-type transistors, that is, each transistor is turned on (on level) when its gate electrode receives a low level, and turned off (off level) when its gate electrode receives a high level. At this time, the first electrode of the transistor may be a source electrode, and the second electrode of the transistor may be a drain electrode.

[0057] The shift register unit may have an arrangement including, but not limited to, that of FIG. 1B. For example, each transistor in the shift register unit 104 may be an N-type transistor, or a mixture of P-type and N-type transistors, and the port polarity of the selected type of transistor may be connected according to the port polarity of the corresponding transistor in the embodiment of the present disclosure.

[0058] It should be noted that the transistors employed in the shift register unit may be thin film transistors or field effect transistors or other switching elements with the same characteristics, and here, thin film transistors are used as an example, and the active layer (channel region) of the transistor may be made of a semiconductor material, such as polycrystalline silicon (e.g., low-temperature polycrystalline silicon or high-temperature polycrystalline silicon), amorphous silicon, indium gallium tin oxide (IGZO), etc., and the gate electrode, source electrode, drain electrode, etc. may be made of a metal material, such as metal aluminum or aluminum alloy. The source electrode and drain electrode of the transistor employed here may be structurally symmetrical, so that the source electrode and drain electrode may be structurally indistinguishable. In the embodiment of the present disclosure, in order to distinguish between the two electrodes other than the gate electrode of the transistor, it is directly stated that one of them is a first electrode and the other electrode is a second electrode. In addition, in the embodiment of the present disclosure, the electrodes of the capacitor may be metal electrodes, or one of them may be made of a semiconductor material (e.g., doped polycrystalline silicon).

[0059] FIG. 1C is a signal sequence diagram of the shift register unit 104 shown in FIG. 1B during operation. In the following, the operation process of the shift register will be introduced in detail in conjunction with FIG. 1B and FIG. 1C. For example, the operation principle of the first stage shift register unit 104 will be described, and the operation principles of the remaining stages of the shift register unit 104 are similar, and will not be described. As shown in FIG. 1C, the operation process of the shift register unit 104 includes four stages, which are the first stage t1, the second stage t2, the third stage t3 and the fourth stage t4, respectively, and FIG. 1C shows the timing waveforms of each signal in each stage.

[0060] In a first stage t1, as shown in FIG. 1C, the first clock signal terminal CK receives a first clock signal of a low level, and the trigger signal line GSTV provides a trigger signal of a low level, so that the input transistor T1 and the second control transistor T3 are turned on, and the input transistor T1 that is turned on transmits a trigger signal of a low level to the first node N1, thereby changing the level of the first node N1 to a low level, so that the first control transistor T2 and the output transistor T5 are turned on, and the voltage stabilizing transistor T8 is always in an on state according to the second voltage (low level) provided by the second power line VGL, so that the level of the third node N3 is the same as the level of the first node N1, i.e., a low level, and at the same time, the low level is stored in the second capacitor C2. In addition, the second control transistor T3 that is turned on transmits the second voltage VGL of low level to the second node N2, and the first control transistor T2 that is turned on transmits the low level of the first clock signal to the second node N2, thereby changing the level of the second node N2 to low level and storing it in the first capacitor C1, so that the output control transistor T4 outputs the first voltage of high level provided by the first power line VGH to the output end GOUT in response to the low level on of the second node N2, and the output transistor T5 transmits the second clock signal of high level received by the second clock signal end CB to the output end GOUT in response to the low level on of the third node N3, so that at this stage, the shift register unit outputs a high level.

[0061] In the second stage t2, as shown in FIG. 1C, the second clock signal terminal CB receives the second clock signal of low level, so the second noise reduction transistor T7 is turned on, and the first clock signal terminal CK receives the first clock signal of high level, so the input transistor T1 and the second control transistor T3 are turned off. Due to the memory function of the second capacitor C2, the first node N1 can continue to hold the low level of the previous stage, so the first control transistor T2 and the output transistor T5 are turned on. Since the first control transistor T2 is turned on, the high level of the first clock signal received by the first clock signal terminal CK is transmitted to the second node N2, so that the second node N2 is changed to a high level, so that the first noise reduction transistor T6 and the output control transistor T4 are turned off, so as to prevent the high level provided by the first power line VGH from being output to the output terminal GOUT and the first node N1. At the same time, the output transistor T5 is turned on, so that at this stage, the output end GOUT outputs a low level which is received by the second clock signal end GB, for example, the low level is used to control the operation of the pixel unit 103 shown in FIG. 1A.

[0062] In the third stage t3, as shown in FIG. 1C, the first clock signal terminal CK receives the first clock signal of low level, so that the input transistor T1 and the second control transistor T3 are turned on, and at this time, the high level provided by the trigger signal line GSTV is transmitted to the first node N1 and the third node N3, so that the output transistor T5 and the first control transistor T2 are turned off. The second clock signal terminal CB receives the second clock signal of high level, so that the second noise reduction transistor T7 is turned off. The second control transistor T3 is turned on, so that the low level provided by the second power line VGL is transmitted to the second node N2 and stored in the first capacitor C1, so that the output control transistor T4 and the first noise reduction transistor T6 are turned on, and at this stage, the output terminal GOUT outputs the high level provided by the first power line VGH.

[0063] In the fourth stage t4, as shown in FIG. 1C, the first clock signal terminal CK receives the first clock signal of high level, so that the input transistor T1 and the second control transistor T3 are turned off. The second clock signal terminal CB receives the second clock signal of low level, so that the second noise reduction transistor T7 is turned on. Due to the memory function of the second capacitor C2, the level of the first node N1 keeps the high level of the previous stage, so that the first control transistor T2 and the output transistor T5 are turned off. Due to the memory function of the first capacitor C1, the second node N2 keeps the low level of the previous stage, so that the first noise reduction transistor T6 is turned on, so that the high level provided by the first power line VGH is transmitted to the first node N1 and the third node N3 by the first noise reduction transistor T6 and the second noise reduction transistor T7 which are turned on, so that the first node N1 and the third node N3 keep being held at high level, effectively preventing the output transistor T5 from being turned on, and avoiding erroneous output.

[0064] Fig. 1D is a schematic layout diagram of the shift register unit 104 shown in Fig. 1B on a display substrate. As shown in Fig. 1D, the display substrate includes the input transistor T1 to the voltage stabilizing transistor T8 of the shift register unit 104, the first capacitor C1 to the second capacitor C2, the first sub-clock signal line GCK, the second sub-clock signal line GCB, the first power supply line VGH, and the second power supply line VGL.

[0065] For example, as shown in FIG. 1D , the input transistor T1 includes a “U”-shaped active layer and a linear (I-type) gate electrode, and the linear gate electrode overlaps with the double arms of the “U”-shaped active layer to realize a double-gate transistor. The first noise reduction transistor T6 and the second noise reduction transistor T7 are horizontally arranged. This arrangement occupies a relatively large space in both the horizontal and vertical directions of the display panel. The distance from the gate electrode of the voltage stabilization transistor T8 to the first electrode of the second control transistor T3 is relatively long, and they are respectively connected to different positions of the second power line VGL, which increases the complexity of the wiring. The node between the first control transistor T2 and the second control transistor T3 is connected to the gate electrode of the first noise reduction transistor T6 through a very long connection wiring, which causes space congestion, etc. Therefore, the arrangement and connection method of each transistor on the display substrate shown in Figure 1D is likely to cause spatial congestion, which is disadvantageous to realizing a narrow frame design of the display panel. Furthermore, due to the unnecessary overlap, the parasitic capacitor becomes too large, causing problems such as signal interference, which is likely to affect the display quality of the display panel.

[0066] At least one embodiment of the present disclosure provides a display substrate, the display substrate including a base substrate, a shift register unit and a first clock signal line disposed on the base substrate, the first clock signal line extending along a first direction on the base substrate and configured to provide a first clock signal to the shift register unit, the shift register unit including an input circuit, an output circuit, a first control circuit, and an output control circuit, the input circuit configured to input an input signal to a first node according to the first clock signal, the output circuit configured to output an output signal to an output terminal, the first control circuit configured to control a level of a second node according to a level of the first node and the first clock signal, the output control circuit configured to control a level of a second node according to a level of the first node and the first clock signal, and a control circuit for controlling a level of an output terminal by controlling a level of the input terminal, the input circuit including an input transistor, an active layer of the input transistor having an elongated shape extending along a second direction, the second direction being different from the first direction, the input transistor including a first gate electrode, a second gate electrode, and a connection electrode connecting the first gate electrode and the second gate electrode, the connection electrode extending along the first direction and including a first portion connected to the first gate electrode, a second portion connected to the second gate electrode, and a third portion extending along the second direction and connecting the first portion and the second portion, the third portion of the connection electrode being connected to a first clock signal line to receive a first clock signal.

[0067] At least one embodiment of the present disclosure further provides a display device corresponding to the display substrate and a method for manufacturing the display substrate.

[0068] The line connection and structural layout of the shift register unit with the display substrate optimized according to the above embodiment of the present disclosure compress the length of the shift register unit in the second direction to a certain extent, which is advantageous for realizing a narrow frame design of the display panel and ensures the display quality of the display panel.

[0069] DETAILED DESCRIPTION OF THE DRAWINGS The following detailed description of the present disclosure and some examples thereof will be given in conjunction with the accompanying drawings.

[0070] At least one embodiment of the present disclosure provides a display substrate. Figure 2A is a schematic layout diagram of the shift register unit 104 shown in Figure 1B on the display substrate.

[0071] For example, as shown in Fig. 2A, the display substrate 1 includes a base substrate 10, a shift register unit 104 provided on the base substrate 10, a first power supply line VGH, a second power supply line VGL, and a plurality of clock signal lines (e.g., a first sub-clock signal line GCK, a second sub-clock signal line GCB, and a trigger signal line GSTV shown in the figure). For example, the first power supply line VGH, the second power supply line VGL, and the plurality of clock signal lines extend along a first direction (e.g., a vertical direction shown in Fig. 2A) on the base substrate 10, and are configured to respectively provide a first voltage, a second voltage, and a plurality of clock signals (e.g., the above-mentioned trigger signal, the first clock signal, or the second clock signal, etc.) to the shift register unit 104.

[0072] In addition, the first power supply line VGH, the second power supply line VGL, and the multiple clock signal lines may be arranged parallel to each other along the first direction, or may intersect at a certain angle (e.g., 20° or less), and the embodiments of the present disclosure do not limit this.

[0073] For example, the first power supply line VGH is configured to provide a first voltage to the cascaded shift register units 104 included in the scan driving circuit, and the second power supply line VGL is configured to provide a second voltage to the cascaded shift register units 104 included in the scan driving circuit. For example, the first voltage is greater than the second voltage, e.g., the first voltage is a DC high level and the second voltage is a DC low level.

[0074] For example, the base substrate 10 may be made of, for example, glass, plastic, quartz, or other suitable materials, and the embodiments of the present disclosure are not limited thereto.

[0075] For example, the display substrate 1 includes a pixel array region (i.e., the effective display region 102 shown in FIG. 1A, hereinafter referred to as the pixel array region 102) and a peripheral region other than the pixel array region, and for example, the first power line VGH, the second power line VGL, the multiple clock signal lines and the shift register unit 104 are located in the peripheral region and on one side of the base substrate 10 (as shown in FIG. 1A, they are located between the pixel array region 102 and the side edge of the base substrate), for example, as shown in FIG. 1A, they may be located on the left side of the base substrate, or of course on the right side or both the left and right sides of the base substrate 10, and the embodiments of the present disclosure are not limited thereto.

[0076] For example, the second power line VGL and the multiple clock signal lines are located on the side of the shift register unit 104 away from the pixel array region 102, for example, both are located on the left side of the shift register unit 104 shown in FIG. 2A, i.e., when the shift register unit 104 is projected onto the base substrate 10, the second power line VGL and the multiple clock signal lines are located between the orthogonal projection onto the base substrate 10 and the pixel array region 102, for example, the first power line VGH is located on one side of the shift register unit 104 close to the pixel array region 102, i.e., when the first power line VGH is projected onto the base substrate 10, the shift register unit 104 is located between the orthogonal projection onto the base substrate 10 and the pixel array region 102.

[0077] It should be noted that the above wiring positions are merely exemplary, and any wiring positions that facilitate connection with the shift register unit may be used, and the embodiments of the present disclosure are not limited thereto.

[0078] For example, the pixel array region 102 includes a plurality of pixel units 103 arranged in an array. For example, each of the plurality of pixel units 103 includes a pixel circuit, and may further include, for example, a light emitting element (not shown).

[0079] For example, a plurality of cascaded shift register units 104 constitute a gate electrode driving circuit. For example, the output terminals GOUT of the plurality of shift register units 104 are respectively connected to the gate electrode scanning signal terminals of the pixel circuits of each row located in the pixel array region, thereby providing output signals (e.g., gate electrode scanning signals) to the pixel circuits of each row, thereby realizing driving the light emission of the light emitting elements. For example, the pixel circuits may be pixel circuits including circuit structures such as 7T1C, 2T1C, 4T2C, 8T2C, etc. in the present technical field, and the description thereof is omitted here.

[0080] FIG. 2A shows only the first-stage shift register unit 104 and the second-stage shift register unit 104 in the gate electrode driving circuit. For example, as shown in FIG. 2A, the first clock end CK (as shown in FIG. 1B) of the first-stage shift register unit 104 is connected to the second sub-clock signal line GCB to receive the first clock signal, the second clock signal end CB of the first-stage shift register unit 104 is connected to the first clock signal GCK to receive the second clock signal, the first clock signal end CK of the second-stage shift register unit is connected to the first sub-clock signal line GCK to receive the first clock signal, and the second clock signal end CB of the second-stage shift register unit is connected to the second sub-clock signal line GCK to receive the second clock signal. line GCB to receive the second clock signal; by analogy, the first clock end CK of the Xth (X is an odd number greater than 1) stage shift register unit 104 is connected to the second sub-clock signal line GCB to receive the first clock signal, the second clock signal end CB of the Xth stage shift register unit 104 is connected to the first clock signal GCK to receive the second clock signal, the first clock signal end CK of the X+1th stage shift register unit is connected to the first sub-clock signal line GCK to receive the first clock signal, and the second clock signal end CB of the X+1th stage shift register unit is connected to the second sub-clock signal line GCB to receive the second clock signal. Note that the connection method between the shift register units of each stage and the clock signal line may also adopt other connection methods in the present field, and the embodiments of the present disclosure are not limited thereto. For example, the input end of the first-stage shift register unit 104 is connected to the trigger signal line GSTV to receive a trigger signal as an input signal, the input end of the second-stage shift register unit 104 is connected to the output end GOUT of the previous-stage shift register unit (i.e., the first-stage shift register unit), and the connection manner of the remaining shift register units is similar. In the following, the structure of the first-stage shift register unit is described as an example, and the embodiment of the present disclosure is not limited thereto.

[0081] For example, in the example shown in FIG. 2A, the first clock end CK (as shown in FIG. 1B) of the first-stage shift register unit 104 is connected to the second sub-clock signal line GCB to receive the first clock signal, and the second clock signal end CB of the first-stage shift register unit 104 is connected to the first clock signal line GCK to receive the second clock signal. Therefore, in this example, the second sub-clock signal line GCB is the first clock signal line, and the first sub-clock signal line GCK is the second clock signal line, and this is described as an example, but the embodiments of the present disclosure are not limited thereto.

[0082] For example, as shown in FIG. 1B, in some examples, the shift register unit 104 includes an input circuit 1041, an output circuit 1043, a first control circuit 1042, and an output control circuit 1044, and in some other examples, the shift register unit 104 further includes a second control circuit 1045 and a voltage stabilization circuit 1046.

[0083] The input circuit 1041 is configured to input an input signal to the first node N1 according to the first clock signal. For example, the input circuit 1041 is connected to an input terminal IN, a first node N1, and a first clock signal terminal CK, and is configured to be turned on under the control of the first clock signal received by the first clock signal terminal CK, and to input an input signal to the first node N1 by connecting the input terminal IN to the first node N1. For example, the input circuit 1041 is realized as the input transistor T1 described above, and the connection manner of the input transistor T1 may refer to the above description, and the description will be omitted here.

[0084] The output circuit 1043 is configured to output an output signal to the output terminal GOUT. For example, the output circuit 1043 is connected to the third node N3, the output terminal GOUT, and the second clock signal terminal CB, and is configured to output the second clock signal at the output terminal GOUT by connecting the second clock signal terminal CB and the output terminal GOUT by controlling the level of the third node N3, for example, outputting a low level of the second clock signal. For example, the output circuit 1043 is realized as the output transistor T5 and the second capacitor C2 described above, and the connection manner of the output transistor T5 and the second capacitor C2 may refer to the above description, and the description will be omitted here.

[0085] The first control circuit 1042 is configured to control the level of the second node N2 according to the level of the first node N1 and the first clock signal. For example, the first control circuit is connected to the first node N1, the second node N2, and the first clock signal terminal CK, and is configured to be turned on by controlling the level of the first node N1, and to provide the first clock signal provided by the first clock signal terminal CK to the second node N2 by connecting the second node N2 and the first clock signal terminal CK. For example, the first control circuit 1042 is realized as the first control transistor T2 and the second control transistor T3 described above, and the connection manner of the first control transistor T2 and the second control transistor T3 may refer to the above description, and the description will be omitted here. Note that the first control circuit 1042 is not limited to being connected to the first node N1, and may be connected to another independent voltage terminal (providing the same voltage as the voltage of the first node N1) or a circuit provided independently and the same as the input circuit, and the embodiment of the present disclosure does not limit this. The connection of other circuits of the shift register unit is similar to this, and the description will be omitted here.

[0086] The output control circuit 1044 is configured to control the level of the output terminal GOUT by controlling the level of the second node N2. For example, the output control circuit 1044 is connected to the second node N2, the first power line VGH, and the output terminal GOUT, and is configured to control the level of the second node N2 so that the output terminal GOUT is connected to the first power line VGH, thereby outputting the first voltage provided by the first power line VGH to the output terminal GOUT, thereby controlling the output terminal GOUT to a high level, so that the shift register unit avoids erroneous output during the non-output stage. For example, the output control circuit 1044 is realized as the output control transistor T4 and the first capacitor C1 described above, and the connection manner of the output control transistor T4 and the first capacitor C1 may refer to the above description, and the description will be omitted here.

[0087] The second control circuit 1045 is connected to the first node N1 and the second node N2, and is configured to control the level of the first node N1 by controlling the level of the second node N2 and the second clock signal. The second control circuit 1045 is connected to the first node N1, the second node N2, the first power line VGH, and the second clock signal terminal CB, and is turned on by controlling the level of the second node N2 and the second clock signal received by the second clock signal terminal CB, and is configured to prevent the output circuit 1042 from turning on in the non-output stage by charging the potential of the first node N1 to a high level by connecting the first power line VGH to the first node N1, thereby avoiding erroneous output. For example, the second control circuit 1045 is realized as the first noise reduction transistor T6 and the second noise reduction transistor T7 described above, and the connection manner of the first noise reduction transistor T6 and the second noise reduction transistor T7 may refer to the above description, and the description will be omitted here.

[0088] The voltage stabilizing circuit 1046 is connected to the first node N1 and the third node N3, and is configured to stabilize the level of the third node N3. For example, the voltage stabilizing circuit 1046 is connected to the first node N1, the third node N3, and the second power line VGL, and is configured to be turned on under the control of the second voltage provided by the second power line VGL, thereby connecting the first node N1 to the third node N3. For example, the voltage stabilizing circuit 1046 is realized as a voltage stabilizing transistor T8, and a detailed introduction may refer to the description of the voltage stabilizing transistor T8 in FIG. 1B above, and the description will be omitted here.

[0089] For example, the voltage stabilization transistor T8 is always on under the control of the second voltage provided by the second power line VGL, and the third node N3 is connected to the first node N1 by the voltage stabilization transistor T8, thereby preventing the level of the third node N3 from leaking through the input transistor T1, the first control transistor T2, and the second noise reduction transistor T7 connected to the first node N1, and further reducing the stress of the level of the third node N3 on the first control transistor T1, which can help maintain the level of the third node N3 so that the output transistor T5 is sufficiently open in the output stage.

[0090] 3A, 4A, 5A, and 6A show plan views of each layer wiring of the shift register unit of the display substrate shown in FIG. 2A, respectively, and FIG. 3B, 4B, 5B, and 6B show plan views of each layer wiring of the shift register unit of the display substrate shown in FIG. 2B, respectively. FIG. 3A and FIG. 3B are plan views of the semiconductor layer of the display substrate according to at least one embodiment of the present disclosure, FIG. 4A and FIG. 4B are plan views of the first conductive layer of the display substrate according to at least one embodiment of the present disclosure, FIG. 5A and FIG. 5B are plan views of the second conductive layer of the display substrate according to at least one embodiment of the present disclosure, and FIG. 6A and FIG. 6B are plan views of the third conductive layer of the display substrate according to at least one embodiment of the present disclosure. FIG. 7A is a cross-sectional view of an example of the display substrate shown in FIG. 2A, FIG. 7B is another example cross-sectional view of the display substrate shown in FIG. 2A along the AA' direction, and FIG. 7C is an example cross-sectional view of the display substrate shown in FIG. 2B along the BB' direction.

[0091] For example, an interlayer insulating layer (eg, including a first insulating layer, a second insulating layer, a third insulating layer, etc.) may be located between the layer structures shown in FIGS. 3A-6A or 3B-6B. For example, the first insulating layer 350 (as shown in FIG. 7A ) is located between the semiconductor layer 310 shown in FIG. 3A and the first conductive layer 320 shown in FIG. 4A or between the semiconductor layer 310 shown in FIG. 3B and the first conductive layer 320 shown in FIG. 4B ; the second insulating layer 360 (as shown in FIG. 7A ) is located between the first conductive layer 320 shown in FIG. 4A and the second conductive layer 330 shown in FIG. 5A or between the first conductive layer 320 shown in FIG. 4B and the second conductive layer 330 shown in FIG. 5B ; and the third insulating layer 370 (as shown in FIG. 7A ) is located between the second conductive layer 330 shown in FIG. 5A and the third conductive layer 340 shown in FIG. 6A or between the second conductive layer 330 shown in FIG. 5B and the third conductive layer 340 shown in FIG. 6B .

[0092] For example, as shown in FIGS. 7A, 7B and 7C, the display substrate further includes a fourth insulating layer 380, which is located on the third conductive layer 340 and is used to protect the third conductive layer 340.

[0093] For example, the materials of the first insulating layer 350, the second insulating layer 360, the third insulating layer 370, and the fourth insulating layer 380 may include inorganic insulating materials, such as SiNx, SiOx, SiNxOy, organic insulating materials, such as organic resins, or other suitable materials, and embodiments of the present disclosure are not limited thereto.

[0094] In addition, the display substrate shown in Fig. 2A is described as an example of the layout design of the first two stages of shift registers in the scan driving circuit and the first power line, the second power line, and the signal line connected thereto, and the layout embodiment of the remaining stages of shift registers may refer to the layout method shown in Fig. 2A, and the description is omitted here. Of course, other layout methods may be adopted, and the embodiment of the present disclosure does not limit this. Of course, the shift registers of each stage of the remaining scan driving circuits may refer to the layout method shown in Fig. 2A, and other layout methods may be adopted, and the embodiment of the present disclosure does not limit this.

[0095] Hereinafter, a display substrate according to at least one embodiment of the present disclosure will be described in detail in conjunction with FIGS. 2A to 7C.

[0096] For example, the active layers of the input transistor T1 to the voltage stabilizing transistor T8 of the shift register unit 104 shown in FIG. 2A may be formed on the semiconductor layer 310 shown in FIG. 3A. The active layers of the input transistor T1 to the voltage stabilizing transistor T8 of the shift register unit 104 shown in FIG. 2B may be formed on the semiconductor layer 310 shown in FIG. 3B. The semiconductor layer 310 may be formed by patterning a semiconductor material. For example, as shown in FIG. 3A and FIG. 3B, the semiconductor layer 310 may be a short rod shape or a shape having a bend or bend, as necessary, and can be used to fabricate the active layers of the input transistor T1 to the voltage stabilizing transistor T8. Each active layer may include a source region, a drain region, and a channel region located between the source region and the drain region. For example, the channel region has a semiconductor characteristic, and the source region and the drain region are on both sides of the channel region, and may be doped with impurities, so that they are conductive. For example, the source region is part of the active layer, and a metal electrode (e.g., located in the third conductive layer 340) in contact with the source region corresponds to a source electrode (or called a first electrode) of a transistor, and the drain region is part of the active layer, and a metal electrode (e.g., located in the third conductive layer 340) in contact with the drain region corresponds to a drain electrode (or called a second electrode) of a transistor. For example, the source region is connected to its corresponding metal electrode (first electrode) through a via hole penetrating the first insulating layer 350, the second insulating layer 360 and the third insulating layer 370, and the drain region is connected to its corresponding metal electrode (second electrode) through a via hole penetrating the first insulating layer 350, the second insulating layer 360 and the third insulating layer 370.

[0097] For example, as shown in FIG. 7A , taking the first control transistor T2 as an example, the active layer of the first control transistor T2 includes a source region S2, a drain region D2, and a channel region P2, and the first control transistor T2 further includes a gate electrode G2, of which the gate electrode G2 is located in the first conductive layer 320; taking the first noise reduction transistor T6 as an example, the active layer of the first noise reduction transistor T6 includes a source region S6, a drain region D6, and a channel region P6, and the first noise reduction transistor T6 further includes a gate electrode G6, of which the gate electrode G6 is located in the first conductive layer 320; the remaining transistors are similar to the above, and the description thereof will be omitted here.

[0098] For example, the material of the semiconductor layer 310 may include an oxide semiconductor, an organic semiconductor, or amorphous silicon, polycrystalline silicon, etc., for example, the oxide semiconductor includes a metal oxide semiconductor (e.g., indium gallium zinc oxide (IGZO)), and the polycrystalline silicon includes low-temperature polycrystalline silicon or high-temperature polycrystalline silicon, etc., and the embodiments of the present disclosure are not limited thereto. It should be noted that the source region and the drain region may be regions doped with n-type impurities or p-type impurities, and the embodiments of the present disclosure are not limited thereto.

[0099] In some other examples, the first electrode and the second electrode of each transistor may be located on another conductive layer and connected to the corresponding active layer through a via hole in an insulating layer located intermediate the conductive layer and the semiconductor layer, and the embodiments of the present disclosure are not limited thereto.

[0100] 4A and 4B show the first conductive layer 320 of the display substrate, and the first conductive layer 320 is provided on the first insulating layer, and is thus insulated from the semiconductor layer 310. For example, the first conductive layer 320 may include the first electrodes CE11 and CE12 of the first capacitor C1 to the second capacitor C2, the gate electrodes of the input transistor T1 to the voltage stabilizing transistor T8, each wiring (for example, the first connection wiring L1 and the third connection wiring L2) directly connected to the gate electrodes, and a connection electrode, and accordingly, the first insulating layer is also a gate electrode insulating layer. As shown in FIG. 4A, the gate electrodes of the input transistor T1 to the voltage stabilizing transistor T8 are the parts surrounded by dotted lines, that is, the parts where the semiconductor layer structure of each transistor overlaps with the wiring on the first conductive layer 320.

[0101] As shown in Fig. 4B, the first conductive layer 320 may further include an intermediate switching electrode 11, for example, in this example, the intermediate switching electrode 11 and the gate electrode G6 of the first noise reduction transistor T6 are integrally formed. For example, in this example, the first connection line L1 does not need to be located in the first conductive layer 320 shown in Fig. 4B, for example, it is located in the third conductive layer 340 shown in Fig. 6B, and the embodiment of the present disclosure is not limited thereto as long as it can realize the connection between the transistors.

[0102] 5A and 5B show the second conductive layer 330 of the display substrate, which includes second electrodes CE21 and CE22 of the first capacitor C1 to second capacitor C2. The second electrode CE21 overlaps with at least a part of the first electrode CE11 to form the first capacitor C1, and the second electrode CE22 overlaps with at least a part of the first electrode CE12 to form the second capacitor C2. For example, the second conductive layer 330 shown in FIG. 5A further includes an intermediate switching electrode 11.

[0103] For example, the example shown in FIG. 5B is similar to the example shown in FIG. 5A, and the difference is that the second conductive layer 330 does not include the intermediate switching electrode 11, i.e., in the display substrate shown in FIG. 2B, the intermediate switching electrode 11 may not be further located on the second conductive layer 330, for example, on the first conductive layer 320 shown in FIG. 4B, and the embodiments of the present disclosure are not limited thereto.

[0104] 6A and 6B show the third conductive layer 340 of the first-stage shift register unit and the second-stage shift register unit of the display substrate, and the third conductive layer 340 includes a plurality of signal lines (for example, a trigger signal line GSTV, a first sub-clock signal line GCK, and a second sub-clock signal line GCB connected to the input terminal of the first-stage shift register unit 104), a first power supply line VGH, a second power supply line VGL, and a reference voltage line Vinit, etc. In addition, the third conductive layer 340 further includes a first switching electrode 17, a second switching electrode 18, a third switching electrode 16, a signal input electrode 13, a second connecting line (including a first connecting sub-line L3 and a second connecting sub-line L4), and a fourth connecting line L5, etc., which connect between each transistor, a capacitor, and a signal line.

[0105] As shown in Figures 2A to 6B, the multiple signal lines, the first power supply line VGH, and the second power supply line VGL are connected to the transistors and capacitors that need to be connected thereto in each remaining layer through at least one via hole shown in Figure 5C or Figure 5D, and each transistor and capacitor are also connected through at least one via hole or bridged through a switching electrode, and the description will be omitted here.

[0106] For example, the material of the third conductive layer 340 may include titanium, titanium alloy, aluminum, aluminum alloy, copper, copper alloy, or any other suitable composite material, and the embodiments of the present disclosure are not limited thereto. For example, the material of the first conductive layer 320 and the second conductive layer 330 may be the same as the material of the third conductive layer 340, and the description thereof will be omitted here.

[0107] Fig. 2A is a schematic diagram of the stacking positional relationship between the semiconductor layer 310 shown in Fig. 3A, the first conductive layer 320 shown in Fig. 4A, the second conductive layer 330 shown in Fig. 5A, and the third conductive layer 340 shown in Fig. 6A. Fig. 2B is a schematic diagram of the stacking positional relationship between the semiconductor layer 310 shown in Fig. 3B, the first conductive layer 320 shown in Fig. 4B, the second conductive layer 330 shown in Fig. 5B, and the third conductive layer 340 shown in Fig. 6B.

[0108] As shown in FIG. 2A, FIG. 3A, or FIG. 2B, FIG. 3B, in at least one example, the active layer of the input transistor T1 is elongated and extends along a second direction, and the second direction is different from the first direction. For example, the angle between the first direction and the second direction is between 70° and 90°, including 70° and 90°. For example, the angle between the first direction and the second direction may be 70°, 90°, or 80°, etc., and may be set based on the actual situation, and the embodiments of the present disclosure are not limited thereto. For example, in some examples, the channel region of the active layer of the input transistor T1 is "I" shaped on the base substrate 10, and the channel length direction of the channel region is a second direction (for example, a horizontal direction in the figure) perpendicular to the first direction, and of course the embodiments of the present disclosure are not limited thereto, as long as the display panel can be shortened in the first direction. For example, the channel length direction is the direction in which carriers flow from the first electrode to the second electrode of the input transistor T1, and the two parallel gate electrodes (e.g., electrically connected to each other) overlap with the elongated active layer ("I"-shaped active layer) of the input transistor T1, respectively, thereby obtaining an "I"-shaped double-gate transistor. Of course, it may be a single gate electrode that overlaps with the elongated active layer of the input transistor T1, and the embodiments of the present disclosure are not limited thereto.

[0109] The active layer of the input transistor T1 (note that here it refers to the overall shape of the active layer of the input transistor T1) is changed from the “U”-shaped structure shown in FIG. 1D to an elongated shape extending along the second direction (e.g., an “I”-shaped structure along the second direction, e.g., an “I”-shaped structure), so that the length of the display panel in the first direction, i.e., the vertical height of the display panel, can be shortened, and it is advantageous for other transistors (e.g., the first noise reduction transistor T6 and the second noise reduction transistor T7) to be arranged below the input transistor T1.

[0110] 3A or 3B, the active layer of the first noise reduction transistor T6 and the active layer of the second noise reduction transistor T7 are formed of one continuous noise reduction semiconductor layer A11 (i.e., integrally provided), and the noise reduction semiconductor layer A11 extends along the first direction and is juxtaposed with the active layer of the input transistor T1 in the first direction, i.e., the input transistor T1, the first noise reduction transistor T6, and the second noise reduction transistor T7 are juxtaposed vertically along the first direction. For example, the active layer of the input transistor T1 is located on a virtual line along which the active layer of the first noise reduction transistor T6 and the active layer of the second noise reduction transistor T7 extend along the first direction.

[0111] For example, as shown in FIGS. 2A, 2B and 3A, the active layer of the first noise-reduction transistor T6 may partially overlap (as shown in FIGS. 2A and 3A) or completely overlap (as shown in FIGS. 2B and 3B) with the active layer of the second noise-reduction transistor T7 in the first direction, i.e., the active layer of the first noise-reduction transistor T6 may be located on a virtual line along which the active layer of the second noise-reduction transistor T7 extends along the first direction, and the active layer of the first noise-reduction transistor T6 may overlap (as shown in FIGS. 2B and 3B) with the active layer of the second noise-reduction transistor T7 in the first direction. For example, as shown in FIG. 2A and FIG. 3A , the active layer of the first noise-reduction transistor T6 may be offset from the active layer of the second noise-reduction transistor T7 in the first direction by a certain distance, without affecting the arrangement of other structures and without excessively increasing the width of the shift register unit, as long as the first noise-reduction transistor T6 and the second noise-reduction transistor T7 are located under the input transistor T1 in the first direction, and the embodiments of the present disclosure are not limited thereto.

[0112] In the embodiment of the present disclosure, the input transistor T1, the first noise reduction transistor T6, and the second noise reduction transistor T7 are changed from the horizontally arranged side-by-side structure in FIG. 1D to a vertically arranged structure, which is advantageous for realizing a narrow frame design of the display panel by reducing the width along the second direction of the peripheral region of the display panel, for example, the horizontal width shown in FIG. 1A.

[0113] For example, the gate electrode of the first noise reduction transistor T6 and the gate electrode of the second noise reduction transistor T7 extend along the second direction and are arranged side by side in the first direction. For example, the gate electrode of the first noise reduction transistor T6 and the gate electrode of the second noise reduction transistor T7 may be parallel, for example, both extend along the second direction, and the extension direction of the gate electrode of the first noise reduction transistor T6 and the extension direction of the gate electrode of the second noise reduction transistor T7 do not have to be parallel, for example, they intersect at a certain angle, for example, the intersection angle is 20° or less, or the angle between both of them and the horizontal line is 20° or less. The embodiments of the present disclosure are not limited to this, and it is sufficient that the first noise reduction transistor T6 and the second noise reduction transistor T7 are integrally provided and arranged vertically along the first direction.

[0114] For example, the first electrode of the input transistor T1, the gate electrode of the first control transistor T2, the first electrode of the second noise reduction transistor T7, and the second electrode of the voltage stabilization transistor T8 described below are all connected to the first node N1, and for example, the first electrode of the input transistor T1, the gate electrode of the first control transistor T2, and the first electrode of the second noise reduction transistor T7 are connected through a via hole. The second node N2 is connected to the gate electrode of the first noise reduction transistor T6, the gate electrode of the output control transistor T4, the first electrode of the first control transistor T2, the first electrode of the first capacitor C1, and the first electrode of the second control transistor T3, and for example, as shown in FIG. 2A, the gate electrode of the first noise reduction transistor T6, the gate electrode of the output control transistor T4, the first electrode of the first control transistor T2, the first electrode of the first capacitor C1, and the first electrode of the second control transistor T3 are connected through a via hole. The third node N3 is connected to a first electrode of the voltage stabilization transistor T8, a gate electrode of the output transistor T5, and a first electrode of the second capacitor C2, and for example, the first electrode of the voltage stabilization transistor T8, the gate electrode of the output transistor T5, and the first electrode of the second capacitor C2 are connected through via holes.

[0115] For example, as shown in FIG. 6A, the shift register unit further includes a first switching electrode 17, a second switching electrode 18 and a third switching electrode 16.

[0116] For example, the first switching electrode 17 is connected to the first electrode of the input transistor T1, the gate electrode of the first control transistor T2, the second electrode of the voltage stabilization transistor T8, and the first electrode of the second noise reduction transistor T7. For example, the first switching electrode 17 is connected to the gate electrode of the first control transistor T2 through a via hole penetrating the second insulating layer 360 and the third insulating layer 370, and the first switching electrode 17 is located in the same layer as the first electrode of the input transistor T1, the second electrode of the voltage stabilization transistor T8, and the first electrode of the second noise reduction transistor T7 (for example, all are located in the third conductive layer 340) and is provided integrally with them. For example, the first node N1 includes the first switching electrode 17, that is, the first switching electrode 17 functions as the first node N1 and connects the corresponding electrodes of the input transistor T1, the first control transistor T2, the voltage stabilization transistor T8, and the second noise reduction transistor T7.

[0117] For example, the first switching electrode 17 is a bent line located between the first control transistor T2, the second control transistor T3, the voltage stabilization transistor T8, the first noise reduction transistor T6, and the second noise reduction transistor T7, and extends in a first direction, with its starting point being the first electrode of the input transistor T1 and its end point being the first electrode of the second noise reduction transistor T7. The first noise reduction transistor T6, the second noise reduction transistor T7, and the input transistor T1 are arranged in parallel along the first direction, and the first control transistor T2 and the second control transistor T3 are also arranged in parallel along the first direction. In other words, since the intervals between the first noise reduction transistor T6 and the second noise reduction transistor T7, and between the first control transistor T2 and the second control transistor T3 are relatively small, the extension length of the first switching electrode 17 in the first direction is longer than the extension length in the second direction. Therefore, by shortening the length and width in the second direction of the first switching electrode 17 connecting these transistors, it is advantageous to realize a narrow frame.

[0118] For example, the second switching electrode 18 is connected to the first electrode of the voltage stabilizing transistor T8 and the gate electrode of the output transistor T5. For example, the second switching electrode 18 is connected to the gate electrode of the output transistor T5 through a via hole penetrating the second insulating layer 360 and the third insulating layer 370, and the second switching electrode 18 is located in the same layer as the first electrode of the voltage stabilizing transistor T8 (for example, both are located in the third conductive layer 340) and is integrally provided. For example, the third node N3 includes the second switching electrode 18, that is, the second switching electrode 18 functions as the third node N3 and connects the voltage stabilizing transistor T8 and the output transistor T5.

[0119] For example, as shown in Fig. 4A, the input transistor T1 includes a first gate electrode G1, a second gate electrode G1', and a connection electrode (G11-G13) connecting the first gate electrode G1 and the second gate electrode G1'. The connection electrode (G11-G13) is located in the same layer as the first gate electrode G1 and the second gate electrode G1', extends along a first direction (e.g., the vertical direction shown in Fig. 4A), and includes a first portion G11 connected to the first gate electrode G1, a second portion G12 connected to the second gate electrode G1', and a third portion G13 extending along a second direction (e.g., the horizontal direction shown in Fig. 4A) and connecting the first portion G11 and the second portion G12. The first gate electrode G1 and the second gate electrode G1' of the input transistor T1 are connected to a first clock signal line that provides a first clock signal by the third portion G13 of the connection electrode, thereby receiving the first clock signal.

[0120] For example, the first gate electrode G1 and the second gate electrode G1' are first connected by the connection electrodes (G11-G13), and then connected to the first clock signal line. For example, the gate electrode of the input transistor T1 and the gate electrode of the second control transistor T3 may be connected, and then connected to the first clock signal line as a whole, for example, the connection method shown in FIG. 1D may be adopted, and the embodiment of the present disclosure is not limited thereto.

[0121] For example, as shown in FIG. 2A , for the first-stage shift register unit, the first clock signal line providing the first clock signal is the second sub-clock signal line GCB, and for the second-stage shift register unit, the first clock signal line of the first clock signal is the first sub-clock signal line GCK, but the embodiments of the present disclosure are not limited thereto.

[0122] For example, in some examples, the second electrode of the active layer of the first control transistor T2 may be directly connected to the second sub-clock signal line GCB by wiring. For example, as shown in FIG. 6A, in some other examples, the shift register unit further includes a switching electrode 15, and in this example, the second electrode of the first control transistor T2 may receive the first clock signal by being connected to the third portion G13 of the connection electrode by the switching electrode 15, rather than being directly connected to the second sub-clock signal line GCB by wiring, and by being connected to the third portion G13 of the connection electrode together with the second sub-clock signal line GCB. The embodiment of the present disclosure is not limited thereto.

[0123] For example, the active layer of the input transistor T1 receives an input signal by being connected to a signal input electrode by a first connection wiring L1 extending along the second direction, and the signal input electrode is, for example, a signal input electrode 13 located in the third conductive layer shown in FIG. 6A as an input end IN of the shift register unit 104. For example, the signal input electrode 13 may be an electrode provided separately. For example, as shown in the third conductive layer of the first-stage shift register unit shown in FIG. 6A, the extension region of the second electrode of the output transistor T5 (the second electrode of the output transistor T5 is the output end GOUT of the output circuit 1043) may be the signal input electrode 13. For example, the second electrode of the output transistor T5 of the current-stage shift register unit (i.e., the metal electrode connected to the drain region of the active layer of the output transistor T5) is connected to the output end GOUT of the output circuit 1043 and to the signal input electrode of the next-stage shift register unit (e.g., the second-stage shift register unit) adjacent to the shift register unit (e.g., the first-stage shift register unit) as the input signal of the next-stage shift register unit. The embodiments of the present disclosure do not limit this.

[0124] 2A, 4A and 6A, the shift register unit further includes a line switching electrode 12. For example, the line switching electrode 12 is located on the third conductive layer 340. For example, the line switching electrode 12 is located on a layer different from the active layer of the input transistor T1, for example, a first electrode of the input transistor T1 is electrically connected to the first end 121 of the line switching electrode 12, for example, the first electrode of the input transistor T1 is located on the same layer as the line switching electrode 12 and is integrally formed therewith. For example, the source region of the active layer of the input transistor T1 is connected to the first electrode of the input transistor T1 through a via hole penetrating the first insulating layer 350, the second insulating layer 360, and the third insulating layer 370, the second end 122 of the wiring switching electrode 12 and the first end L11 of the first connection wiring L1 (located in the first conductive layer 320 shown in FIG. 4A) that is not located in the same layer and extends along the second direction are connected through a via hole penetrating the second insulating layer 360 and the third insulating layer 370, and the second end L12 of the first connection wiring L1 that extends along the second direction and the signal input electrode 13 (located in the third conductive layer 340) that is not located in the same layer are electrically connected through a via hole penetrating the second insulating layer 360 and the third insulating layer 370, thereby realizing the connection between the input transistor T1 and the input terminal IN. For example, the wiring switching electrode 12 is located in the same layer as the signal input electrode 13.

[0125] For example, as shown in Figures 2B and 6B, the first connection wiring L1 may be further formed in the third conductive layer 340 and directly connected to the wiring switching electrode 12 and the signal input electrode 13 (i.e., not through a via hole), i.e., formed integrally, and the embodiments of the present disclosure are not limited thereto as long as they can realize the connection between the input transistor T1 and the signal input electrode 13.

[0126] For example, in some embodiments of the present disclosure, the active layer of the first control transistor T2 and the active layer of the second control transistor T3 are formed (i.e., integrally provided) in one continuous control semiconductor layer A12, the control semiconductor layer A12 extends along the first direction, and the gate electrode of the first control transistor T2 and the gate electrode of the second control transistor T3 extend parallel to each other along the second direction and overlap each other in the first direction, i.e., the gate electrode of the first control transistor T2 and the gate electrode of the second control transistor T3 are provided vertically side by side along the first direction in the first conductive layer 320. Note that, for clarity and conciseness, A11 and A12 are named as different semiconductor layers, but the noise reduction semiconductor layer A11 and the control semiconductor layer A12 are both located in the same semiconductor layer 330 shown in FIG. 3A or 3B.

[0127] 2A and 4A, the orthogonal projection of the second control transistor T3 onto the base substrate 10 and the orthogonal projection of the first control transistor T2 onto the base substrate 10 are located on both sides of the second sub-connection wiring L4 in the first direction. Of course, the extension direction of the gate electrode of the first control transistor T2 and the extension direction of the gate electrode of the second control transistor T3 do not have to be parallel, and may intersect at a certain angle, for example, the intersecting angle is 20°, or the angle between both and the horizontal line is 20°, and the embodiment of the present disclosure is not limited thereto.

[0128] For example, as shown in FIGS. 2A and 2B and 3A and 3B, the active layer of the first control transistor T2 may partially overlap (as shown in FIGS. 2A and 3A) or completely overlap (not shown) with the active layer of the second control transistor T3 in the first direction, i.e., the active layer of the first control transistor T2 may be located on a virtual line along which the active layer of the second control transistor T3 extends in the first direction, and the active layer of the first control transistor T2 does not need to overlap with the active layer of the second control transistor T3 in the first direction, for example, as shown in FIGS. 2A and 3A, the active layer of the first control transistor T2 and the active layer of the second control transistor T3 are offset by a certain distance in the first direction, which does not affect the arrangement of other structures and does not excessively increase the width of the shift register unit, and the active layer of the first control transistor T2 and the active layer of the second control transistor T3 are located under the input transistor T1 in the first direction, and the embodiments of the present disclosure are not limited thereto.

[0129] For example, the active layer of the first control transistor T2, the active layer of the second control transistor T2, and the active layer of the input transistor T1 are arranged in parallel in the second direction. For example, in some examples, the active layer of the first control transistor T2 and the active layer of the second control transistor T3 intersect with a virtual line on which the active layer of the input transistor T1 extends along the second direction, that is, the active layer of the first control transistor T2 and the active layer of the second control transistor T3 are located on the virtual line on which the active layer of the input transistor T1 extends along the second direction. For example, in the embodiment of the present disclosure, it is only necessary to satisfy the connection relationship of the circuit without restricting transistors other than the first control transistor T2 and the second control transistor T3 in the shift register unit.

[0130] As a result, in the embodiment of the present disclosure, the arrangement of the first control transistor T2 and the second control transistor T3 is changed from the structure in which they are arranged left and right along the second direction as shown in FIG. 1D to a structure in which they are arranged up and down along the first direction, which is advantageous for realizing a narrow frame design of the display panel by reducing the horizontal width of the peripheral area of ​​the display panel and the distance from the transistors to the signal line and the second power line.

[0131] For example, in some embodiments of the present disclosure, the active layer of the input transistor T1 is further located on a virtual line along which the active layers of the first noise reduction transistor T6 and the second noise reduction transistor T7 extend in the first direction, and the active layers of the first control transistor T2 and the second control transistor T3 and the active layers of the first noise reduction transistor T6 and the second noise reduction transistor T7 are arranged side by side facing each other in the second direction, thereby reducing the distance from the active layers of the first control transistor T2 and the second control transistor T3 to the active layers of the first noise reduction transistor T6 and the second noise reduction transistor T7.

[0132] For example, in some examples, the shift register unit further includes an intermediate switching electrode 11. The gate electrode of the first noise reduction transistor T6 is connected to the first electrode of the first control transistor T2 and the first electrode of the second control transistor T3 by the intermediate switching electrode 11 located in the second conductive layer 330 shown in Fig. 5A and the second connecting sub-wire L4 in Fig. 6A, i.e., connected to the part between the active layer of the first control transistor T2 and the active layer of the second control transistor T3, and the orthogonal projection of the intermediate switching electrode 11 onto the base substrate 10 does not overlap with the orthogonal projection of the active layer of the first control transistor T2 and the active layer of the second control transistor T3 onto the base substrate 10 in the first direction, i.e., the orthogonal projection of the intermediate switching electrode 11 onto the base substrate 10 is located between the orthogonal projection of the active layer of the first control transistor T2 and the active layer of the second control transistor T3 onto the base substrate 10 and the orthogonal projection of the first noise reduction transistor T6 onto the base substrate 10.

[0133] As a result, in the embodiment of the present disclosure, the arrangement of the first control transistor T2 and the second control transistor T3 is changed from a structure in which they are arranged side-by-side along the second direction shown in FIG. 1D to a structure in which they are arranged up and down along the first direction shown in FIG. 2A, and the arrangement and positions of the input transistor T1, the first noise reduction transistor T6, and the second noise reduction transistor T7 are also changed to a structure in which they are arranged up and down along the first direction. This shortens the distance between the orthogonal projection of the first noise reduction transistor T6 onto the base substrate 10 and the orthogonal projection of the first control transistor T2 and the second control transistor T3 onto the base substrate 10, thereby significantly shortening the length of connection between the gate electrode of the first noise reduction transistor T6 and the wiring between the first control transistor T2 and the second control transistor T3 (i.e., the intermediate switching electrode 11), and significantly optimizing the problem of space congestion caused by dense and excessively long wiring.

[0134] For example, in some examples, the connection manner of the intermediate switching electrode 11 is as shown in FIG. 7A or FIG. 7B. For example, in the examples, the intermediate switching electrode 11 is located on the second conductive layer 11. For example, as shown in FIG. 7A, the first insulating layer 350 is located between the active layer (e.g., located in the semiconductor layer 310 and including the source region S6, the drain region D6, and the channel region P6) of the first noise reduction transistor T6 and the gate electrode G6 of the first noise reduction transistor T6 in the direction perpendicular to the base substrate 10, and the second insulating layer 360 is located between the gate electrode G6 of the first noise reduction transistor T6 and the intermediate switching electrode 11 in the direction perpendicular to the base substrate 10.

[0135] 7A, in some examples, the gate electrode of the first noise reduction transistor T6 is connected to the first end 111 of the intermediate switching electrode 11 through a via hole H22 penetrating the second insulating layer 360, and the first electrode S21 of the first control transistor T2 is located in the same layer as the intermediate switching electrode 11 and is connected to the second end 112 of the intermediate switching electrode 11, i.e., the intermediate switching electrode 11 and the first electrode S21 of the first control transistor T2 are integrally provided, thereby realizing the connection between the gate electrode of the first noise reduction transistor T6 and the first electrode of the first control transistor T2. The first electrode S21 of the first control transistor T2 and the source region S2 of the active layer of the first control transistor T2 (i.e., the first electrode of the first control transistor T2) are connected through a via hole H11 penetrating the first insulating layer 350 and the second insulating layer 360. For example, in some examples, the second node N2 includes the intermediate switching electrode 11. 7A only shows that the first electrode S21 of the first control transistor T2 is connected to the second end 112 of the intermediate switching electrode 11, and since the first electrode of the first control transistor T2 is connected to the first electrode of the second control transistor T3, the first electrode of the second control transistor T3 is also connected to the second end 112 of the intermediate switching electrode 11, and the embodiments of the present disclosure are not limited thereto. The following embodiments are similar to this, and the description will be omitted.

[0136] 5C and 7B, in some other examples, the shift register unit 104 further includes a second connecting line, for example, the second connecting line includes a first connecting sub-line L3 and a second connecting sub-line L4. For example, the third insulating layer 370 is located between the intermediate switching electrode 11 and the second connecting lines L3 / L4 in a direction perpendicular to the base substrate 10.

[0137] For example, the gate electrode G6 of the first noise reduction transistor T6 is connected to the first connection sub-wiring L3 via a via hole H4 that penetrates the second insulating layer 360 and the third insulating layer 370, and the first end 111 of the intermediate switching electrode 11 is connected to the first connection sub-wiring L3 via a via hole H3 that penetrates the third insulating layer 370.

[0138] For example, the source region S2 of the active layer of the first control transistor T2 is connected to the first electrode S21 of the first control transistor T2 through a via hole H1 that penetrates the first insulating layer 350, the second insulating layer 360 and the third insulating layer 370, the first electrode S21 of the first control transistor T2 is connected to the second connection sub-wiring L4 and is located in the same layer as the first electrode S21 of the first control transistor T2 and is integrally provided, and the second end of the intermediate switching electrode 11 is connected to the second connection sub-wiring L4 through a via hole H2 that penetrates the third insulating layer 370, thereby realizing the connection between the gate electrode of the first noise reduction transistor T6 and the first electrode of the first control transistor T2.

[0139] For example, in this example, the second node N2 includes the intermediate switching electrode 11 and the second connection line.

[0140] For example, in some other examples, the second connection wiring only includes the first connection sub-wiring L3 or the second connection sub-wiring L4. For example, in the examples shown in Figures 2B and 7C, the second connection wiring only includes the second connection sub-wiring L4, but of course the embodiments of the present disclosure are not limited thereto.

[0141] For example, as shown in FIGS. 5C and 7C, in this example, the middle switching electrode 11 may be located in the first conductive layer 320 and is integrally formed with the gate electrode of the first noise reduction transistor T6.

[0142] For example, as shown in FIG. 7C , the source region S2 of the active layer of the first control transistor T2 is connected to the first electrode S21 of the first control transistor T2 through a via hole H1 that penetrates the first insulating layer 350, the second insulating layer 360 and the third insulating layer 370, the first electrode S21 of the first control transistor T2 is connected to the second connection sub-wiring L4, the first electrode S21 of the first control transistor T2 is located in the same layer as the second connection sub-wiring L4 and is integrally provided, and the second end 112 of the intermediate switching electrode 11 is connected to the second connection sub-wiring L4 through a via hole H2 that penetrates the third insulating layer 370, thereby realizing the connection between the gate electrode of the first noise reduction transistor T6 and the first electrode of the first control transistor T2.

[0143] For example, in this example, the second node N2 includes the intermediate switching electrode 11 and the second connection sub-wire L4.

[0144] 6A, the second power supply line VGL includes a protrusion 14 that protrudes in the second direction. The active layer of the voltage stabilization transistor T8 is located between the active layer of the second control transistor T3 and the active layer of the second noise reduction transistor T7 in the second direction, and the second electrode of the second control transistor T3 and the gate electrode of the voltage stabilization transistor T8 are both connected to the protrusion 14 on the second power supply line VGL. For example, the second electrode of the second control transistor T3 is located in the same layer as the protrusion 14 on the second power supply line VGL and is formed integrally with the protrusion 14, and the gate electrode of the voltage stabilization transistor T8 and the protrusion 14 on the second power supply line VGL that is not located in the same layer are connected to the protrusion 14 on the second power supply line VGL by, for example, a second insulating layer 360 and a third insulating layer 370. The second control transistor T3 receives the second voltage by being connected through a via hole penetrating the protrusion 14, and for example, the via hole for connecting the second electrode of the second control transistor T3 and the drain region of the active layer of the second control transistor T3 and the via hole for connecting the gate electrode of the voltage stabilization transistor T8 and the protrusion 14 overlap different sides of the protrusion 14 (for example, as shown in FIG. 2A, they overlap the upper and lower sides of the protrusion 14 along the first direction, respectively), and are located at different diagonal corners of the protrusion 14, for example (for example, as shown in FIG. 2A, they overlap the upper left corner and lower right corner of the protrusion 14 along the first direction, respectively).

[0145] In an embodiment of the present disclosure, the first control transistor T2 and the second control transistor T3 are changed from a structure in which they are arranged side by side along the second direction shown in FIG. 1D to a structure in which they are arranged vertically along the first direction shown in FIG. 2A. This allows the peripheral region of the display panel to have a reduced width in the second direction, thereby shortening the distance between other transistors (e.g., the voltage stabilization transistor T8) and the second power line VGL. In addition, the second electrode (e.g., the source electrode) of the second control transistor T3 is connected to the protrusion 14 on the second power line VGL together with the gate electrode of the voltage stabilization transistor T8, and is therefore closer in space. This reduces the length of the wiring, which is advantageous for realizing a narrow frame of the display panel.

[0146] For example, as shown in Figures 2A and 5A, the first electrode CE11 and the second electrode CE12 of the first capacitor C1 include a notch, and a signal input electrode 13 connected to a first connection wiring L1 extending along the second direction is formed in the notch of the first capacitor C1. For example, the signal input electrode 13 is orthogonally projected onto the base substrate and enters into the notch of the orthogonal projection of the first capacitor C1 onto the base substrate, and the shapes of the first electrode CE11 and the second electrode CE12 of the first capacitor C1 are complementary to the signal input electrode 13. This makes full use of the space on the display substrate, which is advantageous for realizing a narrow frame design of the display panel.

[0147] Although the capacitor shape of the first capacitor C1 changes, the dimensions / size of the first capacitor C1 generally do not change; for example, the dimensional change may vary by 10% to 20%, and the specific shape may be designed according to other structures, and the embodiments of the present disclosure are not limited thereto.

[0148] For example, as shown in FIGS. 2A and 4A, the orthogonal projection onto the base substrate 10 of the third connection wiring L2 (located in the first conductive layer 320) connecting the clock signal line (e.g., the first sub-clock signal line GCK) providing the second clock signal and the gate electrode of the second noise reduction transistor T7 overlaps with the orthogonal projection onto the base substrate 10 of the active layer of the second noise reduction transistor T7 in the first direction, and at least a portion of the third connection wiring L2 is parallel to the gate electrode of the second noise reduction transistor T7, i.e., the third connection wiring L2 passes through the side of the active layer of the second noise reduction transistor T7 away from the signal line (e.g., the right side of the active layer of the second noise reduction transistor T7 shown in FIG. 2A).

[0149] For example, as shown in Figures 2A and 4A, the third connecting wiring L2 includes a third sub-connecting wiring L21 and a fourth sub-connecting wiring L22, the third sub-connecting wiring L21 extends along the first direction, and the orthogonal projection onto the base substrate 10 and the orthogonal projection of the active layer of the second noise reduction transistor T7 onto the base substrate 10 are arranged opposite each other along the second direction, and the fourth sub-connecting wiring L22 is connected to the third sub-connecting wiring L21 and extends along the second direction.

[0150] For example, in some examples, as shown in FIG. 4A, the third connection wiring L2 is one gate electrode wiring, that is, the third sub-connection wiring L21 and the fourth sub-connection wiring L22 are directly connected (no need for connection by a via hole) and are integrally formed, for example, the fourth sub-connection wiring L22 is connected to the first sub-clock signal line GCK that provides the second clock signal. For example, in another example, as shown in FIG. 4B, the third connection wiring L2 includes gate electrode wirings connected through via holes, one of which is the third sub-connection wiring L21 and the other is the fourth sub-connection wiring L22. The connection relationship between the third sub-connection wiring L21 and the fourth sub-connection wiring L22 will be introduced in detail below.

[0151] For example, the third sub-connection wiring L21 that connects the fourth sub-connection wiring L22 and the gate electrode of the second noise reduction transistor T7 and the first electrode of the output transistor T5 that is not located in the same layer are connected through a via hole, thereby connecting the first electrode of the output transistor T5 to the second clock signal terminal CB, and for example, the second clock signal terminal CB is connected to the first sub-clock signal line GCK. For example, the first electrode of the output transistor T5 is electrically connected to the third sub-connection wiring L21, and the third sub-connection wiring L21 is located on one side of the active layer of the second noise reduction transistor T7 adjacent to the output transistor T5. For example, the orthogonal projection of the via hole onto the base substrate 10 is located between the orthogonal projection of the active layer of the second noise reduction transistor T7 onto the base substrate 10 and the orthogonal projection of the active layer of the output transistor T5 onto the base substrate 10. For example, the fourth sub-connection wiring L22 is located on the first conductive layer 320, and its orthogonal projection onto the base substrate 10 is located between the orthogonal projection onto the base substrate 10 of the voltage stabilization transistor T8 of the Xth stage shift register unit and the orthogonal projection onto the base substrate 10 of the input transistor T1 of the X+1th stage shift register unit.

[0152] For example, the gate electrode of the output transistor T5 is electrically connected to the first electrode of the voltage stabilization transistor T8, and the second electrode of the output transistor T5 is connected to the output terminal GOUT.

[0153] For example, in some examples, as shown in FIGS. 2A, 4A, 5C and 7D, the first electrode S51 of the output transistor T5 is connected to the source region S5 of the output transistor T5 through a via hole H7 penetrating the first insulating layer 350, the second insulating layer 360 and the third insulating layer 370, and the first electrode S51 of the output transistor T5 is connected to the fourth connecting line L5, for example, the first electrode S51 of the output transistor T5 is located in the same layer as the fourth connecting line L5 and is formed integrally therewith, and the fourth connecting line L5 is It is connected to the third sub-connecting wiring L21 through via holes H5 and H6 that penetrate the second insulating layer 360 and the third insulating layer 370, and the third sub-connecting wiring L21 is connected to the gate electrode G7 of the second noise reduction transistor T7 and the fourth sub-connecting wiring L22, so that the first electrode S51 of the output transistor T5 is connected to the gate electrode G7 of the second noise reduction transistor T7 and is also connected together to the first sub-clock signal line GCK, thereby realizing reception of the second clock signal.

[0154] For example, in some other examples, as shown in FIGS. 2B, 4B, 5D, 6B, and 7E, a first electrode of the output transistor T5 is connected to the fourth connection wiring L5, a first electrode S51 of the output transistor T5 is connected to the fourth connection wiring L5, a first end L51 of the fourth connection wiring L5 is connected to the third sub-connection wiring L21 located on the second conductive layer 320 through a via hole H8 and a via hole H9 penetrating the second insulating layer 360 and the third insulating layer 370, and a second end L52 of the fourth connection wiring L5 is connected to the third sub-connection wiring L21 located on the second conductive layer 320 through a via hole H8 and a via hole H9 penetrating the second insulating layer 360 and the third insulating layer 370. The first electrode of the output transistor T5 is connected to the gate electrode G7 of the second noise reduction transistor T7 through via holes H5 and H6 located on the second conductive layer 320, and the third sub-connection wiring L21 is directly connected to and integrally formed with the gate electrode G7 of the second noise reduction transistor T7, so that the first electrode of the output transistor T5 is connected to the gate electrode G7 of the second noise reduction transistor T7, and is also connected to the first sub-clock signal line GCK together through the fourth connection wiring L5 and the fourth sub-connection wiring L22, thereby achieving reception of the second clock signal.

[0155] 2A, 3A, and 4A, the active layer of the output control transistor T4 and the active layer of the output transistor T5 are formed of one first output semiconductor layer A13 and one second output semiconductor layer A14 (i.e., the active layer of the output control transistor T4 and the active layer of the output transistor T5 are integrally provided) and extend along the first direction. For example, the active layer of the output control transistor T4 and the active layer of the output transistor T5 are located on a virtual line in the first direction, and for example, the active layer of the output control transistor T4 includes the third semiconductor layer A13 and the upper half portion of the fourth semiconductor layer A14 along the first direction, and the active layer of the output transistor T5 includes the third semiconductor layer A13 and the lower half portion of the fourth semiconductor layer A14 along the first direction. In addition, the ratio of the active layer of the output control transistor T4 and the active layer of the output transistor T5 to the third semiconductor layer A13 and the fourth semiconductor layer A14, respectively, may be set according to the actual situation, and the embodiment of the present disclosure does not limit it. For example, the gate electrode of the output control transistor T4 and the gate electrode of the output transistor T5 extend along the second direction and overlap each other in the first direction, that is, the output control transistor T4 and the output transistor T5 are arranged vertically side by side along the first direction. For example, the gate electrode of the output control transistor T4 and the gate electrode of the output transistor T5 are located on a virtual line in the first direction. For example, the first electrode of the output control transistor T4 is electrically connected to the first power line VGH.

[0156] In the embodiment of the present disclosure, in comparison with the situation in which connecting wiring is provided on both sides of the second noise reduction transistor T7 shown in FIG. 1D, at least one embodiment of the present disclosure changes the configuration of the connecting wiring of the second noise reduction transistor T7 (i.e., the wiring only passes between the output transistor T5 and the second noise reduction transistor T7), which reduces the complexity of the wiring, avoids the problem of space congestion, and is advantageous for realizing a narrow frame design of the display panel.

[0157] For example, in some embodiments of the present disclosure, the line width of the wiring of each layer is, for example, generally 3 microns, and the interval between the wirings located on the same layer is, for example, greater than 3 microns. For example, the wiring interval may be related to, for example, the accuracy of the exposure machine, the higher the accuracy of the exposure machine, the smaller the interval, and may be specifically determined according to the actual situation, and the embodiments of the present disclosure are not limited thereto. In the embodiments of the present disclosure, in order to avoid wiring adhesion and signal short circuit in the actual process, a necessary interval must be left between the wirings of the same layer.

[0158] The interval between the orthogonal projection of each wiring of the first conductive layer 320 onto the base substrate 10 and the orthogonal projection of each wiring of the second conductive layer 330 onto the base substrate 10 is, for example, typically 1.5 microns, and the gate electrode of the transistor in the first conductive layer 320 must exceed the active layer in the semiconductor layer 31 by, for example, 2 microns or more. For example, as shown in Figures 2A, 3 and 4, the "U"-shaped double gate of the first transistor T1 must exceed the strip-shaped active layer of the first transistor T1 on both sides of the strip-shaped active layer of the first transistor T1 in the first direction by, for example, 2 microns or more, and the length of the portion (for example, the first portion G11 and the second portion G12) that does not overlap with the strip-shaped active layer of the first transistor T1 in the first direction is, for example, 2 microns or more, and the embodiment of the present disclosure is not limited thereto.

[0159] For example, the interval between the orthogonal projection of the active layer of each transistor on the semiconductor layer 310 onto the base substrate 10 and the orthogonal projection of each gate electrode wiring on the first conductive layer 320 onto the base substrate 10 is 1.5 microns or more, thereby making it possible to avoid the occurrence of a channel effect between the gate electrode wiring and the active layer of each transistor on the semiconductor layer 310. For example, the interval between the orthogonal projection of the semiconductor layer 310 onto the base substrate 10 and the orthogonal projection of the second conductive layer 330 onto the base substrate 10 is not limited and may be provided with an overlap. For example, in some embodiments of the present disclosure, a certain interval (this interval is smaller than the interval between the wirings of the same layer) is maintained as much as possible between the wirings of different layers, which reduces unnecessary overlapping and avoids the occurrence of mutual interference due to excessive parasitic capacitance.

[0160] For example, the width of each wiring in the third conductive layer 340 needs to enclose the corresponding via hole, and may exceed the dimension of the via hole (e.g., the diameter of the via hole) by 1 micron or more, for example, the dimension of the via hole is 2.0 to 2.5 microns, and the width of each wiring in the third conductive layer 340 enclosing the via hole is 4 to 5 microns. For example, the wiring line width of the output control transistor T4 and the output transistor T5 corresponding to the via hole exceeds 1 micron above and below the via hole, for example, 4.0 to 4.5 microns, and there are relatively many via holes corresponding to the output control transistor T4 and the output transistor T5, but the width of the wiring connected to other transistors and located in the third conductive layer 340 only needs to satisfy the requirement of enclosing the via hole by exceeding 1 micron at the position of the via hole, and for example, the wiring width between the via holes may be thin.

[0161] For example, the spacing between the wirings of the first sub-clock signal line GCK, the second sub-clock signal line GCB, the first power supply line VGH, the second power supply line VGL, and the like located in the third conductive layer 340 is 3 microns or more, the first sub-clock signal line GCK and the second sub-clock signal line GCB are required to have a line width of 9 microns or more in order to satisfy the driving capability, the line width of the second power supply line VGL may be 6, 9 or 10 microns, the line width of the first power supply line VGH is, for example, 10 microns, and the line width of the reference voltage line Vinit is, for example, The width of the reference voltage line Vinit is, for example, 15 microns, the second voltage provided by the second power line VGL is, for example, generally −7V, and the reference voltage provided by the base voltage line Vinit is, for example, −3V. The reference voltage line Vinit is required to drive the pixel array of the entire display panel, but the first power line VGH and the second power line VGL only need to drive the gate electrode driving circuit located in the peripheral region of the display panel, so the line width of the reference voltage line Vinit is slightly wider than the line width of the first power line VGH and the line width of the second power line VGL.

[0162] For example, in some examples, the thickness of the first conductive layer 320 and the second conductive layer 330 is 2000-300 angstroms, and the thickness of the third conductive layer 340 is 5000-8000 angstroms, although the embodiments of the present disclosure are not limited thereto.

[0163] For example, in some embodiments of the present disclosure, the protrusion on the second power line VGL is provided to shorten the connection wiring connecting the gate electrode of the voltage stabilizing transistor T8 and the active layer of the second control transistor T3, and if the active layer of the second control transistor T3 is too long, the doped conductor resistance is relatively large. For example, in some embodiments of the present disclosure, the shape of the wiring (i.e., the intermediate switching electrode 11) in the third conductive layer 340 of the first node N1 is designed so that the wiring and electrodes of other layers do not overlap as much as possible when projected orthogonally onto the base substrate 10, and is provided at the position of the gap, thereby avoiding the occurrence of crosstalk due to wiring overlap.

[0164] In addition, in the embodiment of the present disclosure, for example, the first switching electrode 17, the second switching electrode 18, and the third switching electrode 16 are located on the third conductive layer 340. For example, the first switching electrode 17 is an electrode for connecting the input transistor T1, the first control transistor T2, the second noise reduction transistor T7, and the voltage stabilization transistor T8 shown in FIG. 1B, for example, and the first node N1 includes the first switching electrode 17. For example, the second switching electrode 18 is an electrode for connecting the voltage stabilization transistor T8 and the output transistor T5, and the third node N3 includes the second switching electrode 18. For example, the intermediate switching electrode 11 is an electrode for connecting the first control transistor T2, the second control transistor T3, and the first noise reduction transistor T6, and may be located on the second conductive layer 330 or the first conductive layer 320. When the intermediate switching electrode 11 is located on the second conductive layer 330 and adopts the connection manner shown in Fig. 7B, the second node N2 includes the intermediate switching electrode 11 and the third sub-connecting wiring L3 and the fourth sub-connecting wiring L4 located on the third conductive layer 340, which are connected to the intermediate switching electrode 11. For example, the wiring switching electrode 12 is located on the first conductive layer 320 and is a switching electrode connected to the first connecting wiring L1 located on the third conductive layer 340, or both are located on the same layer, and the embodiment of the present disclosure is not limited thereto.

[0165] For example, the provision of the switching electrodes and the connecting wires can avoid problems such as wire adhesion, signal short circuit, etc., which are caused by the crowded wiring on the same layer. For example, each of the switching electrodes and the connecting wires serves as a connection or jumper connection.

[0166] The line connection and structural layout of the shift register unit with the display substrate optimized according to the above embodiment of the present disclosure compresses the length of the shift register unit to a certain extent, which is favorable for realizing a narrow frame design of the display panel, and at the same time ensures the display quality of the display panel.

[0167] At least one embodiment of the present disclosure further provides a display device. Figure 8 is a schematic diagram of a display device according to at least one embodiment of the present disclosure. As shown in Figure 8, the display device 2 includes a display substrate 1 according to any one embodiment of the present disclosure, for example, the display substrate 1 shown in Figure 2A or Figure 2B.

[0168] It should be noted that the display device 2 may be any product or component having a display function, such as an OLED panel, an OLED TV, a QLED panel, a QLED TV, a mobile phone, a tablet computer, a notebook computer, a digital photo frame, a navigation device, etc. The display device 2 may further include other components, such as a data driving circuit, a timing controller, etc., and the embodiments of the present disclosure are not limited thereto.

[0169] In order to clearly and concisely illustrate what should be described, the embodiment of the present disclosure does not provide all the constituent units of the display device. In order to realize the substrate function of the display device, those skilled in the art can provide and provide other structures not shown according to specific needs, and the embodiment of the present disclosure is not limited thereto.

[0170] Regarding the technical effects of the display device 2 according to the above embodiment, reference may be made to the technical effects of the display substrate 1 according to the embodiment of the present disclosure, and the description thereof will be omitted here.

[0171] At least one embodiment of the present disclosure further provides a method for manufacturing a display substrate. Figure 9 is a flow chart of a method for manufacturing a display substrate according to at least one embodiment of the present disclosure. For example, the manufacturing method can be used to manufacture a display substrate according to any one embodiment of the present disclosure. For example, the manufacturing method can be used to manufacture a display substrate shown in Figure 2A.

[0172] As shown in FIG. 9, the method for manufacturing the display substrate includes steps S110 to S120.

[0173] Step S110: Provide a base substrate.

[0174] Step S120: In a direction perpendicular to the base substrate, a semiconductor layer, a first insulating layer, a first conductive layer, a second insulating layer, a second conductive layer, a third insulating layer and a third conductive layer are sequentially formed.

[0175] For example, forming a semiconductor layer, a first insulating layer, a first conductive layer, a second insulating layer, a second conductive layer, a third insulating layer, and a third conductive layer includes forming a corresponding material layer (e.g., a semiconductor material layer, an insulating material layer, or a conductive material layer), and then forming a corresponding pattern structure (e.g., an active layer, an electrode pattern, a wiring, a via hole, etc.) by a patterning process. The patterning process is, for example, a photolithography process, and includes, for example, coating a photoresist layer on the material layer that needs to be patterned, exposing the photoresist layer using a mask plate, developing the exposed photoresist layer to obtain a photoresist pattern, etching the structure layer using the photoresist pattern, and then selectively removing the photoresist pattern.

[0176] For step S110, for example, the base substrate 10 may be made of, for example, glass, plastic, quartz, or other suitable materials, and the embodiments of the present disclosure are not limited thereto.

[0177] For example, a shift register unit, a first power supply line, a second power supply line, a first clock signal line, and a second clock signal line are formed on a base substrate.

[0178] For step S120, for example, forming the shift register unit includes sequentially forming a semiconductor layer, a first insulating layer, a first conductive layer, a second insulating layer, a second conductive layer, a third insulating layer and a third conductive layer in a direction perpendicular to a base substrate.

[0179] For example, the first power supply line VGH, the second power supply line VGL, and a plurality of clock signal lines (for example, a trigger signal line GSTV, a first sub-clock signal line GCK, and a second sub-clock signal line GCB, etc.), the first electrode and the second electrode of each transistor included in the shift register unit 104, the connection wiring connecting each transistor and a capacitor, the switching electrode, etc. are located on the third conductive layer 340, the active layer of each transistor is located on the semiconductor layer 310, the gate electrode of each transistor and the first electrode of each capacitor included in the shift register unit are located on the first conductive layer 320, the second electrode of each capacitor is formed on the second conductive layer 330, and each transistor and each capacitor are connected to the first power supply line VGH, the second power supply line VGL, the plurality of clock signal lines, the connection wiring, and the switching electrode through via holes penetrating the first insulating layer 310, the second insulating layer 320, or the third insulating layer 330, respectively.

[0180] Regarding the arrangement of each transistor and capacitor of the shift register unit 104, the first power supply line VGH, the second power supply line VGL, the multiple clock signal lines, the connection wiring and the connection structure of the switching electrodes, the descriptions in Figures 2A to 7E may be referred to, and the description will be omitted here.

[0181] It should be noted that in the embodiments of the present disclosure, the flow of the method for manufacturing the display substrate may include more or less operations, and these operations may be performed in sequence or in parallel. Although the flow of the method for manufacturing described above includes operations that appear in a specific order, it should be clearly understood that the order of the operations is not limited. The method for manufacturing described above may be performed once, or may be performed multiple times according to a predetermined condition.

[0182] Regarding the technical effects of the method for manufacturing the display substrate according to the above embodiment, reference may be made to the technical effects of the display substrate according to the embodiment of the present disclosure, and the description thereof will be omitted here.

[0183] A few points need to be explained:

[0184] (1) The accompanying drawings of the embodiments of the present disclosure only relate to the structures of the embodiments of the present disclosure, and other structures may refer to standard designs.

[0185] (2) In the absence of a conflict, the embodiments and features of the embodiments of the present disclosure can be combined with each other to obtain new embodiments.

[0186] What has been described above is merely an exemplary embodiment of the present disclosure, and is not intended to limit the protection scope of the present disclosure, which is determined by the appended claims. [Explanation of symbols]

[0187] 1 Display board 2 Display device 10 Base Board 11 Intermediate switching electrode 101 Display Panel 102 Effective display area, pixel array area 103 pixel unit 104 Shift Register Unit 105 Light Emitting Control Unit 310 Semiconductor layer 320 First conductive layer 330 Second conductive layer 340 Third conductive layer 350 First insulating layer 360 Second insulating layer 370 Third insulating layer 380 4th insulating layer

Claims

1. a base substrate including a display area and a peripheral area located on at least one side of the display area; A display substrate including a shift register unit and a first clock signal line provided in a peripheral region of the base substrate, The first clock signal line extends along a first direction on the base substrate, is connected to a first clock signal terminal, and is configured to provide a first clock signal to the shift register unit; the shift register unit includes an input circuit, an output circuit, a first control circuit, and an output control circuit; the input circuit is configured to input an input signal to a first node in response to the first clock signal; the output circuit is configured to output an output signal to an output terminal; the first control circuit is configured to control a level of a second node in response to a level of the first node and the first clock signal; the output control circuit is configured to control a level of the output terminal by controlling a level of the second node; the output control circuit includes an output control transistor and a first capacitor, the output circuit includes an output transistor and a second capacitor, an active layer of the output control transistor and an active layer of the output transistor are integrally provided and extend along the first direction; an active layer of the output control transistor and an active layer of the output transistor that are integrally provided include a first output semiconductor layer and a second output semiconductor layer that are arranged side by side in a second direction different from the first direction, and an orthogonal projection of the second output semiconductor layer onto the base substrate is located between an orthogonal projection of the first output semiconductor layer onto the base substrate and the display area; a side of the first output semiconductor layer away from the display area when orthogonally projected onto the base substrate includes a first sub-notch; A display substrate, wherein a side of the second output semiconductor layer adjacent to the display area in the orthogonal projection onto the base substrate includes a second minor notch.

2. 2. The display substrate according to claim 1, wherein a projection of an electrode on which a gate electrode of the output control transistor is located, and a projection of at least one of the first sub-notch and the second sub-notch, on the base substrate, overlap each other.

3. 2. The display substrate according to claim 1, wherein an orthogonal projection of an electrode in which a first pole of the output control transistor is present, onto the base substrate, overlaps with an orthogonal projection of at least one of the first sub-notch and the second sub-notch, onto the base substrate.

4. 4. The display substrate according to claim 1, wherein a portion of an electrode on which a first pole of the output control transistor is present, when projected orthogonally onto the base substrate, that is away from a display region of the first output semiconductor layer, includes a first inclined portion, and an extension direction of the first inclined portion is different from the first direction and the second direction.

5. 4. The display substrate according to claim 1, wherein a portion of the electrode on which the first pole of the output control transistor is present, which is adjacent to the display area of ​​the second output semiconductor layer, is one pole of a first capacitor.

6. an electrode on which a gate electrode of the output control transistor is present includes a first horizontal portion extending along the first direction, a side of the first horizontal portion away from the display area has a first child portion, and an orthogonal projection of the first child portion of the first horizontal portion onto the base substrate is located within an orthogonal projection of the first child notch onto the base substrate; 4. The display substrate according to claim 1, wherein the gate electrode of the output control transistor further includes a second inclined portion, the second inclined portion is connected to a first child portion of the first horizontal portion, and an extension direction of the second inclined portion is different from the first direction and the second direction.

7. The display substrate according to claim 6 , wherein the length of the first inclined portion in the extension direction is longer than the length of the second inclined portion in the extension direction.

8. The display substrate according to claim 6 , wherein the first inclined portion and the second inclined portion are substantially parallel to each other.

9. the input circuit includes an input transistor, a first electrode of the input transistor being connected to a signal input electrode by a first connection wiring extending along the second direction to receive the input signal; 6. The display substrate of claim 5, wherein the first and second poles of the first capacitor include a notch on a side away from the display area when projected orthogonally on the base substrate, and a portion of the signal input electrode for connecting the first connection wiring is located in the notch of the first capacitor.

10. The shift register unit further includes a second control circuit, the second control circuit being connected to the first node and the second node and configured to control a level of the first node by controlling a level of the second node and the second clock signal, the second control circuit including a first noise reduction transistor connected to the second node and a second noise reduction transistor connected to the first node; the shift register unit further includes a second connection wiring, the second connection wiring includes a first sub-connection wiring, and a gate electrode of the first noise reduction transistor is connected to the first connection sub-connection wiring through a via hole; The display substrate includes: a second clock signal line connected to a second clock signal terminal to provide a second clock signal to the shift register unit; a third connection wiring connected to the second clock signal line, 2. The display substrate according to claim 1, wherein the third connection wiring includes a gate electrode of the second noise reduction transistor, and the third connection wiring is connected to the second clock signal line through a via hole.

11. the display substrate further includes a fourth connection wiring, a first pole of the output transistor and the second clock signal terminal are electrically connected, and the second clock signal terminal and the fourth connection wiring are electrically connected, the fourth connection wiring includes a first portion and a second portion, the first portion of the fourth connection wiring and the second portion of the fourth connection wiring both extend along a second direction and are arranged at intervals in the first direction, the first portion of the fourth connection wiring is located on a side of the gate electrode of the output transistor away from the gate electrode of the output control transistor, and the second portion of the fourth connection wiring is located on a side of the output transistor close to the gate electrode of the output control transistor, The display substrate of claim 10, wherein the fourth connection wiring is connected to the third connection wiring through a via hole, and the first electrode of the output transistor and the gate electrode of the second noise reduction transistor are connected to the second clock signal line to receive the second clock signal.

12. The fourth connection wiring is a via hole connection portion connected to a side of a second portion of the fourth connection wiring that is away from the display region in the second direction and electrically connected to the third connection wiring through a via hole; 12. The display substrate of claim 11, further comprising a third inclined portion directly connected to the via hole connection portion, wherein an acute angle between an extension direction of the third inclined portion and an extension direction of the via hole connection portion is 20 degrees or more.

13. 11. The display substrate of claim 10, wherein the third connection wiring includes a horizontal portion and a fourth inclined portion, at least a part of the horizontal portion of the third connection wiring is used as a gate electrode of the second noise reduction transistor, and at least a part of the fourth inclined portion is located on a side of the horizontal portion of the third connection wiring away from the display area, and is electrically connected to the second clock signal line by extending in a direction away from the display area.

14. the input circuit includes an input transistor, a first electrode of the input transistor being connected to a signal input electrode so as to receive the input signal; the shift register unit includes a voltage stabilization circuit, the voltage stabilization circuit is connected to the first node and a third node and configured to stabilize a level of the third node, the voltage stabilization circuit includes a voltage stabilization transistor, a first pole of the voltage stabilization transistor is electrically connected to the third node, the first control circuit includes a first control transistor and a second control transistor, the first node includes a first switching electrode electrically connecting a second pole of the input transistor, a gate electrode of the first control transistor, a second pole of the voltage stabilizing transistor, and a first pole of the second noise reduction transistor; 11. The display substrate of claim 10, wherein the first switching electrode is located between the first control transistor, the second control transistor, the voltage stabilizing transistor, the first noise reduction transistor, and the second noise reduction transistor, and is a bent line that extends and bends along the first direction as a whole.

15. 15. The display substrate of claim 14, wherein in an extension direction of the first switching electrode extending from the first pole of the input transistor to the first pole of the second noise reduction transistor, the first switching electrode has the first pole of the input transistor as a starting point and the first pole of the second noise reduction transistor as an end point of the first switching electrode.

16. 15. The display substrate of claim 14, wherein the first switching electrode includes a portion extending along the first direction and a portion extending along the second direction, and a portion connected to the first electrode of the second noise reduction transistor extends along the second direction.

17. 15. The display substrate of claim 14, wherein the gate electrode of the first control transistor and the first switching electrode are located in different layers, and the first switching electrode is electrically connected to the gate electrode of the first control transistor through a first connecting via hole.

18. 18. The display substrate of claim 17, wherein an active layer of the voltage stabilizing transistor is located between an active layer of the second control transistor and an active layer of the second noise reduction transistor in the second direction, and the first switching electrode is electrically connected to the active layer of the voltage stabilizing transistor through a second connecting via hole.

19. The display substrate of claim 18 , wherein the first connection via holes and the second connection via holes are arranged in the first direction.

20. The display substrate further includes a second switching electrode, the second switching electrode being electrically connected to the first electrode of the voltage stabilizing transistor and the gate electrode of the output transistor; the second switching electrode further includes a fifth inclined portion, a sixth inclined portion, and a horizontal portion located between the fifth inclined portion and the sixth inclined portion and extending along the second direction, an extension direction of the fifth inclined portion is different from the first direction and the second direction, an extension direction of the sixth inclined portion is different from the first direction and the second direction, and the extension direction of the fifth inclined portion is an extension direction of at least a part of an edge of the fifth inclined portion, 15. The display substrate of claim 14, wherein the fifth slope portion and the gate electrode of the output transistor are electrically connected through a via foil, and the sixth slope portion and the first electrode of the voltage stabilization transistor are electrically connected through a via hole.

21. 21. The display substrate of claim 20, wherein an acute angle between the fifth inclined portion and the horizontal portion of the second switching electrode is greater than 20°, and an acute angle between the sixth inclined portion and the horizontal portion of the second switching electrode is greater than 20°.

22. 22. The display substrate according to claim 10, wherein an extension direction of a gate electrode of the first noise reduction transistor and an extension direction of a gate electrode of the second noise reduction transistor are parallel to each other, or an extension direction of the gate electrode of the first noise reduction transistor and an extension direction of a gate electrode of the second noise reduction transistor are not parallel to each other.

23. an extension direction of a gate electrode of the first noise reduction transistor and an extension direction of a gate electrode of the second noise reduction transistor are not parallel to each other, 23. The display substrate of claim 22, wherein an acute angle between an extension direction of the gate electrode of the first noise reduction transistor and an extension direction of the gate electrode of the second noise reduction transistor is less than or equal to 20 degrees.

24. 22. The display substrate of claim 10, wherein the line width of the second clock signal line and the line width of the first clock signal line are both 9 microns or more.

25. 22. An electronic device comprising a display substrate according to any one of claims 10 to 21.

Citation Information

Patent Citations

  • Driving method and device thereof, display control method and device thereof and display panel

    CN110189675A

  • Display panel, preparation method thereof and display device

    CN110767665A

  • Substrate for liquid crystal display panel and method of manufacturing the same

    JP2003046090A

  • Semiconductor device, semiconductor device unit, active matrix substrate, liquid crystal panel, and liquid crystal display

    US20130153941A1

  • Display device

    US20190318693A1

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