Light-emitting unit driving circuit, pixel circuit and display device
By introducing a flip circuit into the light emitting unit driving circuit, the voltage and current direction of the driving tube are alternately controlled, and the carrier accumulation problem caused by one-way opening of the driving tube is solved, thereby improving the display effect and device performance.
Patent Information
- Application Number
- CN202510336786.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-21
- Publication Date
- 2025-08-19
- Estimated Expiration
- 2045-03-21
AI Technical Summary
In the traditional light emitting unit driving circuit, the long-term unidirectional opening of the drive tube causes abnormal accumulation of carriers, causing threshold voltage offset, affecting the light emitting effect and the afterimage problem of the display device.
The combined design of light emitting driving unit, switching circuit, data switch and flip circuit is adopted. The output level polarity is switched in each frame through the flip circuit, and the voltage and current direction of the driving tube are alternately controlled to avoid abnormal accumulation of carriers.
The working performance of the drive tube is improved, the display effect of the pixel unit and the display device is improved, and the afterimage problem is prevented.
Smart Images

Figure CN119851615B_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the field of display technology, and in particular relates to a light-emitting unit driving circuit, a pixel circuit and a display device. Background Art
[0002] Light-emitting units such as active-matrix organic light-emitting diodes (AMOLED), active-matrix mini light-emitting diodes (AM MiniLED), and micron light-emitting diodes (Micro LED) have the characteristics of fast response, wide color gamut, large viewing angle, and high brightness, and have gradually become the mainstream display technology for displays such as mobile phones, televisions, and computers.
[0003] Each light-emitting unit constitutes a pixel unit or a light-emitting point. Each light-emitting unit can emit light by itself when powered, and can be addressed and driven to light up individually.
[0004] Usually, the light-emitting unit is driven by a driver tube. When the driver tube is working, a level signal is applied to its control end and an external electric field is formed in the channel area, as well as a conduction band connected to the driver tube. However, long-term unidirectional opening will cause abnormal accumulation of carriers in the channel, causing the threshold voltage to be positive or negative, thereby causing the driver tube to degrade and affect the light-emitting effect of the light-emitting unit. When the light-emitting unit is used in a display device, it will also cause the display device to have a ghosting problem, affecting the display effect. Summary of the Invention
[0005] The object of the present invention is to provide a light-emitting unit driving circuit, aiming to solve the problem that a driving tube in a traditional light-emitting unit driving circuit is unidirectionally turned on for a long time, resulting in performance degradation.
[0006] A first aspect of an embodiment of the present invention provides a light-emitting unit driving circuit, including:
[0007] A light-emitting driving unit, comprising a driving tube and a light-emitting switch connected in series, wherein the driving tube is used to convert an input data signal into a current signal during a data writing period, and the light-emitting switch is used to be triggered by the light-emitting signal to conduct and output the current signal during a light-emitting period;
[0008] A switch circuit includes a first switch group and a second switch group connected in parallel between a positive power supply terminal and a light-emitting unit, the first switch group including a first switch and a second switch connected in series, the second switch group including a third switch and a fourth switch connected in series, the connection node between the first switch and the second switch being connected to the first terminal of the light-emitting driving unit, and the connection node between the third switch and the fourth switch being connected to the second terminal of the light-emitting driving unit; the first switch and the fourth switch being triggered to turn on by a first level signal and to turn off by a second level signal; the second switch and the third switch being triggered to turn off by the first level signal and to turn on by the second level signal, the first level signal and the second level signal having opposite polarities;
[0009] A data switch connected to the driving transistor and configured to be triggered by the first scanning signal to conduct during the data writing period to transmit the data signal;
[0010] A flip circuit is connected to each switch of the switching circuit, and the flip circuit is used to output the first level signal or the second level signal, and switch the level polarity of the output signal each time a second scanning signal and a third scanning signal are received. The second scanning signal, the first scanning signal and the third scanning signal are output in sequence with a unit phase difference in each frame scanning cycle.
[0011] Optionally, the optical emission switch includes a first transistor and a second transistor;
[0012] The first end of the first transistor constitutes the first end of the light-emitting driving unit, the second end of the first transistor is connected to the first end of the driving tube, the first end of the second transistor is connected to the second end of the driving tube, and the second end of the second transistor constitutes the second end of the light-emitting driving unit.
[0013] Optionally, the first switch includes a third transistor, a first terminal of the third transistor is connected to the positive power supply terminal, a second terminal of the third transistor is connected to the first terminal of the first transistor, and a control terminal of the third transistor is connected to the output terminal of the flip circuit;
[0014] The second switch includes a fourth transistor, a first end of the fourth transistor is connected to the first end of the first transistor, a second end of the fourth transistor is connected to the light emitting unit, and a control end of the fourth transistor is connected to the output end of the flip circuit;
[0015] The third switch includes a fifth transistor, a first terminal of the fifth transistor is connected to the positive power supply terminal, a second terminal of the fifth transistor is connected to the second terminal of the second transistor, and a control terminal of the fifth transistor is connected to the output terminal of the flip circuit;
[0016] The fourth switch includes a sixth transistor, a first end of the sixth transistor is connected to the second end of the second transistor, a second end of the sixth transistor is connected to the light emitting unit, and a control end of the sixth transistor is connected to the output end of the flip circuit.
[0017] Optionally, the light emitting unit driving circuit further includes:
[0018] The storage capacitor is connected between the positive power supply terminal and the control terminal of the driving tube.
[0019] Optionally, the data switch includes a seventh transistor and an eighth transistor;
[0020] The first end of the seventh transistor is connected to the control end of the driving tube, the second end of the seventh transistor is connected to the second end of the driving tube, the first end of the eighth transistor is used to input the data signal, the second end of the eighth transistor is connected to the first end of the driving tube, and the control end of the seventh transistor and the control end of the eighth transistor are used to input the first scanning signal.
[0021] Optionally, the light-emitting unit driving circuit also includes a first reset transistor, the first end of the first reset transistor is used to input a first reset signal, the second end of the first reset transistor is connected to the control end of the driving tube, and the control end of the first reset transistor is used to input the second scanning signal during the reset period.
[0022] Optionally, the light-emitting unit driving circuit also includes a second reset transistor, the first end of the second reset transistor is used to input a second reset signal, the second end of the second reset transistor is connected to the light-emitting unit, and the control end of the second reset transistor is used to input the first scanning signal during the data writing period.
[0023] Optionally, the flip circuit includes a first resistor, a second resistor, a third resistor, a ninth transistor, a tenth transistor, an eleventh transistor, a twelfth transistor, a thirteenth transistor, a fourteenth transistor, a fifteenth transistor, a sixteenth transistor, a seventeenth transistor, a first capacitor, a second capacitor, a third capacitor, a fourth capacitor, a first diode, and a second diode;
[0024] The first end of the first resistor and the first end of the second resistor are connected in common and are used to input the first row start signal during the reset period. The second end of the first resistor, the cathode of the first diode and the first end of the ninth transistor are connected. The control end of the ninth transistor is used to input the second scan signal. The second end of the second resistor, the anode of the first diode, the anode of the second diode and the first end of the tenth transistor are connected. The cathode of the second diode, the first end of the first capacitor, the first end of the third resistor and the first end of the eleventh transistor are connected. The second end of the ninth transistor, the second end of the first capacitor and the second end of the third resistor are grounded. The second end of the tenth transistor, the control end of the twelfth transistor and the control end of the thirteenth transistor are connected. The first end of the twelfth transistor is used to input the second row start signal. The first end of the thirteenth transistor is used to input the row close signal. The second end of the twelfth transistor, the The second end of the thirteenth transistor, the first end of the fourteenth transistor, the first end of the fifteenth transistor and the first end of the third capacitor are connected, the control end of the tenth transistor, the control end of the eleventh transistor, the control end of the fourteenth transistor and the control end of the fifteenth transistor are connected and used to input the third scanning signal, the second end of the eleventh transistor, the second end of the fourteenth transistor and the first end of the second capacitor are connected, the second end of the fifteenth transistor, the control end of the sixteenth transistor and the control end of the seventeenth transistor are connected, the first end of the sixteenth transistor is used to input the row shutdown signal, the first end of the seventeenth transistor is used to input the second row start signal, the second end of the sixteenth transistor, the second end of the seventeenth transistor and the first end of the fourth capacitor are connected together to form the output end of the flip circuit, the second end of the second capacitor, the second end of the third capacitor and the second end of the fourth capacitor are grounded.
[0025] A second aspect of the embodiments of the present invention provides a pixel circuit, including a light-emitting unit and the light-emitting unit driving circuit as described above, wherein the light-emitting unit driving circuit is connected to the light-emitting unit.
[0026] A third aspect of the embodiments of the present invention provides a display device, including a driving circuit and the pixel circuit as described above, wherein the driving circuit is connected to the pixel circuit.
[0027] Compared with the prior art, the embodiments of the present invention have the following beneficial effects: the above-mentioned light-emitting unit driving circuit includes a light-emitting driving unit, a switching circuit, a data switch and a flip circuit, the light-emitting driving unit includes a driving tube and a light-emitting switch connected in series, the switching circuit includes a first switch to a fourth switch, the first switch, the light-emitting driving unit and the fourth switch constitute a first output circuit, the second switch, the light-emitting driving unit and the third switch constitute a second output circuit, the flip circuit switches the output level polarity after receiving the second scanning signal and the third scanning signal once in each frame, and controls the first output circuit and the second output circuit to be alternately turned on, thereby switching the voltage direction and current direction of the driving tube, avoiding abnormal accumulation of carriers caused by polarization of the driving tube, improving the working performance of the driving tube and ensuring the display effect of the pixel unit and the display device. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] Figure 1 A schematic structural diagram of a light-emitting unit driving circuit provided in Embodiment 1 of the present invention;
[0029] Figure 2 A signal timing diagram of the light-emitting unit driving circuit provided in the first and second embodiments of the present invention;
[0030] Figure 3 A circuit diagram of a light-emitting unit driving circuit provided in a second embodiment of the present invention;
[0031] Figure 4 A circuit diagram of a flip circuit provided in Embodiment 3 of the present invention;
[0032] Figure 5 A signal timing diagram of a flip circuit provided in the third embodiment of the present invention;
[0033] Figure 6 A schematic structural diagram of a pixel circuit provided in a fourth embodiment of the present invention;
[0034] Figure 7 This is a structural diagram of a display device provided in Example 5 of the present invention.
[0035] Among them, the reference numerals in the figures are:
[0036] 101, pixel circuit; 102, drive circuit; 10, light-emitting unit drive circuit; 20, light-emitting unit; 110, light-emitting drive unit; 120, switch circuit; 130, data switch; 140, flip circuit; 111, light-emitting switch; 121, first switch; 122, second switch; 123, third switch; 124, fourth switch;
[0037] SD1, driver tube; 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; T11, eleventh transistor; T12, twelfth transistor; T13, thirteenth transistor; T14, fourteenth transistor; T15, fifteenth transistor; T16, sixteenth transistor; T17, seventeenth transistor; Trst1, first reset transistor; Trst2, second reset transistor; Cst, storage capacitor; OLED, light-emitting diode; C1, first capacitor; C2, second capacitor; C3, third capacitor; C4, fourth capacitor; R1, first resistor; R2, second resistor; R3, third resistor; D1, first diode; D2, second diode;
[0038] VDD, positive voltage terminal; Vdata, data signal; Vint, first reset signal; VI, second reset signal; EM, light emission signal; Scan1, first scan signal; Scan2, second scan signal; Scan3, third scan signal; SW, output signal of flip circuit; VGH1, first row start signal; VGH2, second row start signal; VGL, row close signal;
[0039] Q, first node; A, second node; H1, reset period; H2, data writing period; H3, light emitting period. DETAILED DESCRIPTION
[0040] In order to make the technical problems, technical solutions and beneficial effects to be solved by the present invention more clearly understood, the present invention is further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.
[0041] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of the technical features being referred to. Thus, a feature identified as "first" or "second" may explicitly or implicitly include one or more of the features. In the description of the present invention, "plurality" means two or more, unless otherwise specifically defined.
[0042] Example 1
[0043] The first aspect of the embodiment of the present invention provides a light emitting unit driving circuit 10, such as Figure 6 and Figure 7As shown, the light-emitting unit driving circuit 10 and the light-emitting unit 20 form a pixel circuit 101. The pixel circuits 101 are arranged in an array on an array substrate. A plurality of data lines and scan lines are also provided on the array substrate. Each light-emitting unit driving circuit 10 is connected to a corresponding data line and scan line. The data line and the scan line are connected to the driving circuit 102. The driving circuit 102 is used to output scanning signals row by row through multiple rows of scanning lines and output data signals Data to each light-emitting unit driving circuit 10 in the pixel circuit 101 through multiple columns of data lines when driving each row. The light-emitting unit driving circuit 10 is triggered to work according to the received scanning signal and data signal Data and generates a current signal to the light-emitting unit 20. Figure 1 As shown, the light emitting unit 20 is a light emitting diode OLED.
[0044] The light emitting unit driving circuit 10 includes:
[0045] The light-emitting driving unit 110 includes a driving transistor SD1 and a light-emitting switch 111 connected in series. The driving transistor SD1 is used to convert the input data signal Vdata into a current signal during the data writing period H2. The light-emitting switch 111 is used to be triggered by the light-emitting signal to conduct and output the current signal during the light-emitting period H3.
[0046] The switch circuit 120 includes a first switch group and a second switch group connected in parallel between the positive power supply terminal VDD and the light-emitting unit 20. The first switch group includes a first switch 121 and a second switch 122 connected in series, and the second switch group includes a third switch 123 and a fourth switch 124 connected in series. The connection node between the first switch 121 and the second switch 122 is connected to the first terminal of the light-emitting driver unit 110, and the connection node between the third switch 123 and the fourth switch 124 is connected to the second terminal of the light-emitting driver unit 110. The first switch 121 and the fourth switch 124 are triggered to turn on by a first-level signal and to turn off by a second-level signal. The second switch 122 and the third switch 123 are triggered to turn off by the first-level signal and to turn on by the second-level signal. The first-level signal and the second-level signal have opposite polarities.
[0047] The data switch 130 is connected to the driving transistor SD1 and is configured to be turned on by the first scanning signal Scan1 during the data writing period H2 to transmit the data signal Vdata;
[0048] The flip circuit 140 is connected to each switch of the switching circuit 120. The flip circuit 140 is used to output a first-level signal or a second-level signal, and switch the level polarity of the output signal SW each time it receives a second scanning signal Scan2 and a third scanning signal Scan3. The second scanning signal Scan2, the first scanning signal Scan1 and the third scanning signal Scan3 are output sequentially with a unit phase difference in each frame scanning period.
[0049] In this embodiment, for each pixel circuit, when it is selected to work in each frame, Figure 2 As shown, the light-emitting unit driving circuit 10 can operate in the reset period H1, the data writing period H2 and the light-emitting period H3 in sequence, wherein the second scan signal Scan2, the first scan signal Scan1 and the third scan signal Scan3 are input in the reset period H1, the data writing period H2 and the light-emitting period H3 respectively, and each scan signal differs by one unit phase in sequence. In the reset period H1 of the i-th frame, after the light-emitting unit driving circuit 10 receives the second scan signal Scan2, it triggers a reset and resets and clears the charge of the corresponding internal nodes and circuits to avoid the residual charge of the circuit in the previous frame affecting the display effect of the current frame.
[0050] During the data writing period H2 of the i-th frame, the data signal Vdata is written to the data switch 130. At the same time, the data switch 130 of the light-emitting unit driving circuit 10 of the current row receives the first scan signal Scan1 corresponding to the input of the current row. The first scan signal Scan1 triggers the data switch 130 to turn on and write into the driving tube SD1. The driving tube SD1 generates a current signal based on the data signal Vdata.
[0051] During the light-emitting period H3 of the i-th frame, the flip circuit 140 receives one second scan signal Scan2 and one third scan signal Scan3. The flip circuit 140 may output a first-level signal or a second-level signal. During the light-emitting period H3 of the next frame, the flip circuit 140 switches the polarity of the level signal upon receiving another second scan signal Scan2 and another third scan signal Scan3. Assuming that during the light-emitting period H3 of the current frame, the output signal SW of the flip circuit 140 is a first-level signal, the first switch 121 and the fourth switch 124 are triggered to turn on, and the second switch 122 and the third switch 123 are triggered to turn off. Simultaneously, the light-emitting switch 111 receives the light-emitting signal and turns on. The positive power supply terminal VDD, the first switch 121, the driver transistor SD1, the light-emitting switch 111, and the fourth switch 124 constitute a first output circuit in the first direction. The current signal is output to the light-emitting unit 20 via the first switch 121, the driver transistor SD1, the light-emitting switch 111, and the fourth switch 124. The light-emitting unit 20 generates a light signal of corresponding magnitude based on the current signal.
[0052] During the reset period H1 of the (i+1)th frame, the light emitting unit driving circuit 10 triggers a reset after receiving the second scan signal Scan2 in the i-th frame and resets and clears the charge of the corresponding internal nodes and circuits to prevent the residual charge of the circuit in the previous frame from affecting the display effect of the current frame.
[0053] During the data writing period H2 of the i+1th frame, the data signal Vdata of the i+1th frame is refreshed and written into the data switch 130. At the same time, the data switch 130 of the light-emitting unit driving circuit 10 of the current row receives the first scan signal Scan1 corresponding to the input of the current row. The first scan signal Scan1 triggers the data switch 130 to turn on and write into the driving tube SD1. The driving tube SD1 generates a current signal based on the data signal Vdata.
[0054] In the light-emitting period H3 of the i+1th frame, the flip circuit 140 receives another second scan signal Scan2 and another third scan signal Scan3, and the flip circuit 140 switches to output a second level signal. At this time, the second switch 122 and the third switch 123 are triggered to turn on, and the first switch 121 and the fourth switch 124 are triggered to turn off. At the same time, the light emission switch 111 receives the light emission signal, and the light emission switch 111 is turned on. The positive power supply terminal VDD, the third switch 123, the light emission switch 111, the driving tube SD1 and the second switch 122 constitute a second output circuit in the second direction. The second direction is opposite to the first direction. The current signal is output to the light-emitting unit 20 through the third switch 123, the light emission switch 111, the driving tube SD1 and the second switch 122. The light-emitting unit 20 generates a light signal of corresponding magnitude based on the current signal.
[0055] By analogy, in the light-emitting period H3 of the (i+2) frame, the flip circuit 140 will switch to output the first level signal again, and the first output circuit of the first direction will be generated in the light-emitting unit driving circuit 10, and the voltage direction and current direction applied to both ends of the driving tube SD1 will be switched again. In the light-emitting period H3 of the (i+3) frame, the flip circuit 140 will switch to output the second level signal again, and the second output circuit of the second direction will be generated in the light-emitting unit driving circuit 10, and the voltage direction and current direction applied to both ends of the driving tube SD1 will be switched again. During each frame scan, the light-emitting unit driving circuit 10 will generate a voltage and current opposite to that of the previous frame and apply them to the driving tube SD1, thereby avoiding polarization and abnormal accumulation of carriers caused by the driving tube SD1 receiving a voltage and current in a single direction, thereby improving the working performance of the driving tube SD1 and ensuring the display effect of the pixel unit and the display device.
[0056] The first level signal may be a high level signal, and the second level signal may be a low level signal, or the first level signal may be a low level signal, and the second level signal may be a high level signal, which may be selected according to the types of switches in the switch circuit 120 .
[0057] The first scan signal Scan1, the second scan signal Scan2 and the third scan signal Scan3 can be effective in a high level state or a low level state, wherein effective means that the corresponding switch can be controlled to be turned on in a high level state or a low level state, and the corresponding switch can be controlled to be turned off in another level state, for example Figure 2 As shown, each scan signal is active in a low-level state. During the reset period H1, the second scan signal Scan2 is in a low-level state, while the other two scan signals are in a high-level state. The second scan signal Scan2 can control the corresponding switch in the light-emitting unit driving circuit 10 to turn on and reset the corresponding node in the light-emitting unit driving circuit 10. During the data writing period H2, the first scan signal Scan1 is in a low-level state, and the second scan signal Scan2 can control the data switch 130 to turn on and write the data signal Vdata to the driver transistor SD1. During the light-emitting period H3, the third scan signal Scan3 is in a low-level state. The third scan signal Scan3 and the second scan signal Scan2 can control the flip circuit 140 to switch the level state of its own output signal SW.
[0058] Corresponding to the level effective state of each scanning signal, each switch can adopt a corresponding type of transistor, switching device, etc.
[0059] Furthermore, in order to ensure the stability of the data signal Vdata during the data writing period H2, in an optional embodiment, as shown in FIG. Figure 3 As shown, the light-emitting unit driving circuit 10 further includes a storage capacitor Cst, which is connected between the positive power supply terminal VDD and the control terminal of the driving tube SD1. During the data writing period H2, the data switch 130 is turned on and the data signal Vdata is written into the driving tube SD1. At the same time, the data signal Vdata charges the storage capacitor Cst, and the storage capacitor Cst maintains the voltage of the data signal Vdata.
[0060] And in order to achieve charge reset of the light emitting unit driving circuit 10, in an optional embodiment, as Figure 3 As shown, the light-emitting unit driving circuit 10 also includes a first reset transistor Trst1, a first end of the first reset transistor Trst1 is used to input a first reset signal Vint, a second end of the first reset transistor Trst1 is connected to the control end of the driving tube SD1, and the control end of the first reset transistor Trst1 is used to input a second scan signal Scan2 during the reset period H1.
[0061] The light-emitting unit driving circuit 10 also includes a second reset transistor Trst2, a first end of the second reset transistor Trst2 is used to input the second reset signal VI, a second end of the second reset transistor Trst2 is connected to the light-emitting unit 20, and a control end of the second reset transistor Trst2 is used to input the first scan signal Scan1 during the data writing period H2.
[0062] In this embodiment, the first reset transistor Trst1 receives the second scan signal Scan2 during the reset period H1. The second scan signal Scan2 triggers the first reset transistor Trst1 to turn on. The reset signal is written to the control end of the driver tube SD1, and the control end of the driver tube SD1 is initialized and reset. At the same time, the storage capacitor Cst is charged to ensure that the driver tube SD1 is turned on and completes sampling in the subsequent data writing phase.
[0063] The second reset transistor Trst2 receives the first scan signal Scan1 during the data writing period H2, and the first scan signal Scan1 triggers the second reset transistor Trst2 to turn on. The second reset signal V1 is written into the light emitting unit 20, and the light emitting unit 20 is reset.
[0064] Example 2
[0065] like Figure 3 As shown, in an optional embodiment, the optical emission switch 111 includes a first transistor T1 and a second transistor T2;
[0066] The first end of the first transistor T1 constitutes the first end of the light-emitting driving unit 110, the second end of the first transistor T1 is connected to the first end of the driving transistor SD1, the first end of the second transistor T2 is connected to the second end of the driving transistor SD1, and the second end of the second transistor T2 constitutes the second end of the light-emitting driving unit 110.
[0067] The first switch 121 includes a third transistor T3, a first terminal of the third transistor T3 is connected to the positive power supply terminal VDD, a second terminal of the third transistor T3 is connected to the first terminal of the first transistor T1, and a control terminal of the third transistor T3 is connected to the output terminal of the flip circuit 140;
[0068] The second switch 122 includes a fourth transistor T4, a first end of the fourth transistor T4 is connected to the first end of the first transistor T1, a second end of the fourth transistor T4 is connected to the light emitting unit 20, and a control end of the fourth transistor T4 is connected to the output end of the flip circuit 140;
[0069] The third switch 123 includes a fifth transistor T5, a first terminal of the fifth transistor T5 is connected to the positive power supply terminal VDD, a second terminal of the fifth transistor T5 is connected to the second terminal of the second transistor T2, and a control terminal of the fifth transistor T5 is connected to the output terminal of the flip circuit 140;
[0070] The fourth switch 124 includes a sixth transistor T6 , a first end of which is connected to the second end of the second transistor T2 , a second end of which is connected to the light emitting unit 20 , and a control end of which is connected to the output end of the flip circuit 140 .
[0071] The data switch 130 includes a seventh transistor T7 and an eighth transistor T8;
[0072] A first end of the seventh transistor T7 is connected to the control end of the driving transistor SD1, a second end of the seventh transistor T7 is connected to the second end of the driving transistor SD1, a first end of the eighth transistor T8 is used to input the data signal Vdata, a second end of the eighth transistor T8 is connected to the first end of the driving transistor SD1, and the control end of the seventh transistor T7 and the control end of the eighth transistor T8 are used to input the first scan signal Scan1.
[0073] In this embodiment, the first scan signal Scan1, the second scan signal Scan2, the third scan signal Scan3 and the light emission signal EM can be active at a low level, and correspondingly, the third transistor T3 and the sixth transistor T6 can be N-channel transistors, and the remaining transistors can be P-channel thin film transistors. Alternatively, the first scan signal Scan1, the second scan signal Scan2, the third scan signal Scan3 and the light emission signal EM can be active at a high level, and correspondingly, the third transistor T3 and the sixth transistor T6 can be P-channel transistors, and the remaining transistors can be N-channel thin film transistors.
[0074] like Figure 2 and Figure 3 As shown, taking the first scanning signal Scan1, the second scanning signal Scan2, the third scanning signal Scan3 and the light emission signal EM as being active at a low level as an example, in the reset period H1 of the i-th frame, the second scanning signal Scan2 triggers the first reset transistor Trst1 to turn on, the reset signal is written into the driving tube SD1, and the charge of the driving tube SD1 is reset and cleared to zero, thereby preventing the residual charge of the circuit in the previous frame from affecting the display effect of the current frame.
[0075] In the data writing period H2 of the i-th frame, the data signal Vdata is written to the data switch 130. At the same time, the data switch 130 of the light-emitting unit driving circuit 10 of the current row receives the first scan signal Scan1 corresponding to the input of the current row, and the seventh transistor T7 and the eighth transistor T8 are triggered to turn on. The data signal Vdata is stored in the storage capacitor Cst through the driving tube SD1, and the sampling of the threshold voltage of the driving tube SD1 is completed. The driving tube SD1 generates a current signal based on the data signal Vdata. At the same time, the second reset transistor Trst2 is triggered to turn on after receiving the first scan signal Scan1 and resets the light-emitting unit 20.
[0076] In the light-emitting period H3 of the i-th frame, the flip circuit 140 receives a second scanning signal Scan2 and a third scanning signal Scan3. The flip circuit 140 can output a first-level signal or a second-level signal. Assume that in the light-emitting period H3 of the current frame, the flip circuit 140 outputs the first-level signal. At this time, the third transistor T3 and the sixth transistor T6 are triggered to turn on, and the fourth transistor T4 and the fifth transistor T5 are triggered to turn off. At the same time, the first transistor T1 and the second transistor T2 receive the light emission signal, and the first transistor T1 and the second transistor T2 are turned on. The positive power supply terminal VDD, the third transistor T3, the first transistor T1, the driving transistor SD1, the second transistor T2 and the sixth transistor T6 constitute a first output circuit in the first direction. The current signal is output to the light-emitting unit 20 through the third transistor T3, the first transistor T1, the driving transistor SD1, the second transistor T2 and the sixth transistor T6. The light-emitting unit 20 generates a light signal of corresponding magnitude based on the current signal.
[0077] In the reset period H1 of the (i+1)th frame, the first reset transistor Trst1 receives the second scan signal Scan2 in the i-th frame, triggers reset, and resets the charge of the driving transistor SD1 to zero, so as to prevent the residual charge of the circuit in the previous frame from affecting the display effect of the current frame.
[0078] In the data writing period H2 of the i+1th frame, the data signal Vdata of the i+1th frame is refreshed and written to the data switch 130. At the same time, the data switch 130 of the light-emitting unit driving circuit 10 of the current row receives the first scan signal Scan1 corresponding to the input of the current row, and the seventh transistor T7 and the eighth transistor T8 are triggered to turn on. The data signal Vdata is stored in the storage capacitor Cst through the driving tube SD1, and the sampling of the threshold voltage of the driving tube SD1 is completed. The driving tube SD1 generates a current signal based on the data signal Vdata. At the same time, the second reset transistor Trst2 is triggered to turn on after receiving the first scan signal Scan1 and resets the light-emitting unit 20.
[0079] In the light-emitting period H3 of the i+1th frame, the flip circuit 140 receives another second scan signal Scan2 and another third scan signal Scan3, and the flip circuit 140 can switch to output a second level signal. At this time, the fourth transistor T4 and the fifth transistor T5 are triggered to turn on, and the third transistor T3 and the sixth transistor T6 are triggered to turn off. At the same time, the light emission switch 111 receives the light emission signal, the light emission switch 111 is turned on, the positive power supply terminal VDD, the fifth transistor T5, the second transistor T2, the driving tube SD1, the first transistor T1 and the fourth transistor T4 constitute a second output circuit in the second direction. The second direction is opposite to the first direction. The current signal is output to the light-emitting unit 20 through the fifth transistor T5, the second transistor T2, the driving tube SD1, the first transistor T1 and the fourth transistor T4. The light-emitting unit 20 generates a light signal of corresponding magnitude based on the current signal.
[0080] By analogy, during each frame scan, the light-emitting unit driving circuit 10 generates a voltage and current opposite to that of the previous frame and applies it to the driving tube SD1, thereby preventing the driving tube SD1 from receiving a voltage and current in a single direction, causing polarization and abnormal accumulation of carriers, thereby improving the working performance of the driving tube SD1 and ensuring the display effect of the pixel unit and the display device.
[0081] Example 3
[0082] like Figure 4 As shown, in an optional embodiment, the flip circuit 140 includes a first resistor R1, a second resistor R2, a third resistor R3, a ninth transistor T9, a tenth transistor T10, an eleventh transistor T11, a twelfth transistor T12, a thirteenth transistor T13, a fourteenth transistor T14, a fifteenth transistor T15, a sixteenth transistor T16, a seventeenth transistor T17, a first capacitor C1, a second capacitor C2, a third capacitor C3, a fourth capacitor C4, a first diode D1, and a second diode D2;
[0083] A first end of the first resistor R1 and a first end of the second resistor R2 are connected in common and are used to input a first row start signal VGH1 during a reset period H1. A second end of the first resistor R1, a cathode of the first diode D1, and a first end of a ninth transistor T9 are connected. A control end of the ninth transistor T9 is used to input a second scan signal Scan2. A second end of the second resistor R2, an anode of the first diode D1, an anode of the second diode D2, and a first end of the tenth transistor T10 are connected. A cathode of the second diode D2, a first end of the first capacitor C1, a first end of the third resistor R3, and a first end of the eleventh transistor T11 are connected. A second end of the ninth transistor T9, a second end of the first capacitor C1, and a second end of the third resistor R3 are grounded. A second end of the tenth transistor T10, a control end of the twelfth transistor T12, and a control end of the thirteenth transistor T13 are connected. A first end of the twelfth transistor T12 is used to input a second row start signal VGH2. A first end of the thirteenth transistor T13 is used to input a row shutoff signal VGL. A second end of the twelfth transistor T12 The first end of the first transistor T17 is connected to the first end of the flip circuit 140. The second end of the first transistor T17 is connected to the first end of the second capacitor C3. The second end of the first transistor T17 is connected to the first end of the second capacitor C2. The second end of the first transistor T17 is connected to the first end of the second capacitor C3. The second end of the first transistor T17 is connected to the first end of the second capacitor C2. The second end of the first transistor T17 is connected to the first end of the second capacitor C2. The second end of the first transistor T17 is connected to the first end of the second capacitor C3. The second end of the first transistor T17 is connected to the first end of the second capacitor C4.
[0084] In this embodiment, the first end of the first capacitor C1 is defined as the first node Q, the first end of the fifteenth transistor T15 is defined as the second node A, the first row start signal VGH1 and the second row start signal VGH2 are high, and the row stop signal VGL is low.
[0085] The first row start signal outputs a high level during the reset period and is in a floating state during the remaining periods.
[0086] The ninth transistor T9, the tenth transistor T10, the thirteenth transistor T13, the fourteenth transistor T14, and the seventeenth transistor T17 are transistors of the same type, and the remaining transistors in the flip circuit 140 are transistors of opposite types. For example, assuming that each scan signal is valid at a low level, the ninth transistor T9, the tenth transistor T10, the thirteenth transistor T13, the fourteenth transistor T14, and the seventeenth transistor T17 are N-channel transistors, and the remaining transistors in the flip circuit 140 are P-channel transistors. When each scan signal is valid at a high level, the ninth transistor T9, the tenth transistor T10, the thirteenth transistor T13, the fourteenth transistor T14, and the seventeenth transistor T17 are P-channel transistors, and the remaining transistors in the flip circuit 140 are N-channel transistors.
[0087] Take the low level active state of each scanning signal as an example, Figure 5 As shown in the waveform on the left, in the reset period H1 of the i-th frame, the first node Q is initially at a low potential. At this time, the second scan signal Scan2 is at a low level, the third scan signal Scan3 is at a high level, the ninth transistor T9 is turned off, the tenth transistor T10 is triggered to turn on, the second diode D2 is turned on, the control ends of the twelfth transistor T12 and the thirteenth transistor T13 receive a low level, the twelfth transistor T12 is triggered to turn on and transmit a high level to the second node A, the fourteenth transistor T14 and the fifteenth transistor T15 receive a high level of the third scan signal Scan3, the fourteenth transistor T14 is triggered to turn on, the fifteenth transistor T15 is triggered to turn off, the second node A is pulled high by the second row start signal VGH2, the second capacitor C2 and the third capacitor C3 are charged to store a high potential, the eleventh transistor T11 is turned off, and the first node Q continues to maintain a low potential.
[0088] In the light-emitting period H3 of the i-th frame, the second scan signal Scan2 is at a high potential, and the third scan signal Scan3 is at a low potential. At this time, the tenth transistor T10 and the fourteenth transistor T14 are turned off, the fifteenth transistor T15 and the eleventh transistor T11 are triggered to turn on, the second capacitor C2 charges the first capacitor C1, the potential of the first node Q starts to rise, and the potential of the second node A starts to drop. The third capacitor C3 applies a high potential to the sixteenth transistor T16 and the seventeenth transistor T17, and the seventeenth transistor T17 is turned on. The second row start-up signal VGH2 charges the fourth capacitor C4 and maintains a high level output to the corresponding switch in the switching circuit 120, thereby switching the voltage and current direction of the driving tube SD1 and driving the light-emitting unit 20 to emit light.
[0089] like Figure 5As shown in the waveform on the right, in the reset period H1 of the i+1 frame, the initial potential of the first node Q is a high potential. In the reset period H1, the second scan signal Scan2 is a low potential, the third scan signal Scan3 is a high potential, the ninth transistor T9 is turned off, the potential of the tenth transistor T10 is pulled low, the tenth transistor T10 is turned on, the twelfth transistor T12 is pulled high by the first row start signal VGH1, the twelfth transistor T12 is turned off, the thirteenth transistor T13 is turned on, the second node A is pulled low by the row close signal VGL, and at the same time, the fourteenth transistor T14 is turned on, the fifteenth transistor T15 is turned off, the second capacitor C2 and the third fixed capacitor store a low potential, the eleventh transistor T11 is turned off, and the first node Q maintains a high potential.
[0090] In the light-emitting period H3 of the i+1th frame, the second scan signal Scan2 is at a high potential, and the third scan signal Scan3 is at a low potential. At this time, the tenth transistor T10 and the fourteenth transistor T14 are turned off, the fifteenth transistor T15 and the eleventh transistor T11 are triggered to turn on, the second capacitor C2 charges the first capacitor C1, the potential of the first node Q begins to decrease, and the potential of the second node A begins to rise. The third capacitor C3 applies a low potential to the sixteenth transistor T16 and the seventeenth transistor T17, and the sixteenth transistor T16 is turned on. The row-off signal VGL charges the fourth capacitor C4 and maintains the output low level to the corresponding switch in the switching circuit 120, switches the voltage and current direction of the driving tube SD1, and drives the light-emitting unit 20 to emit light.
[0091] The flip circuit 140 uses two frames as a cycle and switches to output level signals of opposite levels in each cycle. By providing the switch circuit 120 and the flip circuit 140, the voltage direction and current direction of the driving tube SD1 can be switched in sequence in a frame-based cycle, thereby avoiding abnormal accumulation of carriers caused by polarization of the driving tube SD1, improving the working performance of the driving tube SD1, and ensuring the display effect of the pixel unit and the display device.
[0092] Compared with the prior art, the embodiments of the present invention have the following advantages: the light-emitting unit driving circuit 10 includes a light-emitting driving unit 110, a switching circuit 120, a data switch 130, and a flip circuit 140. The light-emitting driving unit 110 includes a driving transistor SD1 and a light emission switch 111 connected in series. The switching circuit 120 includes a first switch 121 to a fourth switch 124. The first switch 121, the light-emitting driving unit 110, and the fourth switch 124 constitute a first output circuit. The second switch 122, the light-emitting driving unit 110, and the third switch 123 constitute a second output circuit. The flip circuit 140 switches the output level polarity after receiving the second scan signal Scan2 and the third scan signal Scan3 once in each frame, and controls the first output circuit and the second output circuit to be alternately turned on, thereby switching the voltage direction and current direction of the driving transistor SD1, avoiding abnormal carrier accumulation caused by polarization of the driving transistor SD1, improving the working performance of the driving transistor SD1, and ensuring the display effect of the pixel unit and the display device.
[0093] Example 4
[0094] like Figure 6 As shown, the present invention further provides a pixel circuit 101, which includes a light-emitting unit 20 and a light-emitting unit driving circuit 10. The specific structure of the light-emitting unit driving circuit 10 is similar to the above-mentioned embodiment. Since the pixel circuit 101 adopts all the technical solutions of all the above-mentioned embodiments, it has at least all the beneficial effects brought about by the technical solutions of the above-mentioned embodiments, which will not be described in detail here. Among them, the light-emitting unit driving circuit 10 is connected to the light-emitting unit 20.
[0095] The light-emitting unit 20 and the light-emitting unit driving circuit 10 constitute a single pixel circuit 101. The pixel circuit 101 is arranged in an array to form a display module. The display module is connected to the data line, the scan line, the corresponding control signal terminal and the power terminal, and displays the corresponding image information under the drive of the data signal Data, the scan signal, multiple control signals and the voltage signal of the power terminal.
[0096] Example 5
[0097] like Figure 7 As shown, the present invention further provides a display device, which includes a driving circuit 102 and a pixel circuit 101. The specific structure of the pixel circuit 101 refers to the above embodiment. Since the present display device adopts all the technical solutions of all the above embodiments, it has at least all the beneficial effects brought about by the technical solutions of the above embodiments, which will not be described in detail here. Among them, the driving circuit 102 is connected to the pixel circuit 101.
[0098] The display device further includes an array substrate, on which pixel circuits 101 are arrayed. A plurality of data lines and scan lines are also provided on the array substrate. Each light-emitting unit driving circuit 10 is connected to a data line and a scan line, and the data line and the scan line are connected to the driving circuit 102. The driving circuit 102 is configured to output scanning signals row by row through a plurality of rows of scanning lines and to output data signals Data to each light-emitting unit driving circuit 10 in the pixel circuit 101 through a plurality of columns of data lines when driving each row. The light-emitting unit driving circuit 10 triggers operation and generates current signals to the light-emitting unit 20 according to the received scanning signals and data signals Data, and displays corresponding image information.
[0099] The embodiments described above are only used to illustrate the technical solutions of the present invention, rather than to limit the same. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some of the technical features therein. These modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the various embodiments of the present invention, and should all be included in the scope of protection of the present invention.
Claims
1. A light-emitting unit driving circuit, characterized in that: include: A light-emitting driving unit, comprising a driving tube and a light-emitting switch connected in series, wherein the driving tube is used to convert an input data signal into a current signal during a data writing period, and the light-emitting switch is used to be triggered by the light-emitting signal to conduct and output the current signal during a light-emitting period; A switch circuit, comprising a first switch group and a second switch group connected in parallel between a positive power supply terminal and a light-emitting unit, wherein the first switch group comprises a first switch and a second switch connected in series, and the second switch group comprises a third switch and a fourth switch connected in series, wherein a connection node between the first switch and the second switch is connected to a first terminal of the light-emitting drive unit, and a connection node between the third switch and the fourth switch is connected to a second terminal of the light-emitting drive unit; wherein the first switch and the fourth switch are triggered to turn on by a first level signal and to turn off by a second level signal; The second switch and the third switch are turned off by the first level signal and turned on by the second level signal, and the polarity of the first level signal and the second level signal are opposite; A data switch connected to the driving transistor and configured to be triggered by the first scanning signal to conduct during the data writing period to transmit the data signal; A flip circuit is connected to each switch of the switching circuit, and the flip circuit is used to output the first level signal or the second level signal, and switch the level polarity of the output signal each time a second scanning signal and a third scanning signal are received. The second scanning signal, the first scanning signal and the third scanning signal are output in sequence with a unit phase difference in each frame scanning cycle.
2. The light emitting unit driving circuit according to claim 1, wherein: The light emission switch includes a first transistor and a second transistor; The first end of the first transistor constitutes the first end of the light-emitting driving unit, the second end of the first transistor is connected to the first end of the driving tube, the first end of the second transistor is connected to the second end of the driving tube, and the second end of the second transistor constitutes the second end of the light-emitting driving unit.
3. The light emitting unit driving circuit according to claim 2, wherein: The first switch includes a third transistor, a first terminal of the third transistor is connected to the positive power supply terminal, a second terminal of the third transistor is connected to the first terminal of the first transistor, and a control terminal of the third transistor is connected to the output terminal of the flip circuit; The second switch includes a fourth transistor, a first end of the fourth transistor is connected to the first end of the first transistor, a second end of the fourth transistor is connected to the light emitting unit, and a control end of the fourth transistor is connected to the output end of the flip circuit; The third switch includes a fifth transistor, a first terminal of the fifth transistor is connected to the positive power supply terminal, a second terminal of the fifth transistor is connected to the second terminal of the second transistor, and a control terminal of the fifth transistor is connected to the output terminal of the flip circuit; The fourth switch includes a sixth transistor, a first end of the sixth transistor is connected to the second end of the second transistor, a second end of the sixth transistor is connected to the light emitting unit, and a control end of the sixth transistor is connected to the output end of the flip circuit.
4. The light emitting unit driving circuit according to claim 2, wherein: The light emitting unit driving circuit further includes: The storage capacitor is connected between the positive power supply terminal and the control terminal of the driving tube.
5. The light emitting unit driving circuit according to claim 4, wherein: The data switch includes a seventh transistor and an eighth transistor; The first end of the seventh transistor is connected to the control end of the driving tube, the second end of the seventh transistor is connected to the second end of the driving tube, the first end of the eighth transistor is used to input the data signal, the second end of the eighth transistor is connected to the first end of the driving tube, and the control end of the seventh transistor and the control end of the eighth transistor are used to input the first scanning signal.
6. The light emitting unit driving circuit according to any one of claims 2 to 5, wherein: The light-emitting unit driving circuit also includes a first reset transistor, a first end of the first reset transistor is used to input a first reset signal, a second end of the first reset transistor is connected to the control end of the driving tube, and the control end of the first reset transistor is used to input the second scanning signal during the reset period.
7. The light emitting unit driving circuit according to claim 6, wherein: The light-emitting unit driving circuit also includes a second reset transistor, a first end of the second reset transistor is used to input a second reset signal, a second end of the second reset transistor is connected to the light-emitting unit, and a control end of the second reset transistor is used to input the first scanning signal during the data writing period.
8. The light emitting unit driving circuit according to claim 1, wherein: The flip circuit includes a first resistor, a second resistor, a third resistor, a ninth transistor, a tenth transistor, an eleventh transistor, a twelfth transistor, a thirteenth transistor, a fourteenth transistor, a fifteenth transistor, a sixteenth transistor, a seventeenth transistor, a first capacitor, a second capacitor, a third capacitor, a fourth capacitor, a first diode, and a second diode; The first end of the first resistor and the first end of the second resistor are connected in common and are used to input the first row start signal during the reset period. The second end of the first resistor, the cathode of the first diode and the first end of the ninth transistor are connected. The control end of the ninth transistor is used to input the second scan signal. The second end of the second resistor, the anode of the first diode, the anode of the second diode and the first end of the tenth transistor are connected. The cathode of the second diode, the first end of the first capacitor, the first end of the third resistor and the first end of the eleventh transistor are connected. The second end of the ninth transistor, the second end of the first capacitor and the second end of the third resistor are grounded. The second end of the tenth transistor, the control end of the twelfth transistor and the control end of the thirteenth transistor are connected. The first end of the twelfth transistor is used to input the second row start signal. The first end of the thirteenth transistor is used to input the row close signal. The second end of the twelfth transistor, the The second end of the thirteenth transistor, the first end of the fourteenth transistor, the first end of the fifteenth transistor and the first end of the third capacitor are connected, the control end of the tenth transistor, the control end of the eleventh transistor, the control end of the fourteenth transistor and the control end of the fifteenth transistor are connected and used to input the third scanning signal, the second end of the eleventh transistor, the second end of the fourteenth transistor and the first end of the second capacitor are connected, the second end of the fifteenth transistor, the control end of the sixteenth transistor and the control end of the seventeenth transistor are connected, the first end of the sixteenth transistor is used to input the row shutdown signal, the first end of the seventeenth transistor is used to input the second row start signal, the second end of the sixteenth transistor, the second end of the seventeenth transistor and the first end of the fourth capacitor are connected together to form the output end of the flip circuit, the second end of the second capacitor, the second end of the third capacitor and the second end of the fourth capacitor are grounded.
9. A pixel circuit, characterized in that: The device comprises a light-emitting unit and a light-emitting unit driving circuit according to any one of claims 1 to 8, wherein the light-emitting unit driving circuit is connected to the light-emitting unit.
10. A display device, characterized in that: The device comprises a driving circuit and the pixel circuit according to claim 9, wherein the driving circuit is connected to the pixel circuit.
Citation Information
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