Emission gate driving circuit, driving method thereof, display panel and display equipment
By introducing the target transistor into the signal output module of the Emit GOA circuit and using its on state under low-level signals, the voltage instability of the current row signal line in the suspended state is solved, and the display image quality of the display panel is significantly improved.
Patent Information
- Application Number
- CN202510406918.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-02
- Publication Date
- 2025-05-06
- Estimated Expiration
- 2045-04-02
AI Technical Summary
In the Emit GOA circuit, the current row signal line is easily entered into a suspended state when both the first transistor and the second transistor are in the off state, resulting in unstable voltage and affecting the display image quality of the display panel.
A transmit gate driving circuit is designed. By introducing a target transistor into the signal output module, and electrically connecting its first path end to the first level line, the second path end is electrically connected to the current row signal line, and the gate terminal is electrically connected to the gate signal line, and the target transistor is switched to the on state under the driving of the low level signal, ensuring that the current row signal line receives a stable low level signal.
It effectively solves the problem of voltage instability of the current line signal line in the suspended state, and significantly improves the display image quality of the display panel.
Smart Images

Figure CN119943003A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of display technology, and in particular to an emission gate driving circuit and a driving method thereof, a display panel and a display device. Background Art
[0002] In the field of display technology, the Emit GOA (Emitter Gate On Array) circuit is the core component for pixel driving and control. In other words, the Emit GOA circuit is an indispensable part of the display panel and directly affects the display quality of the display panel.
[0003] There is a special situation in the actual operation of the Emit GOA circuit. Since the current row signal line is electrically connected to the connection node of two transistors, when the two transistors are in the off state, the current row signal line will enter a suspended state, and in the suspended state, the current row signal line is no longer effectively controlled by any transistor, which makes the current row signal line susceptible to external factors, such as leakage and coupling effects between signals, so that the voltage on the current row signal line fluctuates and becomes very unstable, seriously affecting the luminous state of the display panel, resulting in abnormal display phenomena such as flickering and uneven brightness on the display panel.
[0004] Therefore, how to optimize the design of the Emit GOA circuit to improve the display quality of the display panel is a technical problem that needs to be solved urgently. Summary of the invention
[0005] The main purpose of the present application is to provide an emission gate driving circuit and a driving method thereof, a display panel and a display device, aiming to optimize the design of the Emit GOA circuit to improve the display quality of the display panel.
[0006] To achieve the above object, the present application provides a transmission gate driving circuit, the transmission gate driving circuit comprising: A signal input module, wherein a signal access end of the signal input module is electrically connected to a previous row of signal lines, a signal control end of the signal input module is electrically connected to a first timing control line, and the signal input module is configured to access a high level signal provided by the previous row of signal lines under the drive of a low level signal provided by the first timing control line; A signal output module, the signal output module includes a first transistor, a second transistor and a target transistor, the signal output end of the signal input module is electrically connected to the gate end of the first transistor and the gate end of the second transistor respectively, the first channel end of the first transistor is connected to a first level line, the second channel end of the first transistor is connected to a connection node of the first channel end of the second transistor and is connected to a current row signal line, the second channel end of the second transistor is connected to a second level line, the first channel end of the target transistor is electrically connected to the first level line, the second channel end of the target transistor is electrically connected to the current row signal line, and the gate end of the target transistor is electrically connected to the gate signal line.
[0007] In one embodiment, the signal output module includes a third transistor and a first capacitor; The first end of the first capacitor is electrically connected to the gate end of the first transistor and the signal output end of the signal input module respectively, and the second end of the first capacitor is electrically connected to the second timing control line; The gate terminal of the third transistor is electrically connected to the signal output terminal of the signal input module, the first channel terminal of the third transistor is connected to the second level line, and the second channel terminal of the third transistor is electrically connected to the gate terminal of the second transistor.
[0008] In one embodiment, the transmission gate driving circuit includes a first driving module and a second driving module; The voltage input terminal of the first driving module is electrically connected to the signal output terminal of the signal input module, the driving control terminal of the first driving module is electrically connected to the connection intersection terminal of the second driving module, the first capacitor terminal of the first driving module is electrically connected to the gate terminal of the second transistor, and the second capacitor terminal of the first driving module is electrically connected to the second path terminal of the second transistor; The driving control end of the second driving module is electrically connected to the signal output end of the signal input module.
[0009] In one embodiment, the first driving module includes a fourth transistor, a fifth transistor, a sixth transistor, a seventh transistor, a second capacitor and a third capacitor; The gate terminal of the fourth transistor, the first channel terminal of the fifth transistor and the gate terminal of the sixth transistor are electrically connected to the second timing control line respectively; The first channel end of the sixth transistor constitutes the voltage input end of the first driving module and is electrically connected to the signal output end of the signal input module, the second channel end of the sixth transistor is electrically connected to the first channel end of the seventh transistor, the second channel end of the seventh transistor is electrically connected to the second level line, and the gate end of the seventh transistor is electrically connected to the gate end of the fifth transistor and the first end of the third capacitor respectively; The first end of the third capacitor constitutes the driving control end of the first driving module and is electrically connected to the connection intersection end of the second driving module, and the second end of the third capacitor is electrically connected to the second path end of the fifth transistor and the first path end of the fourth transistor respectively; The first end of the second capacitor constitutes the first capacitor end of the first driving module and is electrically connected to the second path end of the fourth transistor and the gate end of the second transistor respectively; The second end of the second capacitor constitutes the second capacitor end of the first driving module and is electrically connected to the second path end of the second transistor.
[0010] In one embodiment, the second driving module includes an eighth transistor and a ninth transistor; The gate terminal of the eighth transistor constitutes the driving control terminal of the second driving module and is electrically connected to the signal output terminal of the signal input module; The first channel end of the eighth transistor is electrically connected to the gate end of the ninth transistor, the first channel end of the ninth transistor is connected to the first level line, and the second channel end of the eighth transistor is electrically connected to the second channel end of the ninth transistor; A connection node where the second channel end of the eighth transistor is connected to the second channel end of the ninth transistor constitutes a connection intersection end of the second driving module, and is electrically connected to the driving control end of the first driving module.
[0011] In one embodiment, the signal input module includes a tenth transistor; The first path end of the tenth transistor constitutes the signal access end of the signal input module and is electrically connected to the previous row of signal lines; The gate terminal of the tenth transistor constitutes the signal control terminal of the signal input module and is electrically connected to the first timing control line; The second channel end of the tenth transistor constitutes a signal output end of the signal input module, and is electrically connected to the gate end of the first transistor and the gate end of the second transistor respectively.
[0012] In addition, to achieve the above-mentioned purpose, the present application also provides a driving method of an emission gate driving circuit, which is applied to the emission gate driving circuit described in any one of the above items, and the driving method includes: When the first transistor and the second transistor in the signal output module maintain the off state under the high level signal output by the signal input module, the target transistor in the enable signal output module is switched from the off state to the on state under the driving of the low level signal provided by the gate signal line, so as to pull down the low level signal provided by the first level line to the current row signal line; wherein, The high level signal output by the signal input module is set to be provided by the previous row signal line to which the signal input module is connected under the drive of the low level signal provided by the first timing control line.
[0013] In one embodiment, the driving method includes: The transmitting gate driving circuit is enabled to perform driving control in a preset first driving stage, a second driving stage, a third driving stage, a fourth driving stage, a fifth driving stage, a sixth driving stage and a seventh driving stage in sequence; wherein, The first driving stage is set such that the first timing control line, the previous row signal line, the current row signal line and the gate signal line all provide low level signals, and the second timing control line provides a high level signal; The second driving stage is set such that the second timing control line, the previous row signal line, the current row signal line and the gate signal line all provide low level signals, and the first timing control line provides a high level signal; The third driving stage is set such that the first timing control line, the current row signal line and the gate signal line all provide low level signals, and the second timing control line and the previous row signal line all provide high level signals; The fourth driving stage is configured such that the second timing control line provides a low level signal, and the first timing control line, the previous row signal line, the current row signal line and the gate signal line all provide high level signals; The fifth driving stage is configured such that the first timing control line provides a low level signal, and the second timing control line, the previous row signal line, the current row signal line and the gate signal line all provide high level signals; The sixth driving stage is set such that the second timing control line and the previous row signal line both provide low level signals, and the first timing control line, the current row signal line and the gate signal line all provide high level signals; The seventh driving stage is set such that the first timing control line, the previous row signal line and the current row signal line all provide low level signals, and the second timing control line and the gate signal line all provide high level signals.
[0014] In addition, to achieve the above-mentioned purpose, the present application also provides a display panel, which includes a color filter substrate, a liquid crystal layer and an array substrate, the liquid crystal layer is arranged between the array substrate and the color filter substrate, and the array substrate includes the emission gate drive circuit described in any one of the above items.
[0015] In addition, to achieve the above-mentioned purpose, the present application also provides a display device, the display device includes the above-mentioned display panel; or, The display device includes a processor, a memory, and a driver program stored in the memory and executable by the processor, wherein the driver program implements the steps of the above-mentioned driving method when executed by the processor.
[0016] The emission gate drive circuit set in the present application only adds a target transistor in the signal output module, and electrically connects the first channel end of the target transistor to the first level line, the second channel end of the target transistor to the current row signal line, and the gate end of the target transistor to the gate signal line, thereby realizing the design of the optimized Emit GOA circuit, thereby effectively solving the floating phenomenon of the current row signal line when the first transistor and the second transistor are both in the cut-off state, and significantly improving the display quality of the display panel. Specifically, when the signal input module is driven by the low-level signal provided by the first timing control line to synchronously transmit the high-level signal provided by the previous row signal line to the gate end of the first transistor and the gate end of the second transistor in the signal output module, the first transistor and the second transistor always maintain the off state under the action of the high-level signal. At this time, the target transistor is driven by the low-level signal provided by the gate signal line to switch from the off state to the on state, thereby pulling down the stable low-level signal provided by the first level line to the current row signal line, thereby avoiding the current row signal line being susceptible to external interference due to the hanging phenomenon and causing voltage fluctuations, ensuring the voltage stability of the current row signal line, and thus significantly improving the display quality of the display panel using the emission gate drive circuit. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments consistent with the present application and, together with the description, serve to explain the principles of the present application.
[0018] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art will be briefly introduced below. Obviously, for ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative labor.
[0019] Figure 1 This is a waveform diagram of the traditional Emit GOA circuit; Figure 2 This is a schematic diagram of the signal waveform of the Emit GOA circuit; Figure 3 This is the circuit schematic of the Emit GOA circuit; Figure 4 is a structural block diagram of the first embodiment of the transmitting gate driving circuit of the present application; Figure 5 is a circuit schematic diagram of the transmitting gate drive circuit of the present application; Figure 6 It is a waveform diagram of the transmitting gate driving circuit of the present application; Figure 7 is a schematic diagram of circuit conduction of the emission gate drive circuit in the first drive stage; Figure 8 is a schematic diagram of circuit conduction of the emission gate drive circuit in the second drive stage; Fig. 9 is a schematic diagram of circuit conduction of the emission gate drive circuit in the third drive stage; Fig.10 is a schematic diagram of circuit conduction of the emission gate driving circuit in the fourth driving stage; Fig.11 is a schematic diagram of circuit conduction of the emission gate drive circuit in the fifth drive stage; Fig.12 is a circuit conduction schematic diagram of the emission gate drive circuit in the sixth drive stage; Fig.13 is a schematic diagram of circuit conduction of the emission gate drive circuit in the seventh drive stage; Fig.14 is another circuit schematic diagram of the transmitting gate driving circuit of the present application; Fig.15 It is a schematic diagram of the structure of the display device involved in the embodiment of the present application.
[0020] Description of Figure Numbers: 10. Signal input module; 20. Signal output module; 30. First driving module; 40. Second driving module; T1. First transistor; T2. Second transistor; T3. Third transistor; T4. Fourth transistor; T5. Fifth transistor; T6. Sixth transistor; T7. Seventh transistor; T8. Eighth transistor; T9. Ninth transistor; T10. Tenth transistor; Tn. Target transistor; EM(n-1), Previous row signal line; EM(n), Current row signal line; CK1, First timing control line; CK2, Second timing control line; B', Gate signal line; C1, First capacitor; C2, Second capacitor; C3, Third capacitor; L, First level line; H, Second level line.
[0021] The realization of the purpose, functional features and advantages of this application will be further explained in conjunction with embodiments and with reference to the accompanying drawings. DETAILED DESCRIPTION
[0022] The following will be combined with the drawings in the embodiments of the present application to clearly and completely describe the technical solutions in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of this application.
[0023] It should be noted that if the embodiments of the present application involve directional indications (such as up, down, left, right, front, back...), such directional indications are only used to explain the relative position relationship, movement status, etc. between the components under a certain specific posture (as shown in the accompanying drawings). If the specific posture changes, the directional indication will also change accordingly.
[0024] In addition, if there are descriptions involving "first", "second", etc. in the embodiments of the present application, the descriptions of "first", "second", etc. are only used for descriptive purposes and cannot be understood as indicating or suggesting their relative importance or implicitly indicating the number of technical features indicated. Therefore, the features defined as "first" and "second" may explicitly or implicitly include at least one of the features. In addition, the technical solutions between the various embodiments can be combined with each other, but they must be based on the ability of ordinary technicians in the field to implement them. When the combination of technical solutions is contradictory or cannot be implemented, it should be deemed that such combination of technical solutions does not exist and is not within the scope of protection required by this application.
[0025] Here, exemplary embodiments are described in detail, and examples thereof are shown in the accompanying drawings. When the following description refers to the drawings, unless otherwise indicated, the same numbers in different drawings represent the same or similar elements. The implementations described in the following exemplary embodiments do not represent all implementations consistent with the present application.
[0026] Reference Figure 1 , Figure 1 This is a waveform diagram of the traditional Emit GOA circuit. Figure 1 The dotted line portion shown indicates the cut-off state of the transistor, at which time the OLED (Organic Light Emitting Diode) device connected thereto does not emit light and is in a non-display state; accordingly, Figure 1 The solid line portion shown in FIG. 1 represents the on-state of the transistor, at which time the OLED device connected thereto emits light, realizing image display on the display panel. In other words, the conventional Emit GOA circuit can be Figure 1The signal waveform shown in the figure realizes the image display of the display panel. However, there is a special situation in the actual operation of the Emit GOA circuit. Figure 2 The driving phase S3 shown, at this time Figure 3 The two transistors T1 and T2 shown are both in the cut-off state. At this time, the current row signal line EM(n) will enter a suspended state, and in the suspended state, the current row signal line EM(n) is no longer effectively controlled by any transistor, which makes the current row signal line EM(n) susceptible to external factors, such as leakage and coupling effects between signals, so that the voltage on the current row signal line EM(n) fluctuates and becomes very unstable, seriously affecting the luminous state of the display panel, resulting in abnormal display phenomena such as flickering and uneven brightness on the display panel.
[0027] In addition, the width of the current row signal line EM(n) waveform is also one of the important factors affecting the OLED display quality. Figure 3 As shown, the width of the waveform of the current row signal line EM(n) is not only controlled by the first / second timing control line CK1 / 2, but also affected by the waveform of the previous row signal line EM(n-1). This mutual influence mechanism ensures that the Emit GOA circuit can work according to the predetermined timing. However, Figure 2 In the EM(n) storage capacitor reset phase corresponding to the driving phase S5 and the EM(n) charging phase corresponding to the driving phase S6, if the voltage on the current row signal line EM(n) is unstable, the driving control from the driving phase S5 to the driving phase S6 will be disturbed, resulting in Figure 3 The storage capacitor C2 shown cannot be reset or charged correctly, thereby affecting the light-emitting state of the OLED pixel, further exacerbating the problem of display abnormality, and seriously affecting the image quality and stability of the OLED display panel.
[0028] The above contents are only used to assist in understanding the technical solution of the present application and do not constitute an admission that the above contents are prior art.
[0029] In order to solve the technical defects existing in the above content, the present application provides an emission gate drive circuit and a driving method thereof, a display panel and a display device.
[0030] The present application embodiment provides a transmission gate driving circuit, referring to Figure 4 As shown, Figure 4 1 is a structural block diagram of the first embodiment of the transmission gate driving circuit of the present application. The transmission gate driving circuit includes: A signal input module 10, wherein the signal access end of the signal input module 10 is electrically connected to the previous row signal line EM(n-1), the signal control end of the signal input module 10 is electrically connected to the first timing control line CK1, and the signal input module 10 is configured to access the high level signal provided by the previous row signal line EM(n-1) under the drive of the low level signal provided by the first timing control line CK1.
[0031] In this embodiment, refer to Figure 4 After the signal control end of the signal input module 10 is connected to the low-level signal provided by the first timing control line CK1, the signal input module 10 is switched from the off state to the on state under the drive of the low-level signal, so as to synchronously transmit the high-level signal provided by the previous row of signal lines EM(n-1) to the gate end of the first transistor T1 and the gate end of the second transistor T2 in the signal output module 20 through the signal output end of the signal input module 10, so as to ensure that the first transistor T1 and the second transistor T2 always maintain the off state under the action of the high-level signal.
[0032] It should be noted that the previous row of signal lines EM(n-1) can be understood as the previous row of signal lines of the current row of signal lines EM(n).
[0033] A signal output module 20, the signal output module 20 includes a first transistor T1, a second transistor T2 and a target transistor Tn, the signal output end of the signal input module 10 is electrically connected to the gate end of the first transistor T1 and the gate end of the second transistor T2 respectively, the first channel end of the first transistor T1 is connected to the first level line L, the second channel end of the first transistor T1 is connected to the connection node of the first channel end of the second transistor T2 and is connected to the current row signal line EM(n), the second channel end of the second transistor T2 is connected to the second level line H, the first channel end of the target transistor Tn is electrically connected to the first level line L, the second channel end of the target transistor Tn is electrically connected to the current row signal line EM(n), and the gate end of the target transistor Tn is electrically connected to the gate signal line B'.
[0034] In the present embodiment, the signal output module 20 is configured to enable the target transistor Tn to switch from the off state to the on state under the drive of the low level signal provided by the gate signal line B' when the first transistor T1 and the second transistor T2 maintain the off state under the high level signal output by the signal input module 10, so as to pull down the low level signal provided by the low level line to the current row signal line EM(n). That is to say, after the gate end of the first transistor T1 and the gate end of the second transistor T2 receive the high level signal provided by the previous row signal line EM(n-1) forwarded by the signal output end of the signal input module 10, the first transistor T1 and the second transistor T2 do not respond to the high level signal, that is, the first transistor T1 and the second transistor T2 always maintain the off state at this time. In order to avoid the current signal line electrically connected between the second channel end of the first transistor T1 and the first channel end of the second transistor T2 from being suspended in the off state of the first transistor T1 and the second transistor T2, the present application sets the first channel end of the target transistor Tn and the first level line EM(n) to be connected to each other. L is electrically connected, the second path end of the target transistor Tn is electrically connected to the current row signal line EM(n), and the gate end of the target transistor Tn is electrically connected to the gate signal line B'. At this time, the target transistor Tn is switched from the cut-off state to the on state under the drive of the low-level signal provided by the gate signal line B', thereby pulling down the stable low-level signal provided by the first level line L to the current row signal line EM(n), ensuring that the current row signal line EM(n) can continuously and stably provide a low-level voltage, avoiding the voltage fluctuation of the current row signal line EM(n) due to leakage and coupling effects between signals when it is suspended, thereby significantly improving the display quality of the display panel.
[0035] It should be noted that the first level line L can be understood as a low level line, and the second level line H can be understood as a high level line.
[0036] Further, in some feasible embodiments, referring to Figure 5 , Figure 5 The schematic diagram of the transmission gate driving circuit of the present application is shown in FIG. The signal output module 20 includes a third transistor T3 and a first capacitor C1; the first end of the first capacitor C1 is electrically connected to the gate end of the first transistor T1 and the signal output end of the signal input module 10, respectively, and the second end of the first capacitor C1 is electrically connected to the second timing control line CK2; the gate end of the third transistor T3 is electrically connected to the signal output end of the signal input module 10, the first channel end of the third transistor T3 is connected to the second level line H, and the second channel end of the third transistor T3 is electrically connected to the gate end of the second transistor T2.
[0037] In this embodiment, refer to Figures 5 and 6 , the emission gate drive circuit is provided with Figure 6 The first driving stage S1, the second driving stage S2, the third driving stage S3, the fourth driving stage S4, the fifth driving stage S5 and the sixth driving stage S6 are shown. In the first driving stage S1, since the first timing control line CK1, the previous row signal line EM(n-1), the current row signal line EM(n) and the gate signal line B' all provide low-level signals, the second timing control line CK2 provides a high-level signal. At this time, Figure 5 The third transistor T3 is shown switched from an off state to an on state.
[0038] In the second driving stage S2, since the second timing control line CK2, the previous row signal line EM(n-1), the current row signal line EM(n) and the gate signal line B' all provide low level signals, the first timing control line CK1 provides a high level signal; Figure 5 The third transistor T3 shown is continuously kept in the turned-on state.
[0039] In the third driving stage S3, since the first timing control line CK1, the current row signal line EM(n) and the gate signal line B' all provide low level signals, the second timing control line CK2 and the previous row signal line EM(n-1) all provide high level signals; Figure 5 The third transistor T3 is shown switched from an on state to an off state.
[0040] In the fourth driving stage S4, since the second timing control line CK2 provides a low level signal, the first timing control line CK1, the previous row signal line EM(n-1), the current row signal line EM(n) and the gate signal line B' all provide high level signals. Figure 5 The third transistor T3 shown is continuously maintained in the off state.
[0041] In the fifth driving stage S5, since the first timing control line CK1 provides a low level signal, the second timing control line CK2, the previous row signal line EM(n-1), the current row signal line EM(n) and the gate signal line B' all provide high level signals. Figure 5 The third transistor T3 shown is continuously maintained in the off state.
[0042] In the sixth driving stage S6, since the second timing control line CK2 and the previous row signal line EM(n-1) both provide low level signals, the first timing control line CK1, the current row signal line EM(n) and the gate signal line B' all provide high level signals. Figure 5 The third transistor T3 shown is always in the off state.
[0043] In the seventh driving stage S7, since the first timing control line CK1, the previous row signal line EM(n-1) and the current row signal line EM(n) all provide low level signals, the second timing control line CK2 and the gate signal line B' all provide high level signals, Figure 5 The third transistor T3 is shown switched from an off state to an on state.
[0044] Further, in some other feasible embodiments, referring to Figure 5 The transmitting gate driving circuit includes a first driving module 30 and a second driving module 40; the voltage input terminal of the first driving module 30 is electrically connected to the signal output terminal of the signal input module 10, the driving control terminal of the first driving module 30 is electrically connected to the connection intersection terminal of the second driving module 40, the first capacitor C1 terminal of the first driving module 30 is electrically connected to the gate terminal of the second transistor T2, and the second capacitor C2 terminal of the first driving module 30 is electrically connected to the second path terminal of the second transistor T2; the driving control terminal of the second driving module 40 is electrically connected to the signal output terminal of the signal input module 10.
[0045] Further, in some feasible embodiments, referring to Figure 5 The first driving module 30 includes a fourth transistor T4, a fifth transistor T5, a sixth transistor T6, a seventh transistor T7, a second capacitor C2 and a third capacitor C3; the gate end of the fourth transistor T4, the first channel end of the fifth transistor T5 and the gate end of the sixth transistor T6 are respectively electrically connected to the second timing control line CK2; the first channel end of the sixth transistor T6 constitutes the voltage input end of the first driving module 30 and is electrically connected to the signal output end of the signal input module 10, the second channel end of the sixth transistor T6 is electrically connected to the first channel end of the seventh transistor T7, the second channel end of the seventh transistor T7 is electrically connected to the second level line H, and the gate ends of the seven transistors are respectively connected to the The gate terminal of the fifth transistor T5 is electrically connected to the first end of the third capacitor C3; the first end of the third capacitor C3 constitutes the driving control end of the first driving module 30 and is electrically connected to the connection intersection end of the second driving module 40, and the second end of the third capacitor C3 is electrically connected to the second path end of the fifth transistor T5 and the first path end of the fourth transistor T4 respectively; the first end of the second capacitor C2 constitutes the first capacitor C1 end of the first driving module 30, and is electrically connected to the second path end of the fourth transistor T4 and the gate end of the second transistor T2 respectively; the second end of the second capacitor C2 constitutes the second capacitor C2 end of the first driving module 30 and is electrically connected to the second path end of the second transistor T2.
[0046] In this embodiment, refer to Figures 5 and 6In the first driving stage S1, since the first timing control line CK1, the previous row signal line EM(n-1), the current row signal line EM(n) and the gate signal line B' all provide low-level signals, the second timing control line CK2 provides a high-level signal. At this time, Figure 5 The fourth transistor T4 shown maintains the off state, the fifth transistor T5 switches from the off state to the on state, the sixth transistor T6 maintains the off state, and the seventh transistor T7 switches from the off state to the on state.
[0047] In the second driving stage S2, since the second timing control line CK2, the previous row signal line EM(n-1), the current row signal line EM(n) and the gate signal line B' all provide low level signals, the first timing control line CK1 provides a high level signal; Figure 5 The fourth transistor T4 shown is switched from the off state to the on state, the fifth transistor T5 is switched from the on state to the off state, the sixth transistor T6 is switched from the off state to the on state, and the seventh transistor T7 is switched from the on state to the off state.
[0048] In the third driving stage S3, since the first timing control line CK1, the current row signal line EM(n) and the gate signal line B' all provide low level signals, the second timing control line CK2 and the previous row signal line EM(n-1) all provide high level signals; Figure 5 The fourth transistor T4 shown is switched from the on state to the off state, the fifth transistor T5 is switched from the off state to the on state, the sixth transistor T6 is switched from the on state to the off state, and the seventh transistor T7 is switched from the off state to the on state.
[0049] In the fourth driving stage S4, since the second timing control line CK2 provides a low level signal, the first timing control line CK1, the previous row signal line EM(n-1), the current row signal line EM(n) and the gate signal line B' all provide high level signals. Figure 5 The fourth transistor T4 shown is switched from the off state to the on state, the fifth transistor T5 remains in the on state, the sixth transistor T6 is switched from the off state to the on state, and the seventh transistor T7 remains in the on state.
[0050] In the fifth driving stage S5, since the first timing control line CK1 provides a low level signal, the second timing control line CK2, the previous row signal line EM(n-1), the current row signal line EM(n) and the gate signal line B' all provide high level signals. Figure 5 The fourth transistor T4 is switched from the on state to the off state, the fifth transistor T5 remains in the on state, the sixth transistor T6 is switched from the on state to the off state, and the seventh transistor T7 remains in the on state.
[0051] In the sixth driving stage S6, since the second timing control line CK2 and the previous row signal line EM(n-1) both provide low level signals, the first timing control line CK1, the current row signal line EM(n) and the gate signal line B' all provide high level signals. Figure 5 The fourth transistor T4 shown is switched from the off state to the on state, the fifth transistor T5 remains in the on state, the sixth transistor T6 is switched from the off state to the on state, and the seventh transistor T7 remains in the on state.
[0052] In the seventh driving stage S7, since the first timing control line CK1, the previous row signal line EM(n-1) and the current row signal line EM(n) all provide low level signals, the second timing control line CK2 and the gate signal line B' all provide high level signals, Figure 5 The fourth transistor T4 is switched from the on state to the off state, the fifth transistor T5 remains in the on state, the sixth transistor T6 is switched from the on state to the off state, and the seventh transistor T7 remains in the on state.
[0053] Further, in some other feasible embodiments, referring to Figure 5 The second driving module 40 includes an eighth transistor T8 and a ninth transistor T9; the gate terminal of the eighth transistor T8 constitutes the driving control terminal of the second driving module 40, and is electrically connected to the signal output terminal of the signal input module 10; the first path terminal of the eighth transistor T8 is electrically connected to the gate terminal of the ninth transistor T9, the first path terminal of the ninth transistor T9 is connected to the first level line L, and the second path terminal of the eighth transistor T8 is electrically connected to the second path terminal of the ninth transistor T9; the connection node where the second path terminal of the eighth transistor T8 is connected to the second path terminal of the ninth transistor T9 constitutes the connection intersection terminal of the second driving module 40, and is electrically connected to the driving control terminal of the first driving module 30.
[0054] In this embodiment, refer to Figures 5 and 6 In the first driving stage S1, since the first timing control line CK1, the previous row signal line EM(n-1), the current row signal line EM(n) and the gate signal line B' all provide low-level signals, the second timing control line CK2 provides a high-level signal. At this time, Figure 5 The eighth transistor T8 and the ninth transistor T9 are both switched from the off state to the on state.
[0055] In the second driving stage S2, since the second timing control line CK2, the previous row signal line EM(n-1), the current row signal line EM(n) and the gate signal line B' all provide low level signals, the first timing control line CK1 provides a high level signal; Figure 5The eighth transistor T8 shown in the figure continuously maintains the on state, and the ninth transistor T9 switches from the on state to the off state.
[0056] In the third driving stage S3, since the first timing control line CK1, the current row signal line EM(n) and the gate signal line B' all provide low level signals, the second timing control line CK2 and the previous row signal line EM(n-1) all provide high level signals; Figure 5 The eighth transistor T8 shown is switched from the on state to the off state, and the ninth transistor T9 is switched from the off state to the on state.
[0057] In the fourth driving stage S4, since the second timing control line CK2 provides a low level signal, the first timing control line CK1, the previous row signal line EM(n-1), the current row signal line EM(n) and the gate signal line B' all provide high level signals. Figure 5 The eighth transistor T8 shown in the figure continues to maintain the off state, and the ninth transistor T9 switches from the on state to the off state.
[0058] In the fifth driving stage S5, since the first timing control line CK1 provides a low level signal, the second timing control line CK2, the previous row signal line EM(n-1), the current row signal line EM(n) and the gate signal line B' all provide high level signals. Figure 5 The eighth transistor T8 shown in the figure continues to maintain the off state, and the ninth transistor T9 is switched from the off state to the on state.
[0059] In the sixth driving stage S6, since the second timing control line CK2 and the previous row signal line EM(n-1) both provide low level signals, the first timing control line CK1, the current row signal line EM(n) and the gate signal line B' all provide high level signals. Figure 5 The eighth transistor T8 shown in the figure continues to maintain the off state, and the ninth transistor T9 switches from the on state to the off state.
[0060] In the seventh driving stage S7, since the first timing control line CK1, the previous row signal line EM(n-1) and the current row signal line EM(n) all provide low level signals, the second timing control line CK2 and the gate signal line B' all provide high level signals, Figure 5 The eighth transistor T8 and the ninth transistor T9 shown are both switched from the off state to the on state.
[0061] Further, in some feasible embodiments, referring to Figure 5The signal input module 10 includes a tenth transistor T10; a first channel end of the tenth transistor T10 constitutes a signal access end of the signal input module 10, and is electrically connected to the previous row signal line EM(n-1); a gate end of the tenth transistor T10 constitutes a signal control end of the signal input module 10, and is electrically connected to the first timing control line CK1; a second channel end of the tenth transistor T10 constitutes a signal output end of the signal input module 10, and is electrically connected to the gate end of the first transistor T1 and the gate end of the second transistor T2, respectively.
[0062] In this embodiment, refer to Figures 5 and 6 In the first driving stage S1, since the first timing control line CK1, the previous row signal line EM(n-1), the current row signal line EM(n) and the gate signal line B' all provide low-level signals, the second timing control line CK2 provides a high-level signal. At this time, Figure 5 The tenth transistor T10 is shown switched from an off state to an on state.
[0063] In the second driving stage S2, since the second timing control line CK2, the previous row signal line EM(n-1), the current row signal line EM(n) and the gate signal line B' all provide low level signals, the first timing control line CK1 provides a high level signal; Figure 5 The tenth transistor T10 is shown switched from an on state to an off state.
[0064] In the third driving stage S3, since the first timing control line CK1, the current row signal line EM(n) and the gate signal line B' all provide low level signals, the second timing control line CK2 and the previous row signal line EM(n-1) all provide high level signals; Figure 5 The tenth transistor T10 is shown switched from an off state to an on state.
[0065] In the fourth driving stage S4, since the second timing control line CK2 provides a low level signal, the first timing control line CK1, the previous row signal line EM(n-1), the current row signal line EM(n) and the gate signal line B' all provide high level signals. Figure 5 The tenth transistor T10 is shown switched from an on state to an off state.
[0066] In the fifth driving stage S5, since the first timing control line CK1 provides a low level signal, the second timing control line CK2, the previous row signal line EM(n-1), the current row signal line EM(n) and the gate signal line B' all provide high level signals. Figure 5 The tenth transistor T10 is shown switched from an off state to an on state.
[0067] In the sixth driving stage S6, since the second timing control line CK2 and the previous row signal line EM(n-1) both provide low level signals, the first timing control line CK1, the current row signal line EM(n) and the gate signal line B' all provide high level signals. Figure 5 The tenth transistor T10 is shown switched from an on state to an off state.
[0068] In the seventh driving stage S7, since the first timing control line CK1, the previous row signal line EM(n-1) and the current row signal line EM(n) all provide low level signals, the second timing control line CK2 and the gate signal line B' all provide high level signals, Figure 5 The tenth transistor T10 is shown switched from an off state to an on state.
[0069] It should be noted that Figure 5 The first transistor T1, the second transistor T2, the third transistor T3, the fourth transistor T4, the fifth transistor T5, the sixth transistor T6, the seventh transistor T7, the eighth transistor T8, the ninth transistor T9, the tenth transistor T10 and the target transistor Tn shown are all P-type thin film transistors, and after the gate terminal of the P-type thin film transistor is connected to a low-level signal, the P-type thin film transistor switches from a cut-off state to a conducting state.
[0070] In summary, the emission gate drive circuit set in the present application only adds a target transistor Tn in the signal output module 20, and electrically connects the first channel end of the target transistor Tn to the first level line L, the second channel end of the target transistor Tn is electrically connected to the current row signal line EM(n), and the gate end of the target transistor Tn is electrically connected to the gate signal line B', thereby realizing the design of the optimized Emit GOA circuit, thereby effectively solving the floating phenomenon of the current row signal line EM(n) when the first transistor T1 and the second transistor T2 are both in the cut-off state, and significantly improving the display quality of the display panel. Specifically, when the signal input module 10 is driven by the low-level signal provided by the first timing control line CK1 to synchronously transmit the high-level signal provided by the previous row signal line EM(n-1) to the gate end of the first transistor T1 and the gate end of the second transistor T2 in the signal output module 20, the first transistor T1 and the second transistor T2 are always maintained in the off state under the action of the high-level signal. At this time, the target transistor Tn is driven by the low-level signal provided by the gate signal line B' to switch from the off state to the on state, thereby pulling down the stable low-level signal provided by the first level line L to the current row signal line EM(n), thereby avoiding the current row signal line EM(n) being susceptible to external interference due to the floating phenomenon and causing voltage fluctuations, ensuring the voltage stability of the current row signal line EM(n), and thus significantly improving the display quality of the display panel using the emission gate drive circuit.
[0071] Furthermore, based on the first embodiment of the emission gate driving circuit of the present application, a second embodiment of the driving method of the present application is proposed.
[0072] The driving method of the present application is applied to any of the above-mentioned emission gate driving circuits. The driving method of the present application is executed by a terminal device that drives and controls the emission gate driving circuit. The driving method of the present application includes the following implementation step S10.
[0073] Step S10: When the first transistor T1 and the second transistor T2 in the signal output module 20 maintain the off-state under the high-level signal output by the signal input module 10, the target transistor Tn in the enable signal output module 20 is switched from the off-state to the on-state under the drive of the low-level signal provided by the gate signal line B', so as to pull down the low-level signal provided by the first level line L to the current row signal line EM(n); wherein the high-level signal output by the signal input module 10 is set to be provided by the previous row signal line EM(n-1) connected to the signal input module 10 under the drive of the low-level signal provided by the first timing control line CK1.
[0074] In this embodiment, refer to Figure 4, after the signal control terminal of the signal input module 10 is connected to the low-level signal provided by the first timing control line CK1, the signal input module 10 is switched from the off state to the on state under the drive of the low-level signal, so as to synchronously transmit the high-level signal provided by the previous row signal line EM(n-1) to the gate end of the first transistor T1 and the gate end of the second transistor T2 in the signal output module 20 through the signal output end of the signal input module 10; after the gate end of the first transistor T1 and the gate end of the second transistor T2 receive the high-level signal provided by the previous row signal line EM(n-1) forwarded by the signal output end of the signal input module 10, the first transistor T1 and the second transistor T2 do not respond to the high-level signal, that is, at this time, the first transistor T1 and the second transistor T2 always maintain the off state, in order to avoid being electrically connected to the second path end of the first transistor T1 and the second The current signal line between the first channel end of the transistor T2 is suspended in the cut-off state of the first transistor T1 and the second transistor T2. Since the first channel end of the target transistor Tn is electrically connected to the first level line L, the second channel end of the target transistor Tn is electrically connected to the current row signal line EM(n), and the gate end of the target transistor Tn is electrically connected to the gate signal line B', at this time, the target transistor Tn is driven by the low-level signal provided by the gate signal line B' and switches from the cut-off state to the on state, thereby pulling down the stable low-level signal provided by the first level line L to the current row signal line EM(n), ensuring that the current row signal line EM(n) can continuously and stably provide a low-level voltage, avoiding the voltage fluctuation of the current row signal line EM(n) due to leakage and coupling effects between signals when in a suspended state, thereby significantly improving the display quality of the display panel.
[0075] Further, in some other feasible embodiments, the emission gate drive circuit is enabled to perform drive control in a preset first drive stage, a second drive stage, a third drive stage, a fourth drive stage, a fifth drive stage, a sixth drive stage and a seventh drive stage in sequence; wherein the first drive stage is set to the first timing control line CK1, the previous row signal line EM(n-1), the current row signal line EM(n) and the gate signal line B' all provide low-level signals, and the second timing control line CK2 provides a high-level signal; the second drive stage is set to the second timing control line CK2, the previous row signal line EM(n-1), the current row signal line EM(n) and the gate signal line B' all provide low-level signals, and the first timing control line CK1 provides a high-level signal; the third drive stage is set to the first timing control line CK1, the current row signal line EM(n) and the gate signal line B' all provide low-level signals, and the second timing control line CK2 and the previous row signal line EM(n-1) all provide high-level signals; The fourth driving stage is set to provide a low-level signal to the second timing control line CK2, and the first timing control line CK1, the previous row signal line EM(n-1), the current row signal line EM(n) and the gate signal line B' all provide high-level signals; the fifth driving stage is set to provide a low-level signal to the first timing control line CK1, and the second timing control line CK2, the previous row signal line EM(n-1), the current row signal line EM(n) and the gate signal line B' all provide high-level signals; the sixth driving stage is set to provide a low-level signal to the second timing control line CK2 and the previous row signal line EM(n-1), and the first timing control line CK1, the current row signal line EM(n) and the gate signal line B' all provide high-level signals; the seventh driving stage is set to provide a low-level signal to the first timing control line CK1, the previous row signal line EM(n-1) and the current row signal line EM(n), and the second timing control line CK2 and the gate signal line B' all provide high-level signals.
[0076] In this embodiment, refer to Figure 6 , the first driving stage is set to the first timing control line CK1, the previous row signal line EM(n-1), the current row signal line EM(n) and the gate signal line B'all provide low-level signals, and the second timing control line CK2 provides a high-level signal; at this time, refer to Figure 7 , Figure 7 This is a schematic diagram of the circuit conduction of the emission gate drive circuit in the first drive stage. Figure 7 The bold cross in the figure represents the cut-off state. Figure 7The symbol "L0" shown represents a low-level signal, and the symbol "H0" represents a high-level signal; at this time, when the emission gate drive circuit performs drive control in the first drive stage, the first transistor T1 and the target transistor Tn are both in the on state, and the second transistor T2 is in the off state. At this time, the low-level voltage output by the first level line L is provided from point A to the current row signal line EM(n) in two ways, wherein one of the two ways is a path from point A via the first transistor T1 to the current row signal line EM(n), and the other of the two ways is a path from point A via the second transistor T2 to the current row signal line EM(n), so as to ensure that there is always a certain low-level voltage on the current row signal line EM(n).
[0077] In another embodiment, referring to Figure 6 , the second driving stage is set to the second timing control line CK2, the previous row signal line EM(n-1), the current row signal line EM(n) and the gate signal line B'all provide low-level signals, and the first timing control line CK1 provides a high-level signal; at this time, refer to Figure 8 , Figure 8 This is a schematic diagram of the circuit conduction of the emission gate drive circuit in the first drive stage. Figure 8 The bold cross in the figure represents the cut-off state. Figure 8 The symbol "L0" shown represents a low-level signal, and the symbol "H0" represents a high-level signal; at this time, when the emission gate drive circuit performs drive control in the second drive stage, the first transistor T1 and the target transistor Tn are both in the on state, and the second transistor T2 is in the off state. At this time, the low-level voltage output by the first level line L is provided from point A to the current row signal line EM(n) in two ways, wherein one of the two ways is a path from point A via the first transistor T1 to the current row signal line EM(n), and the other of the two ways is a path from point A via the second transistor T2 to the current row signal line EM(n), so as to ensure that there is always a certain low-level voltage on the current row signal line EM(n).
[0078] In yet another embodiment, referring to Figure 6 , the third driving stage is set to the first timing control line CK1, the current row signal line EM(n) and the gate signal line B' all provide low-level signals, and the second timing control line CK2 and the previous row signal line EM(n-1) all provide high-level signals; at this time, refer to Fig. 9 , Fig. 9 It is a schematic diagram of the circuit conduction of the emission gate drive circuit in the third drive stage. Fig. 9 The bold cross in the figure represents the cut-off state. Fig. 9The symbol "L0" shown represents a low-level signal, and the symbol "H0" represents a high-level signal; at this time, when the emission gate drive circuit performs drive control in the third drive stage, the first transistor T1 and the second transistor T2 are both in the cut-off state, and the target transistor Tn is in the on state; at this time, the low-level voltage output by the first level line L is provided from point A through the target transistor Tn to the current row signal line EM(n) to ensure that there is always a certain low-level voltage on the current row signal line EM(n).
[0079] In another embodiment, referring to Figure 6 , the fourth driving stage is set to provide a low-level signal to the second timing control line CK2, and the first timing control line CK1, the previous row signal line EM(n-1), the current row signal line EM(n) and the gate signal line B'all provide high-level signals; at this time, refer to Fig.10 , Fig.10 It is a schematic diagram of the circuit conduction of the emission gate drive circuit in the third drive stage. Fig.10 The bold cross in the figure represents the cut-off state. Fig.10 The symbol "L0" shown represents a low-level signal, and the symbol "H0" represents a high-level signal; when the emission gate drive circuit performs drive control in the fourth drive stage, the first transistor T1 and the target transistor Tn are both in the off state, and the second transistor T2 is in the on state; at this time, the high-level voltage output by the second level line H is provided from point C to the current row signal line EM(n) through the second transistor T2 to ensure that there is always a certain high-level voltage on the current row signal line EM(n).
[0080] In yet another embodiment, referring to Figure 6 , the fifth driving stage is set to provide a low-level signal to the first timing control line CK1, and a high-level signal to the second timing control line CK2, the previous row signal line EM(n-1), the current row signal line EM(n) and the gate signal line B'; at this time, refer to Fig.11 , Fig.11 It is a schematic diagram of the circuit conduction of the emission gate drive circuit in the third drive stage. Fig.11 The bold cross in the figure represents the cut-off state. Fig.11 The symbol "L0" shown represents a low-level signal, and the symbol "H0" represents a high-level signal; when the emission gate drive circuit performs drive control in the fifth drive stage, the first transistor T1 and the target transistor Tn are both in the off state, and the second transistor T2 is in the on state; at this time, the high-level voltage output by the second level line H is provided from point C to the current row signal line EM(n) through the second transistor T2 to ensure that there is always a certain high-level voltage on the current row signal line EM(n).
[0081] In another embodiment, referring to Figure 6 , the sixth driving stage is set to the second timing control line CK2 and the previous row signal line EM(n-1) both provide low-level signals, the first timing control line CK1, the current row signal line EM(n) and the gate signal line B' all provide high-level signals; at this time, refer to Fig.12 , Fig.12 It is a schematic diagram of the circuit conduction of the emission gate drive circuit in the third drive stage. Fig.12 The bold cross in the figure represents the cut-off state. Fig.12 The symbol "L0" shown represents a low-level signal, and the symbol "H0" represents a high-level signal; when the emission gate drive circuit performs drive control in the sixth drive stage, the first transistor T1 and the target transistor Tn are both in the off state, and the second transistor T2 is in the on state; at this time, the high-level voltage output by the second level line H is provided from point C to the current row signal line EM(n) through the second transistor T2 to ensure that there is always a certain high-level voltage on the current row signal line EM(n).
[0082] In another embodiment, the seventh driving stage is set to the first timing control line CK1, the previous row signal line EM(n-1) and the current row signal line EM(n) all provide low-level signals, and the second timing control line CK2 and the gate signal line B' all provide high-level signals. Fig.13 , Fig.13 It is a schematic diagram of the circuit conduction of the emission gate drive circuit in the third drive stage. Fig.13 The bold cross in the figure represents the cut-off state. Fig.13 The symbol "L0" shown represents a low-level signal, and the symbol "H0" represents a high-level signal; when the emission gate drive circuit performs drive control in the seventh drive stage, the second transistor T2 and the target transistor Tn are both in the off state, and the first transistor T1 is in the on state; at this time, the high-level voltage output by the first level line L is provided from point A through the first transistor T1 to the current row signal line EM(n), so as to ensure that there is always a certain low-level voltage on the current row signal line EM(n).
[0083] For example, the transmitting gate driving circuit provided in the present application can also be as follows Fig.14 As shown, refer to Fig.14 If the gate terminal of the target transistor Tn is directly connected to the current row signal line EM(n), it can also avoid the voltage fluctuation caused by the current row signal line EM(n) being susceptible to external interference due to the floating phenomenon, thereby ensuring the voltage stability of the current row signal line EM(n), thereby significantly improving the display quality of the display panel using the emission gate drive circuit.
[0084] In addition, the present application also provides a display device. Fig.15 , Fig.15 The structure diagram of the display device involved in the embodiment of the present application is shown in FIG. The display device in the embodiment of the present application may be a device for locally running the driving method.
[0085] like Fig.15 As shown, the display device of the embodiment of the present application may include: the above-mentioned transmitting gate drive circuit; or, a processor 1001, such as a CPU, a communication bus 1002, a user interface 1003, a network interface 1004, and a memory 1005. Among them, the communication bus 1002 is used to realize the connection and communication between these components. The user interface 1003 may include a display screen (Display), an input unit such as a keyboard (Keyboard), and the optional user interface 1003 may also include a standard wired interface and a wireless interface. The network interface 1004 may optionally include a standard wired interface and a wireless interface (such as a Wi-Fi interface).
[0086] The memory 1005 is arranged on the display device body, and a program is stored in the memory 1005, and the program implements the corresponding operation when it is executed by the processor 1001. The memory 1005 is also used to store parameters for use by the display device. The memory 1005 can be a high-speed RAM memory, or a stable memory (non-volatile memory), such as a disk memory. The memory 1005 can also be a storage device independent of the aforementioned processor 1001.
[0087] Those skilled in the art will understand that Fig.15 The display device structure shown in the figure does not constitute a limitation on the display device, and may include more or fewer components than shown in the figure, or combine certain components, or arrange the components differently.
[0088] like Fig.15 As shown, the memory 1005 as a storage medium may include an operating system, a network communication module, a user interface module, and a driver of a display device.
[0089] exist Fig.15 In the display device shown, the processor 1001 can be used to call a driver program of the display device stored in the memory 1005 and execute the steps of the driving method as described above.
[0090] It should be noted that, in this article, the terms "include", "comprises" or any other variations thereof are intended to cover non-exclusive inclusion, so that a process, method, article or system including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or system. In the absence of further restrictions, an element defined by the sentence "comprises a ..." does not exclude the existence of other identical elements in the process, method, article or system including the element.
[0091] The serial numbers of the above-mentioned embodiments of the present application are for description only and do not represent the advantages or disadvantages of the embodiments.
[0092] Through the description of the above implementation methods, those skilled in the art can clearly understand that the above-mentioned embodiment methods can be implemented by means of software plus a necessary general hardware platform, and of course by hardware, but in many cases the former is a better implementation method. Based on such an understanding, the technical solution of the present application, or the part that contributes to the prior art, can be embodied in the form of a software product, which is stored in a storage medium such as ROM / RAM, a magnetic disk, or an optical disk as described above, and includes a number of instructions for enabling a display device (which can be a mobile phone, a computer, a server, or a network device, etc.) to execute the methods described in each embodiment of the present application.
[0093] The above are only preferred embodiments of the present application, and are not intended to limit the patent scope of the present application. Any equivalent structure or equivalent process transformation made using the contents of the present application specification and drawings, or directly or indirectly applied in other related technical fields, are also included in the patent protection scope of the present application.
Claims
1. A transmission gate drive circuit, characterized in that: The transmitting gate driving circuit comprises: A signal input module, wherein a signal access end of the signal input module is electrically connected to a previous row of signal lines, a signal control end of the signal input module is electrically connected to a first timing control line, and the signal input module is configured to access a high level signal provided by the previous row of signal lines under the drive of a low level signal provided by the first timing control line; A signal output module, the signal output module includes a first transistor, a second transistor and a target transistor, the signal output end of the signal input module is electrically connected to the gate end of the first transistor and the gate end of the second transistor respectively, the first channel end of the first transistor is connected to a first level line, the second channel end of the first transistor is connected to a connection node of the first channel end of the second transistor and is connected to a current row signal line, the second channel end of the second transistor is connected to a second level line, the first channel end of the target transistor is electrically connected to the first level line, the second channel end of the target transistor is electrically connected to the current row signal line, and the gate end of the target transistor is electrically connected to the gate signal line.
2. The emission gate driving circuit according to claim 1, characterized in that: The signal output module includes a third transistor and a first capacitor; The first end of the first capacitor is electrically connected to the gate end of the first transistor and the signal output end of the signal input module respectively, and the second end of the first capacitor is electrically connected to the second timing control line; The gate terminal of the third transistor is electrically connected to the signal output terminal of the signal input module, the first channel terminal of the third transistor is connected to the second level line, and the second channel terminal of the third transistor is electrically connected to the gate terminal of the second transistor.
3. The emission gate driving circuit according to claim 1, characterized in that: The transmitting gate driving circuit includes a first driving module and a second driving module; The voltage input terminal of the first driving module is electrically connected to the signal output terminal of the signal input module, the driving control terminal of the first driving module is electrically connected to the connection intersection terminal of the second driving module, the first capacitor terminal of the first driving module is electrically connected to the gate terminal of the second transistor, and the second capacitor terminal of the first driving module is electrically connected to the second path terminal of the second transistor; The driving control end of the second driving module is electrically connected to the signal output end of the signal input module.
4. The emission gate driving circuit according to claim 3, characterized in that: The first driving module includes a fourth transistor, a fifth transistor, a sixth transistor, a seventh transistor, a second capacitor and a third capacitor; The gate terminal of the fourth transistor, the first channel terminal of the fifth transistor and the gate terminal of the sixth transistor are electrically connected to the second timing control line respectively; The first channel end of the sixth transistor constitutes the voltage input end of the first driving module and is electrically connected to the signal output end of the signal input module, the second channel end of the sixth transistor is electrically connected to the first channel end of the seventh transistor, the second channel end of the seventh transistor is electrically connected to the second level line, and the gate end of the seventh transistor is electrically connected to the gate end of the fifth transistor and the first end of the third capacitor respectively; The first end of the third capacitor constitutes the driving control end of the first driving module and is electrically connected to the connection intersection end of the second driving module, and the second end of the third capacitor is electrically connected to the second path end of the fifth transistor and the first path end of the fourth transistor respectively; The first end of the second capacitor constitutes the first capacitor end of the first driving module and is electrically connected to the second path end of the fourth transistor and the gate end of the second transistor respectively; The second end of the second capacitor constitutes the second capacitor end of the first driving module and is electrically connected to the second path end of the second transistor.
5. The emission gate driving circuit according to claim 3, characterized in that: The second driving module includes an eighth transistor and a ninth transistor; The gate terminal of the eighth transistor constitutes the driving control terminal of the second driving module and is electrically connected to the signal output terminal of the signal input module; The first channel end of the eighth transistor is electrically connected to the gate end of the ninth transistor, the first channel end of the ninth transistor is connected to the first level line, and the second channel end of the eighth transistor is electrically connected to the second channel end of the ninth transistor; A connection node where the second channel end of the eighth transistor is connected to the second channel end of the ninth transistor constitutes a connection intersection end of the second driving module, and is electrically connected to the driving control end of the first driving module.
6. The emission gate driving circuit according to claim 1, characterized in that: The signal input module includes a tenth transistor; The first path end of the tenth transistor constitutes the signal access end of the signal input module and is electrically connected to the previous row of signal lines; The gate terminal of the tenth transistor constitutes the signal control terminal of the signal input module and is electrically connected to the first timing control line; The second channel end of the tenth transistor constitutes a signal output end of the signal input module, and is electrically connected to the gate end of the first transistor and the gate end of the second transistor respectively.
7. A driving method for an emission gate driving circuit, characterized in that: The driving method is applied to the emission gate driving circuit according to any one of claims 1 to 6, and the driving method comprises: When the first transistor and the second transistor in the signal output module maintain the off state under the high level signal output by the signal input module, the target transistor in the enable signal output module is switched from the off state to the on state under the driving of the low level signal provided by the gate signal line, so as to pull down the low level signal provided by the first level line to the current row signal line; wherein, The high level signal output by the signal input module is set to be provided by the previous row signal line to which the signal input module is connected under the drive of the low level signal provided by the first timing control line.
8. The driving method according to claim 7, characterized in that: The driving method comprises: The transmitting gate driving circuit is enabled to perform driving control in a preset first driving stage, a second driving stage, a third driving stage, a fourth driving stage, a fifth driving stage, a sixth driving stage and a seventh driving stage in sequence; wherein, The first driving stage is set such that the first timing control line, the previous row signal line, the current row signal line and the gate signal line all provide low level signals, and the second timing control line provides a high level signal; The second driving stage is set such that the second timing control line, the previous row signal line, the current row signal line and the gate signal line all provide low level signals, and the first timing control line provides a high level signal; The third driving stage is set such that the first timing control line, the current row signal line and the gate signal line all provide low level signals, and the second timing control line and the previous row signal line all provide high level signals; The fourth driving stage is configured such that the second timing control line provides a low level signal, and the first timing control line, the previous row signal line, the current row signal line and the gate signal line all provide high level signals; The fifth driving stage is configured such that the first timing control line provides a low level signal, and the second timing control line, the previous row signal line, the current row signal line and the gate signal line all provide high level signals; The sixth driving stage is set such that the second timing control line and the previous row signal line both provide low level signals, and the first timing control line, the current row signal line and the gate signal line all provide high level signals; The seventh driving stage is set such that the first timing control line, the previous row signal line and the current row signal line all provide low level signals, and the second timing control line and the gate signal line all provide high level signals.
9. A display panel, characterized in that: The display panel comprises a color filter substrate, a liquid crystal layer and an array substrate, wherein the liquid crystal layer is arranged between the array substrate and the color filter substrate, and the array substrate comprises the emission gate driving circuit according to any one of claims 1 to 6.
10. A display device, characterized in that: The display device comprises the display panel according to claim 9; or, The display device includes a processor, a memory, and a driver program stored in the memory and executable by the processor, wherein the driver program, when executed by the processor, implements the steps of the driving method according to any one of claims 7 to 8.
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