The present disclosure relates to the field of display technologies, and more particularly, to a pixel driving circuit, a method of driving the pixel driving circuit, and a display panel.
Blue phase liquid crystals have the advantages of sub-millimeter response times, simple manufacturing process, and wide viewing angles, and has attracted more and more researchers' attention worldwide. However, the most important feature of the blue phase liquid crystals is that they needs a high voltage to drive the liquid crystal molecules. The high voltage is greater than 30V. According to a calculation formula of the dynamic power consumption of the panel p=fcV2, the dynamic power consumption changes exponentially with the data voltage. Therefore, a data line of the conventional blue-phase liquid crystal pixel circuit obtained a higher voltage, that is, VData1>30V and the blue-phase liquid crystal panel requires greater power consumption.
At the same time, the blue phase liquid crystal panel pixel circuit generally uses a 3T1C circuit structure. This circuit structure has a poor effect of compensating the threshold voltage Vth, which causes the threshold voltage Vth negative and a difficulty of saving the data voltage stably in the storage capacitor. Therefore, the data signal will be gradually lost, causes the screen to flicker and affected product quality.
The purpose of the present disclosure is to provide a pixel driving circuit, a method of driving the pixel driving circuit, and a display panel to solve the technical problems of greater power consumption of the blue phase liquid crystal panel and severe data signal loss caused by bad threshold voltage Vth compensation effect.
To achieve the above object, the present disclosure provides a pixel driving circuit, including: a first transistor T1, a second transistor T2, a third transistor T3, a fourth transistor T4, a bootstrap capacitor Cbt, a storage capacitor Cst, and a light-emitting element D. Specifically, a gate of the first transistor T1 is connected to a first node G, a source of the first transistor T1 is connected to a second node S, and a drain of the first transistor T1 is connected to a power supply voltage VDD. A gate of the second transistor T2 is connected to a first scan signal Scan1, a source of the second transistor T2 is connected to a data signal Data1, and a drain of the second transistor T2 is connected to the first node G. A gate of the third transistor T3 is connected to the first scan signal Scan1, a source of the third transistor T3 is connected to a sensing signal Ref, and a drain of the third transistor T3 is connected to the second node S. A gate of the fourth transistor T4 is connected to the second scan signal Scan2, a source of the fourth transistor T4 is connected to the second node S, and a drain of the fourth transistor T4 is connected to a third node M. One terminal of the bootstrap capacitor Cbt is connected to the first node G, and another terminal of the bootstrap capacitor is connected to the second node S. One terminal of the storage capacitor Cst is connected to the third node M, and another terminal of the storage capacitor is connected to a ground voltage VSS. An anode of the light-emitting element D is connected to the third node M, and a cathode of the light-emitting element is connected to a common voltage signal Tcom.
Further, each of the first transistor T1, the second transistor T2, the third transistor T3, and the fourth transistor T4 is one of a low temperature polysilicon transistor, an oxide semiconductor transistor, or an amorphous silicon transistor.
Further, the first scan signal Scan1 and the second scan signal Scan2 are both provided by an external timing controller.
Further, when the second scan signal Scan2 drops from a high voltage to a low voltage, the fourth transistor T4 is turned off, and the storage capacitor Cst provides a constant driving current to the light-emitting element D.
To achieve the above object, the present disclosure further provides a method of driving a pixel driving circuit, and including the following steps:
Further, the data input stage includes steps:
Further, a voltage of the data signal Data1 ranges from 1V to 10V; and/or, a voltage of the sensing signal Ref is 1V; and/or, the power supply voltage VDD is 30V; and/or, the driving voltage is 30V.
Further, when entering the light-emitting phase from the input detection phase, the second scan signal Scan2 is reduced from the high electrical potential to the low electrical potential, the fourth transistor T4 is turned off, the storage capacitor Cst provides a constant driving current to the light-emitting element D, and the light-emitting element D emits light continuously.
Further, in the light-emitting stage, the first scan signal Scan1, the second scan signal Scan2, and the data signal Data1 all acquire a low potential, and the light-emitting element D emits light.
A display panel includes the pixel driving circuit described above.
The technical effect of the present disclosure is to provide a pixel driving circuit, a method of driving the pixel driving circuit, and a display panel. By reasonably adding the fourth transistor T4 and the storage capacitor Cst, transmitting the power supply voltage VDD to the third node N and saved in the storage capacitor Cst, then turning off the fourth transistor T4, the storage capacitor Cst provides a constant driving current to the light-emitting element D, which can significantly reduce the voltage of the data signal Data1, thereby achieving the purpose of low power consumption. In addition, the pixel driving circuit has a threshold voltage Vth compensation effect, and the Vdata voltage only needs to be maintained at 10V, which is conducive to improve brightness uniformity.
In reference to the figures, the specific embodiments of the present disclosure will be described in detail below, so that the technical solution and other beneficial effects of the present disclosure can become obvious.
In the following, the technical solutions in the embodiments of the present disclosure will be clearly and completely described with reference to the figures. Obviously, the described embodiments are only some embodiments of the present disclosure, not all the embodiments. Based on the embodiments in the present disclosure, all other embodiments obtained by a person of ordinary skill in the art without creative steps shall fall within the protection scope of the present disclosure.
In the description of the present disclosure, it should be noted that the terms “installation”, “linked”, and “connected” should be understood in a broad sense unless explicitly stated and limited otherwise. For example, it can be fixed connection, removable connection, or integral connection; it can be mechanical or electrical connection; it can be directly connected, indirectly connected through an intermediate medium, or it can be an internal communication of two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present disclosure can be understood on a case-by-case basis.
As shown in
Specifically, the power supply voltage VDD is at high electrical potential, and the ground voltage VSS is at low electrical potential.
The first transistor T1 is a driving transistor and provides a constant driving current to the light-emitting element D.
The second transistor T2 is a switching transistor, the gate of the second transistor T2 connected to the first scanning signal Scan1, the source of the second transistor T2 connected to the data signal Data1, and the drain of the second transistor T2 connected to the first node G. The second transistor T2 is electrically connected to the first transistor T1 and the bootstrap capacitor Cbt. The first scan signal Scan1 is provided by an external timing controller.
The bootstrap capacitor Cbt is connected between the first node G and the second node S, and maintaining a predetermined voltage within a frame time.
The light-emitting element D is a liquid crystal.
In this embodiment, by reasonably adding the fourth transistor T4 and the storage capacitor Cst, transmitting the power supply voltage VDD to the third node N and saved in the storage capacitor Cst, then turning off the fourth transistor T4, the storage capacitor Cst provides a constant driving current to the light-emitting element D, which can significantly reduce a voltage of the data signal Data1, thereby achieving the purpose of low power consumption, in addition, this embodiment also has a threshold voltage Vth compensation effect, and is conducive to improve brightness uniformity.
In this embodiment, each of the first transistor T1, the second transistor T2, the third transistor T3, and the fourth transistor T4 is one of a low temperature polysilicon transistor, an oxide semiconductor transistor, or an amorphous silicon transistor. The first scan signal Scan1 and the second scan signal Scan2 are provided by an external timing controller.
This embodiment also provides a method of driving the pixel driving circuit, which includes the pixel driving circuit described above.
Specifically, in conjunction form
initializing the pixel driving circuit in an initialization phase N0;
detecting a threshold voltage of the first transistor T1 and saving the threshold voltage Vth in the storage capacitor Cst in a data input detection phase; and
generating a driving current by the storage capacitor Cst and providing the driving current to the light-emitting element D for driving the light-emitting element D to emit light and to display in a light-emitting phase N3.
The detected threshold voltage of the first transistor T1 is Vdata1−Vth. Based on the compensation timing chart shown in
In this embodiment, in the data input detection phase N1, N2, the first scan signal Scan1, the second scan signal Scan2, the data signal Data1, and the sensing signal Ref obtaining a high electrical potential, turning on the first transistor T1, the second transistor T2, and the third transistor T3, and charging the bootstrap capacitor Cbt.
In this embodiment, the data input detection phase includes steps N1 and N2:
In a first stage N1, the first scan signal Scan1, the power supply voltage VDD, the data signal Data1, and the sensing signal Ref obtaining a high electrical potential, turning on the first transistor T1, the second transistor T2, and The third transistors T3, and charging the bootstrap capacitor Cbt; at this time, the first transistor T1 operates in a saturation region, and its gate voltage Vgs=9V; and
In a second stage N2, reducing the first scan signal Scan1 from the high electrical potential to a low electrical potential, the second scan signal Scan2 obtaining the high electrical potential, turning off the second transistor T2 and the third transistor T3 and at the same time turning on the fourth transistor T4, raising potentials of the first node G, the second node S, and the third node M to a driving voltage, and charging the storage capacitor Cst.
According to I=1/2*C*μ*W/L*(Vgs−Vref)2, it can be known that the increased electrical potential of the second node S is independent of the threshold voltage Vth.
In this embodiment, a voltage of the data signal Data1 ranges from 1V to 10V; and/or a voltage of the sensing signal Ref is 1V; and/or the power supply voltage VDD is 30V; and/or, the driving voltage is 30V.
Specifically, the specific waveform and electrical potential relationship of each signal in the pixel driving circuit can be shown in Table 1 below.
When the power is turned on, the first scan signal Scan1 rises to the high electrical potential, and the voltage of the data signal Data1 becomes Vdata+Vth, that is, from 1V to 10V, and a conversion amount is a highest gate voltage Vgs=9V of the first transistor T1 operated in the saturation region.
In this embodiment, when entering the light-emitting phase N3 from the input detection phase N1 and N2, the second scan signal Scan2 is reduced from the high electrical potential to the low electrical potential, the fourth transistor T4 is turned off, the storage capacitor Cst provides a constant driving current to the light-emitting element D, and the light-emitting element D emits light continuously.
Further, in the light-emitting stage, the first scan signal Scan1, the second scan signal Scan2, and the data signal Data1 all obtain the low electrical potential, and the light-emitting element D emits light.
In the embodiments of the present disclosure, wherein the dynamic power consumption of the data line is p=fcVdata12, and Vdata1 is the voltage of the data signal Data1, which is 10V. If uses the pixel structure of the conventional liquid crystal display 1T1C, the dynamic power consumption of the data line is p=fcVdata2, the voltage of Vdata is 30V, and the power consumption varies greatly. Therefore, the present disclosure achieves the purpose of low power consumption.
An embodiment of the present disclosure further provides a display panel including the pixel driving circuit described above.
The technical effect of the present disclosure is to provide a pixel driving circuit, a method of driving the pixel driving circuit, and a display panel. By reasonably adding the fourth transistor T4 and the storage capacitor Cst, transmitting the power supply voltage VDD to the third node N and saved in the storage capacitor Cst, then turning off the fourth transistor T4, the storage capacitor Cst provides a constant driving current to the light-emitting element D, which can significantly reduce the voltage of the data signal Data1, thereby achieving the purpose of low power consumption. In addition, the pixel driving circuit has a threshold voltage Vth compensation effect, and the Vdata voltage only needs to be maintained at 10V, which is conducive to improve brightness uniformity.
In the above embodiments, the description of each embodiment has its emphasis. For a part that is not described in detail in one embodiment, reference may be made to related descriptions in other embodiments.
The description above providing and describing embodiments of the pixel driving circuit and driving method thereof, and a display panel in detail to explain the principles and implementation of the present disclosure. The description of the above embodiments is only used to help understand the technical solution and core idea of the present disclosure. It should be noted that, for those of ordinary skill in the art, without departing from the principle of the present disclosure, several improvements and retouches can be made, and these improvements and retouches are within the protection scope of the present disclosure.
Filing Document | Filing Date | Country | Kind |
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PCT/CN2020/080621 | 3/23/2020 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2021/164092 | 8/26/2021 | WO | A |
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