SHIFT REGISTER CIRCUIT AND DISPLAY PANEL USING SAME
20180322841 ยท 2018-11-08
Inventors
Cpc classification
International classification
Abstract
A shift register circuit includes shift registers and each including: a first through fourth switches: in the first switch: a control end electrically coupled to a first node, a first end electrically coupled to a frequency signal, and a second end electrically coupled to an output pulse signal; in the second switch: a control end electrically coupled to the first node, a first end of electrically coupled to the frequency signal, and a second end electrically coupled to a control signal; in the third switch: a control end electrically coupled to a control signal, a first end electrically coupled to a first direct-current signal, and a second end electrically coupled to the first node; in the fourth switch: a control end electrically coupled to the control signal, a first end electrically coupled to a second direct-current signal, and a second end electrically coupled to the first node.
Claims
1. A shift register circuit, comprising a plurality of shift registers, wherein each shift register comprises: a first switch, wherein a control end of the first switch is electrically coupled to a first node, a first end of the first switch is electrically coupled to a frequency signal, and a second end of the first switch is electrically coupled to an output pulse signal; a second switch, wherein a control end of the second switch is electrically coupled to the first node, a first end of the second switch is electrically coupled to the frequency signal, and a second end of the second switch is electrically coupled to a control signal; a third switch, wherein a control end of the third switch is electrically coupled to a control signal, a first end of the third switch is electrically coupled to a first direct-current signal, and a second end of the third switch is electrically coupled to the first node; and a fourth switch, wherein a control end of the fourth switch is electrically coupled to the control signal, a first end of the fourth switch is electrically coupled to a second direct-current signal, and a second end of the fourth switch is electrically coupled to the first node.
2. The shift register circuit according to claim 1, further comprising a fifth switch, wherein a control end of the fifth switch is electrically coupled to a second node, a first end of the fifth switch is electrically coupled to the output pulse signal, and a second end of the fifth switch is electrically coupled to a preset low potential.
3. The shift register circuit according to claim 1, further comprising a sixth switch, wherein a control end of the sixth switch is electrically coupled to a second node, a first end of the sixth switch is electrically coupled to the first node, and a second end of the sixth switch is electrically coupled to a preset low potential.
4. The shift register circuit according to claim 1, further comprising a pull-down subcircuit electrically coupled to the first node, the output pulse signal, and a default low potential of the shift register circuit.
5. The shift register circuit according to claim 4, further comprising a pull-down subcircuit controller electrically coupled to the default low potential and the pull-down subcircuit of the shift register circuit.
6. The shift register circuit according to claim 1, wherein the first end of the third switch is electrically coupled to the first direct-current signal, to provide a power supply to precharge the shift register circuit.
7. The shift register circuit according to claim 6, wherein the first direct-current signal is used to increase a potential of the control end of the third switch.
8. The shift register circuit according to claim 1, wherein the first end of the fourth switch is electrically coupled to the second direct-current signal, to provide a power supply to precharge the shift register circuit.
9. The shift register circuit according to claim 8, wherein the second direct-current signal is used to increase a potential of the control end of the fourth switch.
10. The shift register circuit according to claim 1, wherein the first direct-current signal and the second direct-current signal take turns to provide a power supply to precharge the shift register circuit.
11. A liquid crystal display panel, comprising: a first substrate; a second substrate, disposed opposite the first substrate; a liquid crystal layer, disposed between the first substrate and the second substrate; a first polarizer, disposed on an outer surface of the first substrate; and a second polarizer, disposed on an outer surface of the second substrate, wherein a polarizing direction of the first polarizer and a polarizing direction of the second polarizer are in parallel to each other; and a shift register circuit, disposed on the first substrate or the second substrate.
12. The liquid crystal display panel according to claim 11, wherein the shift register circuit comprises a plurality of shift registers, and each shift register comprises: a first switch, wherein a control end of the first switch is electrically coupled to a first node, a first end of the first switch is electrically coupled to a frequency signal, and a second end of the first switch is electrically coupled to an output pulse signal; a second switch, wherein a control end of the second switch is electrically coupled to the first node, a first end of the second switch is electrically coupled to the frequency signal, and a second end of the second switch is electrically coupled to a control signal; a third switch, wherein a control end of the third switch is electrically coupled to a control signal, a first end of the third switch is electrically coupled to a first direct-current signal, and a second end of the third switch is electrically coupled to the first node; and a fourth switch, wherein a control end of the fourth switch is electrically coupled to the control signal, a first end of the fourth switch is electrically coupled to a second direct-current signal, and a second end of the fourth switch is electrically coupled to the first node.
13. The liquid crystal display panel according to claim 12, further comprising a fifth switch, wherein a control end of the fifth switch is electrically coupled to a second node, a first end of the fifth switch is electrically coupled to the output pulse signal, and a second end of the fifth switch is electrically coupled to a preset low potential.
14. The liquid crystal display panel according to claim 12, further comprising a sixth switch, wherein a control end of the sixth switch is electrically coupled to a second node, a first end of the sixth switch is electrically coupled to the first node, and a second end of the sixth switch is electrically coupled to a preset low potential.
15. The liquid crystal display panel according to claim 12, further comprising a pull-down subcircuit electrically coupled to the first node, the output pulse signal, and a default low potential of the shift register circuit.
16. The liquid crystal display panel according to claim 15, further comprising a pull-down subcircuit controller electrically coupled to the default low potential and the pull-down subcircuit of the shift register circuit.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0027] The following embodiments are described with reference to the accompanying drawings, to show examples of particular embodiments implemented by using this application. Direction-related terms provided in this application, for example, above, below, front, back, left, right, inside, outside, and lateral face, merely refer to directions in the accompanying drawings. Therefore, the used direction-related terms are intended for describing and understanding this application, and are not intended for limiting this application.
[0028] The accompanying drawings and the descriptions are considered as examples instead of limitation essentially. In the drawings, units having similar structures are represented by a same reference numeral. In addition, for ease of understanding and description, the size and the thickness of each component shown in the accompanying drawings are randomly selected, but this is not limited in this application.
[0029] In the accompanying drawings, for clarity, the thickness of a layer, a film, a panel, a region, and the like is greater than that in actual cases. In the accompanying drawings, for ease of understanding and description, the thicknesses of some layers and regions are greater than these in actual cases. It should be understood that, when a component such as a layer, a film, a region, or a base is described as above another component, the component may be directly on the another component, or there may be a component disposed therebetween.
[0030] In addition, in the specification, unless otherwise described clearly, a word include is understood as including the component, but excluding no other component. In addition, in the application, on means being located above or below a target component, but does not inevitably mean being located on the top based on a gravity direction.
[0031] To further illustrate technical solutions of this application used to achieve a preset invention objective and effects of this application. The following describes in detail specific implementations, structures, features, and effects of the shift register circuit and the display panel using same of this application with reference to the accompanying drawings and preferred embodiments.
[0032] A liquid crystal panel in this application may include an active array (TFT) substrate, a color filter (CF) substrate, and a liquid crystal layer formed between the two substrates.
[0033] In an embodiment, the liquid crystal panel in this application may be a curved display panel.
[0034] In an embodiment of this application, an active array (TFT) and a color filter (CF) may be formed on a same substrate.
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[0040] In an embodiment, a pull-down subcircuit 220 is further included, and is electrically coupled to the first node P1(n), the output pulse signal Gn, and a default low potential Vss of the shift register circuit 200.
[0041] In an embodiment, a pull-down subcircuit controller 210 is further included, and is electrically coupled to the default low potential Vss and the pull-down subcircuit 220 of the shift register circuit 200.
[0042]
[0043] In an embodiment, a pull-down subcircuit 220 is further included, and is electrically coupled to the first node P1(n), the output pulse signal Gn, and a default low potential Vss of the shift register circuit 201.
[0044] In an embodiment, a pull-down subcircuit controller 210 is further included, and is electrically coupled to the default low potential Vss and the pull-down subcircuit 220 of the shift register circuit 201.
[0045]
[0046] In an embodiment, a fifth switch T50 is further included, a control end 501a of the fifth switch T50 is electrically coupled to a second node P2(n), a first end 501b of the fifth switch T50 is electrically coupled to the output pulse signal Gn, and a second end 501c of the fifth switch T50 is electrically coupled to a preset low potential Vss.
[0047] In an embodiment, a sixth switch T60 is further included, a control end 601a of the sixth switch T60 is electrically coupled to a second node P2(n), a first end 601b of the sixth switch T60 is electrically coupled to the first node P1(n), and a second end 601c of the sixth switch T60 is electrically coupled to a preset low potential Vss.
[0048] In an embodiment, a pull-down subcircuit 220 is further included, and is electrically coupled to the first node P1(n), the output pulse signal Gn, and the default low potential Vss of the shift register circuit 300.
[0049] In an embodiment, a pull-down subcircuit controller 210 is further included, and is electrically coupled to the default low potential Vss and the pull-down subcircuit 220 of the shift register circuit 300.
[0050] In an embodiment, the first end 301b of the third switch T30 is electrically coupled to the first direct-current signal VDD_LC1, to provide a power supply to precharge the shift register circuit 300.
[0051] In an embodiment, the first end 401b of the fourth switch T40 is electrically coupled to the second direct-current signal VDD_LC2, to provide a power supply to precharge the shift register circuit 300.
[0052] In an embodiment, the first direct-current signal VDD_LC1 is used to increase a potential of the control end 301a of the third switch T30.
[0053] In an embodiment, the second direct-current signal VDD_LC2 is used to increase a potential of the control end 401a of the fourth switch T40.
[0054] In an embodiment, the first direct-current signal VDD_LC1 and the second direct-current signal VDD_LC2 take turns to provide a power supply to precharge the shift register circuit 300.
[0055]
[0056] In this application, in a direct-current precharge mode, an active switch is added and is separately connected to a first direct-current signal and a second direct-current signal, so as to take turns to precharge an increase point, and reduce a pressure time when there is only one switch, thereby extending component service life, and improving product reliability and extending product service life.
[0057] Terms such as in some embodiments and in various embodiments are used repeatedly. The terms do not represent a same embodiment generally, but may represent a same embodiment. Terms such as contain, have, and include are synonymous unless otherwise described in context.
[0058] The foregoing descriptions are merely preferred embodiments of this application, but are not intended to limit this application in any form. This application is disclosed by using the foregoing preferred embodiments, but the embodiments are not intended to limit this application. Without departing from the scope of the technical solutions of this application, a person skilled in the art may make variations by using the foregoing disclosed technical content, or may make modifications equivalent to the variations to obtain equivalent embodiments. Any simple modifications or equivalent variations and modifications made to the foregoing embodiments without departing from the content of the technical solutions of this application and according to technical essence of this application shall still fall within the scope of the technical solutions of this application.