Display substrate and display device
The display substrate optimizes wiring layout through segmented signal lines and multi-layer structures to address space constraints in high pixel density AMOLED panels, enhancing circuit performance and stability.
Patent Information
- Application Number
- JP2025182185
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2020-05-09
- Filing Date
- 2025-10-29
- Publication Date
- 2026-02-03
AI Technical Summary
The challenge in active-matrix organic light-emitting diode (AMOLED) display panels is achieving overall circuit performance within a limited space due to complex pixel compensation circuits, particularly in high pixel density displays where wiring layout becomes increasingly difficult.
A display substrate design with segmented initialization signal lines, multiple control signal lines, and optimized power line arrangements, including a multi-layer structure with connection electrodes, to reduce space occupancy and enhance wiring efficiency.
The design optimizes wiring layout in limited space, maintaining circuit performance and stability, ensuring stable display quality in high pixel density AMOLED panels.
Smart Images

Figure 2026016626000001_ABST
Abstract
Description
[Technical Field]
[0001] The present disclosure relates to the field of display technology, and more particularly to a display substrate and a display device. [Background technology]
[0002] In the related technology field, user demands for mobile devices continue to grow. Lighter, thinner, brighter, and more energy-efficient devices remain the primary demands for most users. Organic light-emitting diode (OLED) display panels, with their autonomous light-emitting characteristics, can display without a backlight, making them popular for their lighter and thinner designs. In addition, the current market demands display panels in various shapes, including curved and transparent displays, in addition to flat displays. OLED display panels are likely to become the most widely used display technology in the future. Active-matrix organic light-emitting diode (AMOLED) display panels, in particular, require a relatively complex pixel compensation circuit to prevent display unevenness caused by differences in the Vth of the driving transistors. A key challenge is how to achieve the overall circuit performance within a limited space. Summary of the Invention [Problem to be solved by the invention]
[0003] An embodiment of the present disclosure provides a display substrate and a display device. An embodiment of the present disclosure provides a display substrate including a base substrate, a plurality of pixel units, an initialization signal line, a first control signal line, and an emission control signal line, wherein the base substrate includes a display area, and the plurality of pixel units are located in the display area and include pixel circuits having first and second pixel circuits adjacent to each other along a first direction, the initialization signal line extends in the first direction and is configured to provide an initialization signal to the first and second pixel circuits, the first control signal line extends in the first direction and is configured to provide a gate signal to the first and second pixel circuits, and the emission control signal line extends in the first direction and is configured to provide an emission control signal to the first and second pixel circuits, and the initialization signal line is located on a side of the emission control signal line away from the first control signal line, extends in the first direction, and is provided as segments spaced apart. [Means for solving the problem]
[0004] In some embodiments, the display substrate further includes an initialization bus line located on a side of the initialization signal line away from the base substrate, and the initialization bus line and the initialization signal line are electrically connected.
[0005] In some embodiments, the initialization bus includes a plurality of body portions, a plurality of connection portions, and a plurality of branch portions, wherein the plurality of body portions extend in the first direction and are spaced apart along the second direction and are configured to provide the initialization signal to a corresponding plurality of the initialization signal lines extending in the first direction and being spaced apart in segments, the plurality of connection portions extend in the second direction and connect two adjacent body portions, and the plurality of branch portions are connected to at least one of the two adjacent body portions, the plurality of connection portions and the plurality of branch portions are alternately spaced apart along the first direction, and the plurality of branch portions are located between the two adjacent body portions and are configured to provide the initialization signal to a corresponding plurality of the initialization signal lines extending in the first direction and being spaced apart in segments.
[0006] In some embodiments, the display substrate further includes a second control signal line located on a side of the initialization signal line away from the light emission control signal line, the second control signal line extending in the first direction and configured to provide a reset control signal to the first pixel circuit and the second pixel circuit.
[0007] In some embodiments, the display substrate includes a plurality of first power lines extending in the second direction and spaced apart along the first direction, and configured to provide first power signals to the pixel circuits.
[0008] In some embodiments, the pixel circuit includes a light-emitting control transistor, a gate of the light-emitting control transistor is connected to the light-emitting control signal line, the light-emitting control transistor includes a first pole and a second pole, and the second pole and the first pole of the light-emitting control transistor are located on a first side and a second side, respectively, across the light-emitting control signal line.
[0009] In some embodiments, the pixel circuit includes a drive transistor located on the second side of the light emission control signal line, the drive transistor including a first pole and a second pole, the first pole of the drive transistor connected to the first power supply line, and the second pole of the drive transistor connected to the first pole of the light emission control transistor.
[0010] In some embodiments, the pixel circuit includes a first reset transistor located between the second control signal line and the light emission control signal line, the second control signal line being connected to a gate of the first reset transistor, the first reset transistor including a first pole and a second pole, the first pole of the first reset transistor being connected to a gate of a drive transistor, and the second pole of the first reset transistor being connected to the initialization signal line.
[0011] In some embodiments, the display substrate includes a plurality of data lines extending in the second direction and spaced apart along the first direction, the data lines configured to provide data signals to the pixel circuits.
[0012] In some embodiments, the pixel circuit includes a storage capacitor, a data write transistor, and a first compensation transistor, the first control signal line is connected to a gate of the data write transistor and a gate of the first compensation transistor, respectively, the data write transistor includes a first pole and a second pole, the first pole of the data write transistor is connected to the data line, the storage capacitor includes a first pole and a second pole, the first pole of the storage capacitor is connected to the second pole of the data write transistor, the second pole of the storage capacitor is connected to the gate of the drive transistor, the first compensation transistor includes a first pole and a second pole, the first pole of the first compensation transistor is connected to the gate of the drive transistor, and the second pole of the first compensation transistor is connected to the second pole of the drive transistor.
[0013] In some embodiments, the initialization signal line is provided in the same layer as the first pole of the storage capacitor, with a space therebetween.
[0014] In some embodiments, the data write transistor and the first compensation transistor are located on the side of the first control signal line that is closer to the light emission control signal line.
[0015] In some embodiments, the pixel circuit includes a second compensation transistor, the light-emitting control signal line is connected to a gate of the second compensation transistor, the second compensation transistor includes a first pole located on the first side of the light-emitting control signal line, and the first pole of the second compensation transistor is connected to the second pole of the first reset transistor.
[0016] In some embodiments, the display substrate includes a first connection electrode extending in the second direction, the first connection electrode connecting a gate of the driving transistor, a first pole of the first compensation transistor, and a first pole of the second compensation transistor.
[0017] In some embodiments, the pixel circuit includes a second reset transistor and a third reset transistor located between the second control signal line and the light emission control signal line, the second control signal line is connected to a gate of the second reset transistor, the light emission control signal line is connected to a gate of the third reset transistor, the second reset transistor includes a first pole and a second pole, the first pole of the second reset transistor is connected to the second pole of the data write transistor, the second pole of the second reset transistor is connected to the initialization signal line, the third reset transistor includes a first pole and a second pole, the first pole of the third reset transistor is connected to the second pole of the data write transistor, and the second pole of the third reset transistor is connected to the initialization signal line.
[0018] In some embodiments, the display substrate includes a second connection electrode extending in the second direction, the second connection electrode connecting a first pole of the third reset transistor and a second pole of the data write transistor.
[0019] In some embodiments, the first connection electrode, the second connection electrode, the data line, and the first power supply line are provided in the same layer.
[0020] In some embodiments, the display substrate further includes a light-emitting element, the second electrode of the light-emitting control transistor is connected to the first electrode of the light-emitting element, and the light-emitting control bus line is spaced apart from the first electrode of the light-emitting element in the same layer.
[0021] In some embodiments, the pixel circuit includes a fourth reset transistor located between the second control signal line and the light-emitting control signal line, the second control signal line being connected to a gate of the fourth reset transistor, the fourth reset transistor including a first pole and a second pole, the first pole of the fourth reset transistor being connected to a first pole of the light-emitting element, and the second pole of the fourth reset transistor being connected to the initialization signal line.
[0022] An embodiment of the present disclosure further provides a display device including the display substrate according to any one of the above embodiments.
[0023] Additional aspects and advantages of embodiments of the present disclosure will be set forth in part in the description that follows, and in part will be obvious from the description, or may be learned by practice of embodiments of the present disclosure.
[0024] The above and / or additional aspects and advantages of the present disclosure will be apparent and easily understood from the following description of the embodiments taken in conjunction with the drawings. [Brief explanation of the drawings]
[0025] [Figure 1] FIG. 1 is a structural schematic diagram of an electronic device according to an embodiment of the present disclosure. [Figure 2] FIG. 2 is a schematic plan view of a display substrate according to an embodiment of the present disclosure. [Figure 3] FIG. 3 is a circuit diagram of a pixel circuit according to an embodiment of the present disclosure. [Figure 4] FIG. 4 is a cross-sectional schematic view of a display substrate according to an embodiment of the present disclosure. [Figure 5] FIG. 5 is a partial top view of a display substrate according to an embodiment of the present disclosure. [Figure 6] FIG. 6 is a schematic diagram of a semiconductor pattern layer of a display substrate according to an embodiment of the present disclosure. [Figure 7] FIG. 7 is a schematic diagram of a first conductive pattern layer of a display substrate according to an embodiment of the present disclosure. [Figure 8]FIG. 8 is a schematic structural diagram of a display substrate according to an embodiment of the present disclosure after a conductive treatment is performed on the semiconductor pattern layer by a self-alignment process. [Figure 9] FIG. 9 is a schematic diagram of a second conductive pattern layer of a display substrate according to an embodiment of the present disclosure. [Figure 10] FIG. 10 is a schematic diagram of a third conductive pattern layer of a display substrate according to an embodiment of the present disclosure. [Figure 11] FIG. 11 is a schematic diagram of an anode circuit pattern layer of a display substrate according to an embodiment of the present disclosure. [Figure 12] FIG. 12 is a schematic diagram of a cathode circuit pattern layer of a display substrate according to an embodiment of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION
[0026]
[0023] The following detailed description of the embodiments of the present disclosure is provided below. Examples of the embodiments are shown in the drawings, and the same or similar reference numerals throughout refer to the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the drawings are merely illustrative and are intended to explain the present disclosure and should not be construed as limiting the present disclosure.
[0027] In describing this disclosure, orientations or positional relationships indicated by terms such as "upper," "lower," "left," "right," "top," "bottom," "inner," and "outer" are based on orientations or positional relationships shown in the drawings and are intended solely to facilitate and simplify the description of this disclosure. They do not indicate or imply that the devices or elements shown have a particular orientation or must be configured and operated in a particular orientation, and should not be construed as limiting this disclosure. Additionally, the terms "first" and "second" are used solely for descriptive purposes and should not be construed as indicating or implying the relative importance or number of technical features shown. Thus, a feature qualified as "first" or "second" may explicitly or implicitly include one or more of the aforementioned features. In describing this disclosure, "plurality" means two or more, unless otherwise specified.
[0028] The following disclosure provides many different embodiments or examples for realizing different structures of the present disclosure. To simplify the present disclosure, the following describes specific example components and installations. Of course, these are merely examples and are not intended to limit the present disclosure. Also, the present disclosure may repeat reference numerals and / or letters in different examples for brevity and clarity, and as such, do not indicate a relationship between the various embodiments and / or installations discussed. Furthermore, while the present disclosure provides examples of various specific processes and materials, those skilled in the art will recognize that other processes may be applied and / or other materials may be used.
[0029] As the pixel density (PPI) of an organic light-emitting diode (OLED) display increases, the pixel size of the display's backplane circuit becomes smaller and smaller. The design space for each pixel unit is becoming smaller. For example, in an OLED display panel, the pixel circuit structure of one pixel unit may include multiple transistors, e.g., seven or more transistors, including, but not limited to, a 9T1C pixel circuit structure. As the width and pitch of the circuit wiring in the substrate circuit become smaller, the wiring layout becomes more difficult. The embodiments of the present disclosure will be described using a 9T1C pixel circuit structure as an example.
[0030] 1 to 5, a display substrate 110 according to an embodiment of the present disclosure includes a base substrate 111, a plurality of pixel units 112, an initialization signal line 113, a first control signal line 114A, and an emission control signal line 115. The base substrate 111 includes a display area 1111, and a plurality of pixel units 112 are located in the display area 1111 and arranged in a matrix. Each pixel unit 112 includes a pixel circuit 1121 having a first pixel circuit 1121a and a second pixel circuit 1121b adjacent to each other along a first direction. The initialization signal line 113 extends in the first direction and is configured to provide an initialization signal Vinit to the first pixel circuit 1121a and the second pixel circuit 1121b. The first control signal line 114A extends in the first direction and is configured to provide a gate signal Sn to the first pixel circuit 1121a and the second pixel circuit 1121b. The light emission control signal line 115 extends in a first direction and is configured to provide a light emission control signal EM to the first pixel circuit 1121 a and the second pixel circuit 1121 b. Here, the initialization signal line 113 is located on the side of the light emission control signal line 115 away from the first control signal line 114A, extends in the first direction, and is provided as segments spaced apart.
[0031] The display substrate 110 according to an embodiment of the present disclosure can be applied to the display device 100 according to an embodiment of the present disclosure, i.e., the display device 100 according to an embodiment of the present disclosure can display images using the display substrate 110 according to an embodiment of the present disclosure.
[0032] In the display substrate 110 and display device 100 of the present disclosure, the initialization signal lines 113 are designed to be segmented and spaced apart along the first direction, thereby reducing the space occupied by the initialization signal lines 113 within the substrate and making it easier to optimize the wiring layout of the display substrate 110 within the limited space and meet more performance requirements.
[0033] In some embodiments, the display device 100 may be, but is not limited to, a display device 100 capable of displaying images such as a smartphone, a tablet, a smart band, a virtual reality device, a personal digital assistant, a laptop, etc. In the example shown in Figure 1, the display device 100 is a smartphone.
[0034] In some embodiments, the display substrate 110 includes a plurality of first power lines 116A extending in the second direction and spaced apart along the first direction, and configured to provide a first power signal ELVDD to the pixel circuit 1121. Specifically, the first power signal ELVDD is a constant high-level voltage signal.
[0035] In some embodiments, the display substrate 110 includes a plurality of data lines 117 extending in the second direction and spaced apart along the first direction, and the data lines 117 are configured to provide data signals to the pixel circuits 1121.
[0036] When the display substrate 110 performs display, one pixel may include multiple pixel units 112. Furthermore, one pixel may include multiple pixel units 112 emitting light of different colors. For example, one pixel may include, but is not limited to, a pixel unit 112 emitting red light, a pixel unit 112 emitting green light, and a pixel unit 112 emitting blue light. The number of pixel units 112 included in one pixel and the light emission status of each pixel unit 112 can be configured as needed. The display device 100 can generate a corresponding data signal based on each pixel value in an image and provide the data signal to a corresponding pixel circuit 1121 via a data line 117.
[0037] In some embodiments, the display substrate 110 further includes a second control signal line 114B located on the side of the initialization signal line 113 away from the light-emitting control signal line 115, the second control signal line extending in the first direction and configured to provide a reset control signal RESET to the first pixel circuit 1121a and the second pixel circuit 1121b.
[0038] Furthermore, the display substrate 110 includes a third pixel circuit 1121c and a fourth pixel circuit 1121d, where the third pixel circuit 1121c is adjacent to the fourth pixel circuit 1121d along the first direction, the first pixel circuit 1121a is adjacent to the third pixel circuit 1121c along the second direction, and the second pixel circuit 1121b is adjacent to the fourth pixel circuit 1121d along the second direction. The second control signal line 114B may be configured to provide a gate signal Sn to the third pixel circuit 1121c and the fourth pixel circuit 1121d. Specifically, the second control signal line 114B may provide a reset control signal RESET to the first pixel circuit 1121a and the second pixel circuit 1121b, and simultaneously provide a gate signal Sn to the third pixel circuit 1121c and the fourth pixel circuit 1121d.
[0039] In some embodiments, the display substrate 110 includes a light emitting element 118, and the pixel circuit 1121 is connected to the light emitting element 118 to drive the light emitting element 118 to emit light. The display substrate 110 may include a second power line 119 configured to provide a second power signal ELVSS to the light emitting element 118.
[0040] Specifically, the second power supply signal ELVSS is a constant low-level voltage signal. The first power supply signal ELVDD is greater than the second power supply signal ELVSS. The initialization signal Vinit is a constant voltage signal, and its magnitude may be, for example, between the first power supply signal ELVDD and the second power supply signal ELVSS, but is not limited thereto. For example, the initialization signal Vinit may be less than the second power supply signal ELVSS.
[0041] In some embodiments, the display substrate 110 may include a plurality of third power lines 116B extending in the first direction, and the plurality of third power lines 116B are spaced apart along the second direction. The third power lines 116B may be connected to the first power line 116A and configured to provide a first power signal ELVDD to the pixel circuit 1121.
[0042] In this way, the first power lines 116A and the third power lines 116B extending in different directions are arranged alternately, which is advantageous for the entire display substrate 110 to maintain the stability of the first power signal ELVDD provided to the pixel circuit 1121.
[0043] In some embodiments, the pixel circuit 1121 includes a data write transistor T1, a first compensation transistor T2, a drive transistor T3, a first reset transistor T4, a second reset transistor T5, a third reset transistor T6, a light-emitting control transistor T7, a fourth reset transistor T8, a second compensation transistor T9, and a storage capacitor C1.
[0044] In the reset stage, the pixel circuit 1121 can initialize the driving transistor T3, the storage capacitor C1, and the light emitting element 118 using the initialization signal Vinit under the influence of the reset control signal RESET, thereby maintaining the same state of the pixel circuit 1121 when the display screen is refreshed every frame, ensuring that the display device 100 can display normally. In the data write stage, the pixel circuit 1121 can write and store the data signal provided from the data signal line into the storage capacitor C1 under the influence of the gate signal Sn, thereby compensating for the threshold voltage of the third transistor T3. In the light emission control stage, the pixel circuit 1121 can convert the data signal into a current signal under the influence of the light emission control signal EM to drive the light emitting element 118 to emit light, thereby displaying an image.
[0045] The display device 100 according to the embodiment of the present disclosure further includes a data driving circuit 120 and a scan driving circuit 130. The data driving circuit 120 is configured to provide data signals to the pixel units 112 according to commands from the control circuit, and the scan driving circuit 130 is configured to provide signals such as a light emitting control signal EM, a gate signal Sn, a reset control signal RESET, and an initialization signal Vinit to the pixel units 112 according to commands from the control circuit.
[0046] 2, the display substrate 110 includes a non-display area 1112, and the data driving circuit 120 and the scan driving circuit 130 may be, but are not limited to, disposed in the non-display area of the display substrate 110. For example, the data driving circuit 120 and the scan driving circuit 130 may be disposed on a circuit board, such as a printed circuit board and / or a flexible circuit board, that connects the electronic device 100 and the display substrate 110.
[0047] In some embodiments, the control circuit of the display substrate 110 includes, but is not limited to, an external integrated circuit (IC). In some embodiments, the scan driving circuit 130 has a gate-on-array (GOA) structure mounted on the display panel or a driving chip (IC) structure bonded to the display panel. For example, the emission control signal EM and the gate signal Sn may be provided using different driving circuits. In some embodiments, the display device 100 further includes a power supply (not shown) for providing the above-mentioned power signals, which may be a voltage source or a current source as needed. The power supply is configured to provide the first power signal ELVDD, the second power signal ELVSS, and the initialization signal Vinit to the pixel units 112 via the first power line 116A, the second power line 119, and the initialization signal line 113, respectively.
[0048] In some embodiments, the light emission control signal line 115 is connected to the gate T70 of the light emission control transistor T7. Note that a part of the light emission control signal line 115 serves as the gate T70 of the light emission control transistor T7.
[0049] Furthermore, the light-emitting control transistor T7 includes a first pole T71 and a second pole T72, and the second pole T72 and the first pole T71 of the light-emitting control transistor T7 are located on the first side and the second side, respectively, across the light-emitting control signal line 115.
[0050] In some embodiments, the driving transistor T3 is located on the second side of the light-emitting control signal line 115 and includes a first pole T31 and a second pole T32, where the first pole T31 is connected to the first power supply line 116A and the second pole T32 is connected to the first pole T71 of the light-emitting control transistor T7.
[0051] In some embodiments, the first reset transistor T4 is located between the second control signal line 114B and the light emission control signal line 115, and the second control signal line 114B is connected to the gate T40 of the first reset transistor T4. The first reset transistor T4 includes a first pole T41 and a second pole T42, and the first pole T41 is connected to the gate T30 of the driving transistor T3, and the second pole T42 is connected to the initialization signal line 113.
[0052] Specifically, a portion of the second control signal line 114B serves as the gate T40 of the first reset transistor T4. The first control signal line 114A can provide a reset control signal RESET to the first reset transistor T4, and the first reset transistor T4 provides an initialization signal Vinit to the gate T30 of the driving transistor T3 for initialization under the influence of the reset control signal RESET.
[0053] In some embodiments, the first control signal line 114A is connected to the gate T10 of the data write transistor T1 and the gate T20 of the first compensation transistor T2, respectively.
[0054] Specifically, a portion of the first control signal line 114A may be used as the gate T10 of the data write transistor T1, and another portion of the first control signal line 114A may be used as the gate T20 of the first compensation transistor T2.
[0055] Further, in some examples, the data write transistor T1 includes a first pole T11 and a second pole T12, the first pole T11 of the data write transistor T1 is connected to the data line 117, the storage capacitance C1 includes a first pole C11 and a second pole C12, the first pole C11 of the storage capacitance C1 is connected to the second pole T12 of the data write transistor T1, and the second pole C12 of the storage capacitance C1 is connected to the gate T30 of the drive transistor T3.
[0056] Specifically, the second pole C12 of the storage capacitor C1 may be used as the gate T30 of the driving transistor T3. The first control signal line 114A can provide a gate signal Sn to the data write transistor T1, and the data write transistor T1 writes the data signal provided from the data line 117 into the storage capacitor C1 under the action of the gate signal Sn.
[0057] In one example, the storage capacitor C1 is located between the first control signal line 114A and the light emission control signal line 115.
[0058] Furthermore, the first compensation transistor T2 includes a first pole T21 and a second pole T22, and the first pole T21 of the first compensation transistor T2 is connected to the gate T30 of the driving transistor T3, and the second pole T22 of the first compensation transistor T2 is connected to the second pole T32 of the driving transistor T3.
[0059] In this way, the first control signal line 114A provides a gate signal Sn to the first compensation transistor T2, and the first compensation transistor T2 can connect the gate T30 and the second pole T32 of the driving transistor T3 under the action of the gate signal Sn, thereby compensating the threshold voltage of the driving transistor T3 when writing a data signal.
[0060] In some embodiments, the data writing transistor T1 and the first compensation transistor T2 are located on the side of the first control signal line 114A that is closer to the light emitting control signal line 115.
[0061] That is, the first control signal line 114A is configured to provide the gate signal Sn to the first pixel circuit 1121a and the second pixel circuit 1121b on the side of the first control signal line 114A. Note that the first control signal line 114A may also be configured to provide the reset control signal RESET to other pixel circuits 1121 on the other side of the first control signal line 114A that face the first pixel circuit 1121a and the second pixel circuit 1121b, and this is not specifically limited here.
[0062] In some embodiments, the light-emitting control signal line 115 is connected to the gate T90 of the second compensation transistor T9, the second compensation transistor T9 includes a first pole T91 located on a first side of the light-emitting control signal line 115, and the first pole T91 of the second compensation transistor T9 is connected to the first pole T41 of the first reset transistor T4.
[0063] Specifically, a part of the light-emitting control signal line 115 may be used as the gate T90 of the second compensation transistor T9. A first pole T91 of the second compensation transistor T9 located on the first side of the light-emitting control signal line 115 is connected to a first pole T41 of the first reset transistor T4 located on the first side of the light-emitting control signal line 115.
[0064] During the data writing process, the pixel circuit 1121 shorts the first compensating transistor T2 in a diode connection to compensate for the threshold voltage of the driving transistor T3. An equivalent capacitance exists between the gate and drain of the shorted first compensating transistor T2. When the charging of the storage capacitor C1 is completed, the potential at the connection end with the gate of the driving transistor T3 is the threshold voltage of the driving transistor T1. When the shorted first compensating transistor T2 is turned off, the charge stored in the equivalent capacitance of the first compensating transistor T2 is injected into the storage capacitor C1 due to the bias voltage and capacitance change, which tends to cause an error in the threshold voltage signal held in the storage capacitor C1. Thus, by providing the second compensating transistor T9, after the data writing process is completed, the second compensating transistor T9 has an equivalent capacitance. Therefore, when the first compensating transistor T2 is turned off, some or all of the charge released from the equivalent capacitance between the gate and drain of the first compensating transistor T2 is absorbed by the equivalent capacitance of the second compensating transistor T9, thereby maintaining the threshold voltage accurately and stably.
[0065] The second compensation transistor T9 is located at a second pole (not shown) on the second side of the light emission control signal line 115, and may be floating.
[0066] In some embodiments, the display substrate 110 includes a first connection electrode 11211 extending in the second direction, which connects the gate T30 of the driving transistor T3 (the second pole C12 of the storage capacitor C1), the first pole T21 of the first compensation transistor T2, and the first pole T91 of the second compensation transistor T9.
[0067] Specifically, the display substrate 110 has a multi-layer structure, and the wiring in the pixel circuit 1121 may be provided on different layers, and the electrodes of different elements may be provided at different positions on the same layer or different layers. By providing the first connection electrode 11211 on any one layer of the substrate, electrical connection can be achieved between the gate T30 of the driving transistor T3, the first pole T21 of the first compensating transistor T2, and the first pole T91 of the second compensating transistor T9, which are located on different layers or at different positions. Here, the first connection electrode 11211 can be connected to the corresponding elements through via holes opened in each layer of the substrate.
[0068] In one example, a plate via hole is formed in the first pole C11 of the storage capacitor C1, and the first connection electrode 11211 is connected to the second pole C12 of the storage capacitor C1, that is, the gate T30 of the driving transistor T3, through the plate via hole.
[0069] In some embodiments, the second reset transistor T5 and the third reset transistor T6 are located between the second control signal line 114B and the light emitting control signal line 115, the second control signal line 114B is connected to the gate T50 of the second reset transistor T5, and the light emitting control signal line 115 is connected to the gate T60 of the third reset transistor T6.
[0070] Specifically, a portion of the second control signal line 114B may be used as the gate T50 of the second reset transistor T5, and the light-emitting control signal line 115 may be used as the gate T60 of the third reset transistor T6.
[0071] Further, in some embodiments, the second reset transistor T5 includes a first pole T51 and a second pole T52, where the first pole T51 is connected to the second pole T12 of the data write transistor T1 and the second pole T52 is connected to the initialization signal line 113.
[0072] In this way, the second control signal line 114B can provide a reset control signal RESET to the second reset transistor T5, and under the action of the reset control signal RESET, the second reset transistor T5 can provide an initialization signal Vinit to the second pole T12 of the data write transistor T1 and the first pole C11 of the storage capacitor C1 to perform initialization.
[0073] In some embodiments, the third reset transistor T6 includes a first pole T61 and a second pole T62, where the first pole T61 is connected to the second pole T12 of the data write transistor T1 and the second pole T62 is connected to the initialization signal line 113.
[0074] In this way, the light emitting control signal EM provides the light emitting control signal EM to the third reset transistor T6, and under the action of the light emitting control signal EM, the third reset transistor T6 can provide the initialization signal Vinit to the second pole T12 of the data write transistor T1 and the first pole C11 of the storage capacitor C1 to initialize them.
[0075] In some embodiments, the display substrate 110 includes a second connection electrode 11212 extending in the second direction, which connects the first pole T51 of the second reset transistor T5, the first pole T61 of the third reset transistor T6, the first pole C11 of the storage capacitor C1, and the second pole T12 of the data write transistor T1.
[0076] Similarly, a second connection electrode 11212 is provided to realize electrical connection with the first pole T51 of the second reset transistor T5, the first pole T61 of the third reset transistor T6, the first pole C11 of the storage capacitor C1, and the second pole T12 of the data write transistor T1, which are located on different layers or at different positions, where the second connection electrode 11212 can be connected to the corresponding elements through via holes opened in each layer of the substrate.
[0077] In some embodiments, the first connection electrode 11211, the second connection electrode 11212, the data line 117, and the first power line 116A are provided in the same layer.
[0078] In some embodiments, the second pole T72 of the light-emitting control transistor T7 is connected to the first pole 1181 of the light-emitting element 118.
[0079] Specifically, the light-emitting control transistor T7 is turned on under the action of the light-emitting control signal EM, the driving transistor T3 generates a driving current under the action of the first power supply signal ELVDD, and the light-emitting control transistor T7 transmits the driving current to the first pole 1181 of the light-emitting element 118 to drive the light-emitting element 118 to emit light.
[0080] In some embodiments, the fourth reset transistor T8 is located between the second control signal line 114B and the light emission control signal line 115, and the second control signal line 114B is connected to the gate T80 of the fourth reset transistor T8.
[0081] Specifically, a portion of the second control signal line 114B may be used as the gate T80 of the fourth reset transistor T8.
[0082] Further, in some embodiments, the fourth reset transistor T8 includes a first pole T81 and a second pole T82, the first pole T81 being connected to the first pole 1181 of the light-emitting element 118, and the second pole T82 being connected to the initialization signal line 113.
[0083] In this way, the second control signal line 114B can provide a reset control signal RESET to the fourth reset transistor T8, and the fourth reset transistor T8 can provide an initialization signal Vinit to the first pole 1181 of the light-emitting element 118 to initialize it under the action of the reset control signal RESET.
[0084] In some embodiments, the display substrate 110 includes a buffer layer 120 on the base substrate 111, and the pixel circuit 1121 includes an active layer 121 located on the buffer layer 120, a first insulating layer 122 located on the side of the active layer 121 away from the base substrate 111, a gate layer 123 located on the first insulating layer 122, a second insulating layer 124 located on the side of the gate layer 123 away from the base substrate 111, a third insulating layer 125 located on the second insulating layer 124, and a source / drain layer 126 located on the third insulating layer 125.
[0085] In some embodiments, the material of buffer layer 120 may include an insulating material such as silicon oxide, silicon nitride, silicon oxynitride, etc. The material of one or more of third insulating layer 125, second insulating layer 124, and first insulating layer 122 may include an insulating material such as silicon oxide, silicon nitride, silicon oxynitride, etc. The materials of third insulating layer 125, second insulating layer 124, and first insulating layer 122 may be the same or different.
[0086] 4 , in some examples of the embodiments of the present disclosure described above, the active layer 121 may include a source region 1211, a drain region 1212, and a channel region 1213 located between the source region 1211 and the drain region 1212. The third insulating layer 125, the second insulating layer 124, and the first insulating layer 122 have via holes to expose the source region 1211 and the drain region 1212. The first pole 1261 and the second pole 1262 of the transistor are electrically connected to the source region 1211 and the drain region 1212, respectively, through the via holes. The gate layer 123 overlaps the channel region 1213 located between the source region 1211 and the drain region 1212 in the active layer 121 in a direction perpendicular to the base substrate 111.
[0087] In some embodiments, the display substrate 110 further includes a planarization layer 127 on the side of the source / drain layer 126 away from the base substrate 111. The planarization layer 127 is located above the first pole 1261 and second pole 1262 of the transistor and planarizes the surface of the pixel circuit 1121 away from the base substrate 111. Via holes are formed in the planarization layer 127 to expose the first pole 1261 and second pole 1262 (if shown) of the transistor. A passivation layer 128 including passivation layer vias may be further formed between the pixel circuit 1121 and the planarization layer 127. The passivation layer 128 can protect the first pole 1261 and second pole 1262 of the transistor of the pixel circuit 1121 from corrosion by water vapor.
[0088] The transistor shown in FIG. 4 may be the fourth reset transistor T8 or the light-emitting control transistor T7, but other transistors in the circuit may be formed at other positions on the substrate, and correspondingly, the connection manner of the other transistors may also be designed as needed, and is generally not specifically limited.
[0089] For example, the material of the active layer 121 may include polycrystalline silicon or an oxide semiconductor (e.g., zinc indium gallium oxide). The material of the gate electrode may include a metal material or an alloy material, such as a single-layer or multi-layer structure of metal made of molybdenum, aluminum, titanium, etc., for example, the multi-layer structure being a stack of multiple metal layers (e.g., a three-layer metal stack of titanium, aluminum, and titanium (Ti / Al / Ti)). The material of the source electrode and the drain electrode may include a metal material or an alloy material, such as a single-layer or multi-layer structure of metal made of molybdenum, aluminum, titanium, etc., for example, the multi-layer structure being a stack of multiple metal layers (e.g., a three-layer metal stack of titanium, aluminum, and titanium (Ti / Al / Ti)). The materials of each functional layer are not specifically limited in the embodiments of the present disclosure.
[0090] In some embodiments, the material of the passivation layer 128 may include an organic insulating material or an inorganic insulating material, such as a silicon nitride material, which has a high dielectric constant and good hydrophobicity and can well protect the pixel driving circuit from corrosion by water vapor.
[0091] In some embodiments, the light-emitting element 118 may be formed on the planarization layer 127, i.e., the light-emitting element 118 is provided on the side of the planarization layer 127 away from the base substrate 111. The light-emitting element 118 includes a first pole 1181, a light-emitting layer 1182, and a second pole 1183. The first pole 1181 of the light-emitting element 118 is electrically connected to the first pole 1261 and / or the second pole 1262 of the corresponding transistor through a via hole in the planarization layer 127. A pixel definition layer 130 including a plurality of openings that define a plurality of pixel units 112 is formed on the first pole 1181 of the light-emitting element 118. Each of the multiple openings exposes a first pole 1181 of a corresponding light-emitting element 118, and then an emitting layer 1182 is provided in the multiple openings of the pixel definition layer 130, and a second pole 1183 of the light-emitting element 118 is provided on the pixel definition layer 130 and the emitting layer 1182; for example, the second pole 1183 may be provided in part or all of the display area 1111, and may be formed entirely during the manufacturing process.
[0092] In some embodiments, the pixel circuit 1121 may include an adapter electrode 11213, and the display substrate 110 connects the first pole 1181 of the light-emitting element 118 to the first pole 1261 and / or the second pole 1262 of the corresponding transistor via the adapter electrode 11213. In this way, the adapter electrode 11213 can make the relative positions of the pixel circuit 1121 and the light-emitting element 118 on the display panel 110 more flexible.
[0093] For example, the first pole 1181 of the light-emitting element 118 may include a reflective layer (not shown), and the second pole 1182 of the light-emitting element 118 may include a transparent or semi-transparent layer. This allows the first pole 1181 of the light-emitting element 118 to reflect light emitted from the light-emitting layer 1182, and a portion of this light is radiated to the external environment through the second pole 1183 of the light-emitting element 118, thereby providing light output efficiency. If the second pole 1183 of the light-emitting element 118 includes a semi-transparent layer, some of the light reflected by the first pole 1181 of the light-emitting element 118 is reflected again by the second pole 1183 of the light-emitting element 118, so that the first pole 1181 of the light-emitting element 118 and the second pole 1183 of the light-emitting element 118 form a resonant structure, thereby improving luminous efficiency.
[0094] For example, the material of the first pole 1181 of the light-emitting element 118 may include at least one transparent conductive oxide material, including indium tin oxide (ITO), indium zinc oxide (IZO), zinc oxide (ZnO), etc. Also, the first pole 1181 of the light-emitting element 118 may include a metal with high reflectivity, such as silver (Ag), as a reflective layer.
[0095] For example, in the case of an OLED, the light-emitting layer 1182 may include a small molecule or polymer molecule organic material, may be a fluorescent or phosphorescent light-emitting material, and may emit red, green, blue, or white light. The light-emitting layer 1182 may further include functional layers, such as an electron injection layer, an electron transport layer, a hole injection layer, and a hole transport layer, as needed.
[0096] For example, the second pole 1182 of the light-emitting element 118 may include various conductive materials. For example, the second pole 1183 of the light-emitting element 118 may include a metallic material such as lithium (Li), aluminum (Al), magnesium (Mg), silver (Ag), or the like.
[0097] For example, the material of the pixel defining layer 130 may include an organic insulating material such as polyimide, polyphthalimide, polyphthalamide, acrylic resin, benzocyclobutene, phenolic resin, etc., or an inorganic insulating material such as silicon oxide, silicon nitride, etc. The embodiments of the present disclosure are not limited thereto.
[0098] Furthermore, the first pole C11 of the storage capacitor C1 is provided between the second insulating layer 124 and the third insulating layer 125, and the second pole C12 is provided between the first insulating layer 122 and the second insulating layer 124. The first pole C11 and the second pole C12 of the storage capacitor C1 are stacked so that at least a portion of them overlap in a direction perpendicular to the base substrate 111. The first pole C11 and the second pole C12 of the storage capacitor C1 form the storage capacitor C1 using the second insulating layer 124 as a dielectric material. The second pole C12 of the storage capacitor C1 is provided in the same layer as the gate layer 123 of the pixel circuit 1121. Thus, even in the above modification, the first pole C11 and the second pole C12 of the storage capacitor C1 can be located in other layers to obtain a sub-pixel with a different structure.
[0099] 4, the display substrate 110 may further include a sealing layer 131 disposed on the light-emitting element 118. The sealing layer 131 seals the light-emitting element 118, thereby reducing or preventing deterioration of the light-emitting element 118 due to moisture and / or oxygen contained in the environment. The sealing layer 131 may have a single-layer structure or a composite layer structure in which an inorganic layer and an organic layer are stacked, and may include, for example, a first inorganic sealing layer 1311, a first organic sealing layer 1312, and a second inorganic sealing layer 1313, which are disposed in sequence.
[0100] For example, the material of the sealing layer 131 may include an insulating material such as silicon nitride, silicon oxide, silicon oxynitride, or polymer resin. Inorganic materials such as silicon nitride, silicon oxide, and silicon oxynitride are highly dense and can prevent the intrusion of water, oxygen, and the like. The material of the organic sealing layer 131 may be a polymer resin that can planarize the surface of the display substrate 110 and relieve stress in the first inorganic sealing layer 1311 and the second inorganic sealing layer 1313, such as a polymer material containing a desiccant or a polymer material that can block water vapor, and may also include a water-absorbent material such as a desiccant to absorb substances such as water and oxygen that have infiltrated inside.
[0101] 6 to 8, Fig. 6 is a schematic diagram of the semiconductor pattern layer L1 of the display substrate 110, on which a first insulating layer 122 may be formed. Fig. 7 is a schematic diagram of the first conductive pattern layer L2 of the display substrate 110 formed on the first insulating layer 122, and Fig. 8 is a structural schematic diagram of the display substrate 110 after the semiconductor pattern layer has been subjected to a conductive treatment using a self-alignment process. In some embodiments, during the manufacturing process of the display substrate 110, a self-aligned process is used to perform a conductive treatment on the semiconductor pattern layer L1 using the first conductive pattern layer L2 as a mask, for example, by using ion implantation to heavily dope the semiconductor pattern layer L1, so that the part of the semiconductor pattern layer L1 not covered by the first conductive pattern layer L2 is made conductive, and the source region (first pole T11) and drain region (second pole T12) of the data write transistor T1, the source region (first pole T21) and drain region (second pole T22) of the first compensation transistor T2, the source region (first pole T31) and drain region (second pole T32) of the driving transistor T3 are made conductive. (second pole T32), a source region (first pole T41) and a drain region (second pole T42) of the first reset transistor T4, a source region (first pole T51) and a drain region (second pole T52) of the second reset transistor T5, a source region (first pole T61) and a drain region (second pole T62) of the third reset transistor T6, a source region (first pole T71) and a drain region (second pole T72) of the light-emitting control transistor T7, a source region (first pole T81) and a drain region (second pole T82) of the fourth reset transistor T8, and a source region (first pole T91) and a drain region (second pole T92) of the second compensation transistor T9.The semiconductor pattern layer L1 in the portion covered with the first conductive pattern layer L2 retains its semiconductor properties and forms a channel region T14 of the data write transistor T1, a channel region T24 of the first compensation transistor T2, a channel region T34 of the drive transistor T3, a channel region T44 of the first reset transistor T4, a channel region T54 of the second reset transistor T5, a channel region T64 of the third reset transistor T6, a channel region T74 of the light-emitting control transistor T7, a channel region T84 of the fourth reset transistor T8, and a channel region T94 of the second compensation transistor T9.
[0102] As shown in FIG. 8, the second pole T82 of the fourth reset transistor T8 and the second pole T42 of the first reset transistor T4 are integrally formed. The first pole T91 of the second compensation transistor T9 and the first pole T41 of the first reset transistor T4 are integrally formed. The first pole T81 of the fourth reset transistor T8 and the second pole T72 of the light-emitting control transistor T7 are integrally formed. The first pole T71 of the light-emitting control transistor T7, the second pole T32 of the driving transistor T3, and the second pole T22 of the first compensation transistor T2 are integrally formed. The first pole T51 of the second reset transistor T5 and the first pole T61 of the third reset transistor T6 are integrally formed. The second pole T52 of the second reset transistor T5 and the second pole T62 of the third reset transistor T6 are integrally formed. In particular, the second pole C12 of the storage capacitor C1 may be used as the gate T30 of the driving transistor T3.
[0103] For example, the channel region 1213 (active layer 121) of the transistor used in the embodiments of the present disclosure may be single crystal silicon, polycrystalline silicon (e.g., low-temperature polysilicon), or a metal oxide semiconductor material (e.g., IGZO, AZO, etc.). In one embodiment, the transistors are all P-type low-temperature polysilicon (LTPS) thin film transistors. In another embodiment, the first compensation transistor T2 and the first reset transistor T4, which are directly connected to the gate T30 of the driving transistor T3, are metal oxide semiconductor thin film transistors, i.e., the channel material of the transistors is a metal oxide semiconductor material (e.g., IGZO, AZO, etc.). Metal oxide semiconductor thin film transistors have low leakage current, which can help reduce the leakage current of the gate of the driving transistor T3.
[0104] For example, the transistors used in the embodiments of the present disclosure may have various structures, such as a top-gate type, a bottom-gate type, a double-gate type, etc. In one embodiment, the first compensation transistor T2 and the first reset transistor T4, which are directly connected to the gate of the driving transistor T3, are double-gate thin film transistors, which can help reduce the leakage current of the gate T30 of the driving transistor T3.
[0105] It should be noted that the semiconductor pattern layer L1 may be the above-mentioned active layer 121, and the first conductive pattern layer L2 may be the above-mentioned gate layer 123.
[0106] In some embodiments, the correspondence between the semiconductor pattern layer L1 and the via holes VH1, VH2, VH3, VH4, VH5, VH6, VH7 and VH8 formed on the display substrate 110 is shown in FIG. 6, and the semiconductor pattern layer L1 can be connected to other layers of the display substrate 110 through the via holes.
[0107] 9, in some embodiments, a second insulating layer 124 is formed on the structure after the conductive treatment, and a second conductive pattern layer L3 is formed on the second insulating layer 124. The second conductive pattern layer L3 includes a first pole C11 of the storage capacitor C1 and an initialization signal line 113. The first pole C11 of the storage capacitor C1 is provided in the same layer as the initialization signal line 113. The first pole C11 of the storage capacitor C1 has an electrode via hole C111, which facilitates electrical connection of the first connection electrode 11211 with the second pole C12 of the storage capacitor C1 (the gate T30 of the driving transistor T3) through the electrode via hole C111. The first connection electrode 11211 and the first pole C11 of the storage capacitor C1 are insulated from each other.
[0108] In some embodiments, the via hole VH3 may penetrate the first insulating layer 122 and the second insulating layer 124, thereby allowing the initialization signal line 113 to be connected to the second pole T42 of the first reset transistor T4, the second pole T52 of the second reset transistor T5, the second pole T62 of the third reset transistor T6, and the second pole T82 of the fourth reset transistor T8 through the via hole VH3.
[0109] The second conductive pattern layer L3 may be located between the second insulating layer 124 and the third insulating layer 125.
[0110] In some embodiments, the second conductive pattern layer L3 further includes a third power supply line 116B, that is, the third power supply line 116B is provided in the same layer as the first pole C11 of the storage capacitor C1 and the initialization signal line 113. Specifically, the third power supply line 116B is located between the first pole C11 of the storage capacitor C1 and the initialization signal line 113.
[0111] 10, the display substrate 110 may further include a third insulating layer 125 formed on the second conductive pattern layer L3 on a side thereof remote from the first conductive pattern layer L2, and a third conductive pattern layer L4 formed on the third insulating layer 125 on a side thereof remote from the second conductive pattern layer L3, in which a first connecting electrode 11211, a second connecting electrode 11212, a first adaptor electrode 11213, a data line 117, and a first power line 116A are formed. The first connecting electrode 11211, the second connecting electrode 11212, the adaptor electrode 11213, the data line 117, and the first power line 116A are located on the same layer.
[0112] For example, the first conductive pattern layer L2, the second conductive pattern layer L3, and the third conductive pattern layer L4 are all made of metal materials. For example, the first conductive pattern layer L2 is formed from the same metal material using the same patterning process, the second conductive pattern layer L3 is formed from the same metal material using the same patterning process, and the third conductive pattern layer L4 is formed from the same metal material using the same patterning process. For example, metal materials include, but are not limited to, molybdenum (Mo), aluminum, and titanium. For example, the first conductive pattern layer L2, the second conductive pattern layer L3, and the third conductive pattern layer L4 may be formed from, but are not limited to, molybdenum metal.
[0113] The third conductive pattern layer L4 may be the above-mentioned source-drain layer 123. The display substrate 110 further includes via holes VH9, VH10, and VH11. Here, the via holes VH1, VH2, VH4, VH5, VH6, VH7, and VH8 may penetrate the first insulating layer 122, the second insulating layer 124, and the third insulating layer 125, the via hole VH9 may penetrate the second insulating layer 124 and the third insulating layer 125, and the via holes VH10 and VH11 may penetrate the third insulating layer 125.
[0114] Thus, the adapter electrode 11213 can be connected to the first pole T81 of the fourth reset transistor T8 and the second pole T72 of the light-emitting control transistor T7 through the via hole VH1. The first connection electrode 11211 can be connected to the first pole T91 of the second compensation transistor T9 and the first pole T41 of the first reset transistor T4 through the via hole VH2, to the second pole C12 of the storage capacitor C1 through the via hole VH9, and to the first pole T21 of the first compensation transistor T2 through the via hole VH7, where the via hole VH9 corresponds to the electrode via hole C111. The second connection electrode 11212 can be connected to the first pole T51 of the second reset transistor T5 and the second pole T62 of the third reset transistor T6 through the via hole VH4, to the first pole C11 of the storage capacitor C1 through the via hole VH11, and to the second pole T12 of the data write transistor T1 through the via hole VH6. The data line 117 can be connected to the first pole T11 of the data write transistor T1 through a via hole VH8. The first power supply line 116A can be connected to the third power supply line 116B through a via hole VH10.
[0115] In some embodiments, the second conductive layer L3 further includes a capacitor plate C21, which is disposed corresponding to the data line 117 and can shield interference between the data line 117 and other signal lines.
[0116] 11 , in some embodiments, the display substrate 110 includes an initialization bus 132 located on the side of the initialization signal line 113 away from the base substrate 111, and the initialization bus 132 and the initialization signal line 113 are electrically connected. Specifically, a passivation layer 128 may be formed on the side of the third conductive pattern layer L4 away from the second conductive pattern layer L3, and a planarization layer 127 may be formed on the side of the passivation layer 128 away from the third conductive pattern layer L4. After that, an anode circuit pattern L5 may be formed on the side of the planarization layer 127 away from the third conductive pattern layer L4, and the anode circuit pattern L5 may include a first electrode 1181 of the light-emitting element 118 and the initialization bus 132. The initialization bus 132 is provided on the same layer as the first electrode 1181 of the light-emitting element 118. In one example, the light-emitting element 118 is an OLED, and the first electrode 1181 of the light-emitting element 118 is an anode of the OLED. The initialization bus 132 can be connected to the initialization signal line 113 of the second conductive pattern layer L3 through via holes in the passivation layer 128 and the planarization layer 127.
[0117] In this way, the initialization bus 132 can fully utilize the wiring space of the anode conductive layer, and the segmented initialization signal line 113 can further provide the initialization signal Vinit to the adjacent first pixel circuit 1121a and second pixel circuit 1121b.
[0118] In some embodiments, the display substrate 110 may further include a via hole VH12 and a via hole VH13. The via hole VH12 penetrates the passivation layer 128 and the planarization layer 127, and the via hole VH13 penetrates the passivation layer 128 and the planarization layer 127.
[0119] In this way, the adapter electrode 11213 can be connected to the first pole 1181 of the light emitting element 118 through the via hole VH12, and the initialization signal line 113 can be connected to the initialization bus 132 through the via hole VH13.
[0120] In some embodiments, the initialization bus 132 includes a plurality of main body portions 1321, a plurality of connection portions 1322, and a plurality of branch portions 1323, wherein the plurality of main body portions 1321 extend in a first direction and are spaced apart along a second direction and are configured to provide an initialization signal Vinit to a corresponding plurality of initialization signal lines 113 extending in the first direction and spaced apart in segments, the plurality of connection portions 1322 extend in the second direction and connect two adjacent main body portions 1321, and the plurality of branch portions 1323 are connected to at least one of the two adjacent main body portions 1321, the plurality of connection portions 1322 and the plurality of branch portions 1323 are spaced apart alternately along the first direction, and the plurality of branch portions 1322 are located between the two adjacent main body portions 1321 and are configured to provide an initialization signal Vinit to a corresponding plurality of initialization signal lines 113 extending in the first direction and spaced apart in segments.
[0121] Referring to FIG. 12, in some embodiments, a pixel opening layer L6 may be formed on the display substrate 110 on the side of the anode circuit pattern L5 away from the substrate, and the pixel opening layer L6 has pixel openings 1301 corresponding to the anode circuit pattern L5. The pixel aperture layer L6 may be the pixel definition layer 130 described above.
[0122] In the description herein, references to terms such as "one embodiment," "some embodiments," "exemplary embodiments," "examples," "specific examples," or "some examples" mean that the specific features, structures, materials, or characteristics described in combination with the embodiments or examples are included in at least one embodiment or example of the present disclosure. In the description herein, the exemplary use of the terms does not necessarily refer to the same embodiment or example. Furthermore, the described specific features, structures, materials, or characteristics may be combined in any suitable manner in any one or more embodiments or examples.
[0123] Although embodiments of the present disclosure have been illustrated and described, those skilled in the art will understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present disclosure, and that the scope of the present disclosure is limited by the claims and their equivalents. [Explanation of symbols]
[0124] 100 display device 110 Display board 111 Base board 112 pixel units 113 Initialization signal line 114A First control signal line 114B Second control signal line 115 Light emission control signal line 116A 1st power line 116B 3rd power line 117 Data Line 118 Light-emitting element 119 2nd power line 120 Data drive circuit 120 buffer layer 121 Active layer 122 First insulating layer 123 Gate Layer 124 Second insulating layer 125 Third insulating layer 126 Source / Drain Layer 127 Planarization layer 128 Passivation Layer 130 Scanning drive circuit 130 Pixel Definition Layer
Claims
1. a base substrate including a display area; a plurality of pixel units located in the display area, each pixel unit including a pixel circuit having a first pixel circuit and a second pixel circuit adjacent to each other along a first direction; an initialization signal line extending in the first direction and configured to provide an initialization signal to the first pixel circuit and the second pixel circuit; a first control signal line extending in the first direction and configured to provide a gate signal to the first pixel circuit and the second pixel circuit; a light-emitting control signal line extending in the first direction and configured to provide a light-emitting control signal to the first pixel circuit and the second pixel circuit; Equipped with the initialization signal line is located on the side of the light emission control signal line that is farther from the first control signal line, an initialization bus line located on a side of the initialization signal line away from the base substrate, the initialization bus line and the initialization signal line being electrically connected; the initialization bus line includes a plurality of main body portions, a plurality of connection portions, and a plurality of branch portions; the plurality of main body portions extend in the first direction and are spaced apart along a second direction, and are configured to provide the initialization signal to the plurality of initialization signal lines extending in the first direction; the plurality of connection portions extend in the second direction and connect two adjacent ones of the main body portions; A display substrate, wherein the plurality of branch portions are connected to at least one of two adjacent main body portions, and the plurality of branch portions are located between the two adjacent main body portions and configured to provide the initialization signal to a corresponding plurality of initialization signal lines extending in the first direction.
2. 2. The display substrate of claim 1, further comprising a second control signal line located on a side of the initialization signal line away from the light emission control signal line, the second control signal line extending in the first direction and configured to provide a reset control signal to the first pixel circuit and the second pixel circuit.
3. 3. The display substrate of claim 2, further comprising a plurality of first power lines, the first power lines extending in the second direction and spaced apart along the first direction, configured to provide first power signals to the pixel circuits.
4. 4. The display substrate of claim 3, further comprising a plurality of third power lines, the plurality of third power lines being spaced apart along the second direction, the third power lines being connected to the first power lines and configured to provide the first power signal to the pixel circuits.
5. the pixel circuit includes a light-emitting control transistor; a gate of the light-emitting control transistor is connected to the light-emitting control signal line, the light-emitting control transistor includes a first pole and a second pole, and the pixel circuit includes a driving transistor; the driving transistor includes a first pole and a second pole, the first pole of the driving transistor is connected to the first power supply line; 4. The display substrate according to claim 3, wherein the second electrode of the driving transistor is connected to the first electrode of the light-emitting control transistor.
6. the pixel circuit includes a first reset transistor and a storage capacitor, the second control signal line is connected to a gate of the first reset transistor, the storage capacitor includes a first pole and a second pole, the second pole of the storage capacitor being connected to the gate of the drive transistor; 6. The display substrate of claim 5, wherein the first reset transistor includes a first pole and a second pole, the second pole of the first reset transistor is connected to the gate of the driving transistor, and the first reset transistor is configured to initialize the driving transistor and the storage capacitor in a reset stage.
7. 7. The display substrate according to claim 6, wherein the initialization signal line is provided in the same layer as the first pole of the storage capacitor, with a gap therebetween.
8. 2. The display substrate of claim 1, further comprising a plurality of data lines, the plurality of data lines extending in the second direction and spaced apart along the first direction, configured to provide data signals to the pixel circuits.
9. the pixel circuit includes a data writing transistor and a first compensation transistor; the data write transistor includes a first pole and a second pole, the first pole of the data write transistor is connected to the data line; a first electrode of the storage capacitor is connected to a second electrode of the data write transistor; 9. The display substrate of claim 8, wherein the first compensation transistor includes a first pole and a second pole, the first pole of the first compensation transistor is connected to the gate of the driving transistor, and the second pole of the first compensation transistor is connected to the second pole of the driving transistor.
10. The display substrate of claim 9, wherein the data write transistor and the first compensation transistor are located on a side of the first control signal line that is closer to the light-emitting control signal line.
11. the pixel circuit includes a second reset transistor and a third reset transistor located between a second control signal line and the light emission control signal line, the second control signal line is connected to a gate of the second reset transistor, and the light emission control signal line is connected to a gate of the third reset transistor; the second reset transistor includes a first pole and a second pole, the first pole of the second reset transistor is connected to the second pole of the data write transistor, and the second pole of the second reset transistor is connected to the initialization signal line; 11. The display substrate of claim 10, wherein the third reset transistor includes a first pole and a second pole, the first pole of the third reset transistor is connected to the second pole of the data write transistor, and the second pole of the third reset transistor is connected to the initialization signal line.
12. a second electrode of the light-emitting control transistor is connected to a first electrode of the light-emitting element, and the pixel circuit includes a fourth reset transistor located between the second control signal line and the light-emitting control signal line; 6. The display substrate of claim 5, wherein the fourth reset transistor includes a first pole and a second pole, the first pole of the fourth reset transistor is connected to the first pole of the light-emitting element, and the second pole of the fourth reset transistor is connected to the initialization signal line.
13. The display substrate of claim 12, further comprising a second power line configured to provide a second power signal to the light emitting element.
14. 14. The display substrate of claim 13, wherein the initialization signal is a constant voltage signal, and the magnitude of the initialization signal is between the first power signal and the second power signal.
15. 2. The display substrate according to claim 1, wherein one pixel of the display substrate includes a pixel unit emitting red light, a pixel unit emitting green light, and a pixel unit emitting blue light.
16. 2. The display substrate of claim 1, wherein the first control signal line is further configured to provide a reset control signal to a pixel circuit on another side of the first control signal line opposite the first pixel circuit and the second pixel circuit.
17. A display device comprising the display substrate according to any one of claims 1 to 16.
18. 18. The display device of claim 17, further comprising a data driving circuit and a scan driving circuit, wherein the data driving circuit is configured to provide data signals to the pixel units in response to a command from a control circuit, and the scan driving circuit is configured to provide reset control signals, the emission control signals, the gate signals, and the initialization signals to the pixel units in response to a command from the control circuit.
19. 19. The display device of claim 18, wherein the display substrate includes a non-display area, and the data driving circuit and the scan driving circuit are provided in the non-display area.