ARRAY SUBSTRATE, DISPLAY PANEL, AND DISPLAY DEVICE
20180053795 ยท 2018-02-22
Assignee
Inventors
Cpc classification
H01L27/124
ELECTRICITY
H01L27/1255
ELECTRICITY
G09G2300/0876
PHYSICS
H01L27/1214
ELECTRICITY
International classification
Abstract
The invention discloses an array substrate, a display panel, and a display device, where at least one control capacitor is added to a pixel zone, and the control capacitor has a first electrode at a fixed potential, and a second electrode at the same potential as a node between two adjacent transistors, so that when an active gate scan signal is stopped from being loaded on a gate line, the potential of the second electrode of the control capacitor is controlled to be kept at the potential of data signal loaded on a data line, to thereby lower the difference in voltage between the source and the drain of a transistor associated with the second electrode of the control capacitor so as to keep the potential at a connection point of the transistor with a storage capacitor to be the potential of a data signal loaded on the data line.
Claims
1. An array substrate, comprising: a substrate, gate lines and data lines arranged on the substrate crossing each other, a plurality of pixel zones arranged in an array and defined by the gate lines and the data lines, and a pixel switch, a storage capacitor, and at least one control capacitor in each of the plurality of pixel zones, wherein: the pixel switch comprises at least two transistors connected in series, wherein gates of the at least two transistors are connected with one of the gate lines, a first transistor among the at least two transistors connected in series is connected with one terminal of the storage capacitor, and a last transistor among the at least two transistors connected in series is connected with one of the data lines; and the number of the at least one control capacitor is less than the number of the at least two transistors; the control capacitor comprises a first electrode at a fixed potential, and a second electrode at the same potential as a node between two adjacent ones of the transistors; and the control capacitor is configured to control the potential of the second electrode of the control capacitor to be kept at the potential of a data signal loaded on the data line, when an active gate scan signal is stopped from being loaded on the gate line.
2. The array substrate according to claim 1, wherein there are no more than three transistors in the pixel switch.
3. The array substrate according to claim 1, wherein there is one control capacitor in each of the pixel zones, and the second electrode of the control capacitor at the potential of a node between the first transistor and its adjacent transistor.
4. The array substrate according to claim 3, wherein the pixel switch comprises a first transistor and a second transistor connected in series, both of which constitute a dual-gate structure.
5. The array substrate according to claim 4, wherein both the first transistor and the second transistor are N-type transistors or P-type transistors.
6. The array substrate according to claim 1, wherein the capacitance of each of the at least one control capacitor is less than the capacitance of the storage capacitor, and more than the capacitance of a parasitic capacitor between the gate line and the data line.
7. The array substrate according to claim 6, wherein there are a plurality of control capacitors in each of the pixel zones, and all the capacitances of the control capacitors in the pixel zone are equal to each other.
8. The array substrate according to claim 7, wherein the capacitances of the control capacitors in different pixel zones are equal to each other.
9. The array substrate according to claim 1, wherein the storage capacitor is consisted of a pixel electrode and a common electrode; and the first electrode of the control capacitor is at the potential of the common electrode, and the second electrode of the control capacitor is at the potential of an active layer connected between two adjacent ones of the transistors.
10. The array substrate according to claim 9, wherein the transistors are in a top-gate structure, and the first electrode and/or the second electrode of the control capacitor is a metal electrode at a layer arranged between the active layer and the common electrode.
11. The array substrate according to claim 10, wherein the first electrode of the control capacitor is a first metal electrode arranged at the same layer as the data line, and insulated from the data line, and the second electrode of the control capacitor is an area of the active layer facing the first metal electrode.
12. The array substrate according to claim 10, wherein the first electrode of the control capacitor is a second metal electrode arranged at the same layer as the gate line, and insulated from the gate line, and the second electrode of the control capacitor is an area of the active layer facing the second metal electrode.
13. The array substrate according to claim 10, wherein the second electrode of the control capacitor is a third metal electrode arranged at the same layer as the gate line, and insulated from the gate line, and the first electrode of the control capacitor is an area of the common electrode facing the third metal electrode; and the third metal electrode is electrically connected with the active layer.
14. The array substrate according to claim 10, wherein the first electrode of the control capacitor is a fourth metal electrode arranged at the same layer as the date line, and insulated from the date line, and the second electrode of the control capacitor is a fifth metal electrode arranged at the same layer as the gate line, and insulated from the gate line; and the fifth metal electrode is electrically connected with the active layer.
15. The array substrate according to claim 9, wherein the transistors are in a bottom-gate structure, and the first electrode and/or the second electrode of the control capacitor is a metal electrode arranged at the same layer as the data line or the gate line, and insulated from the data line or the gate line.
16. The array substrate according to claim 15, wherein the first electrode of the control capacitor is a sixth metal electrode arranged at the same layer as the data line, and insulated from the data line, and the second electrode of the control capacitor is an area of the active layer facing the sixth metal electrode.
17. The array substrate according to claim 15, wherein the second electrode of the control capacitor is a seventh metal electrode arranged at the same layer as the data line, and insulated from the data line, and the first electrode of the control capacitor is an area of the common electrode facing the seventh metal electrode; and the seventh metal electrode is electrically connected with the active layer.
18. The array substrate according to claim 15, wherein the first electrode of the control capacitor is an eighth metal electrode arranged at the same layer as the gate line, and insulated from the gate line, and the second electrode of the control capacitor is an area of the active layer facing the eighth metal electrode.
19. A display panel comprising: an array substrate, the array substrate comprises: a substrate, gate lines and data lines arranged on the substrate crossing each other, a plurality of pixel zones arranged in an array and defined by the gate lines and the data lines, and a pixel switch, a storage capacitor, and at least one control capacitor in each of the plurality of pixel zones, wherein: the pixel switch comprises at least two transistors connected in series, wherein gates of the at least two transistors are connected with one of the gate lines, a first transistor among the at least two transistors connected in series is connected with one terminal of the storage capacitor, and a last transistor among the at least two transistors connected in series is connected with one of the data lines; and the number of the at least one control capacitor is less than the number of the at least two transistors; the control capacitor comprises a first electrode at a fixed potential, and a second electrode at the same potential as a node between two adjacent ones of the transistors; and the control capacitor is configured to control the potential of the second electrode of the control capacitor to be kept at the potential of a data signal loaded on the data line, when an active gate scan signal is stopped from being loaded on the gate line.
20. A display device, comprising: a display panel including: an array substrate, the array substrate having: a substrate, gate lines and data lines arranged on the substrate crossing each other, a plurality of pixel zones arranged in an array and defined by the gate lines and the data lines, and a pixel switch, a storage capacitor, and at least one control capacitor in each of the plurality of pixel zones, wherein: the pixel switch comprises at least two transistors connected in series, wherein gates of the at least two transistors are connected with one of the gate lines, a first transistor among the at least two transistors connected in series is connected with one terminal of the storage capacitor, and a last transistor among the at least two transistors connected in series is connected with one of the data lines; and the number of the at least one control capacitor is less than the number of the at least two transistors; the control capacitor comprises a first electrode at a fixed potential, and a second electrode at the same potential as a node between two adjacent ones of the transistors; and the control capacitor is configured to control the potential of the second electrode of the control capacitor to be kept at the potential of a data signal loaded on the data line, when an active gate scan signal is stopped from being loaded on the gate line.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0023] Some embodiments of an array substrate, a display panel, and a display device may be described below in details with reference to the drawings.
[0024] The shapes and sizes of respective components in the drawings are not intended to reflect their actual proportions, but only intended to illustrate the disclosure of the invention.
[0025] An embodiment of the invention provides an array substrate, as illustrated in
[0026] The pixel switch 201 includes at least two transistors T connected in series, where gate of each transistor T is connected with a gate line GATE, the first transistor T.sub.1 among the transistors T connected in series is connected with a terminal m of the storage capacitor C.sub.0, and the last transistor T.sub.2 among the transistors T connected in series is connected with a data line DATA; and the terminal m of the storage capacitor C.sub.0 has a potential of a pixel electrode, and the terminal n thereof has a potential of a common electrode, and a drain of the first transistor T.sub.1 is connected with the pixel electrode (not illustrated in
[0027] The number of control capacitors C.sub.S is less than the number of transistors T; the control capacitor C.sub.S includes a first electrode a at a fixed potential V.sub.s, and a second electrode b at the same potential as a node between two adjacent transistors T; and the control capacitor C.sub.S is configured to control the potential of the second electrode b of the control capacitor C.sub.S to be kept at the potential of a data signal loaded on the data line DATA, when an active gate scan signal is stopped from being loaded on the gate line GATE.
[0028] In the array substrate above according to the embodiment of the invention, the at least one control capacitor C.sub.S is added to the pixel zone, the first electrode a of the control capacitor C.sub.S is at the fixed potential V.sub.s, and the second electrode b thereof has the same potential as a node between two adjacent transistors, so that when an active gate scan signal is stopped from being loaded on the gate line GATE, the potential of the second electrode b of the control capacitor C.sub.S is controlled to be kept at the potential of a data signal loaded on the data line DATA, to thereby lower the difference in voltage between the source and the drain of the transistor associated with the second electrode b of the control capacitor C.sub.S so as to keep the potential at the connection point of the transistor T with the storage capacitor C.sub.0 to be the potential of a data signal loaded on the data line DATA, thus charging the pixel electrode sufficiently, and alleviating a picture from flickering due to insufficient charging thereof, etc.
[0029] In some implementations, in order to charge the pixel electrode sufficiently, and to avoid the potential of a node between two adjacent transistors from significantly fluctuating due to the parasitic capacitor between the gate line and the data line after a transistor in the pixel switch is turned off, the capacitance of the control capacitor is less than the capacitance of the storage capacitor, and more than the capacitance of the parasitic capacitor between the gate line and the data line; and of course, the capacitance of the control capacitor can be adjusted according to the distance between the first electrode and the second electrode of the control capacitor, and the area of the first electrode facing the second electrode.
[0030] In one embodiment, in the array substrate above according to the embodiment of the invention, if there are a plurality of control capacitors in a pixel zone, then capacitances of the plurality of control capacitors in the pixel zone may be equal to each other to thereby effective control the potentials of the second electrodes of the respective control capacitors.
[0031] In one embodiment, in order to charge the pixel electrodes in the respective pixel zones sufficiently for uniform brightness of a picture to be displayed, capacitances of respective control capacitors in different pixel zones are equal to each other in the array substrate above according to the embodiment of the invention.
[0032] In one implementation, in order to highlight the role of the control capacitor C.sub.S in reducing the leakage current of the transistor T, in the array substrate above according to the embodiment of the invention, typically there are no more than three transistors in the pixel switch, where there may be three transistors T in the pixel switch 201 as illustrated in
[0033] In one embodiment, as illustrated in
[0034] Of course, as illustrated in
[0035] Furthermore both the first transistor T.sub.1 and the second transistor T.sub.2 may be N-type transistors or P-type transistors. As illustrated in
[0036] Of course, the transistors T as referred to in the array substrate above according to the embodiment of the invention may be Thin Film Transistors (TFTs), or may be Metal Oxide Semiconductor (MOS) field effect transistors; and the sources and the drains of the transistors T (including the first transistor T.sub.1, the second transistor T.sub.2, and the third transistor T.sub.3) can be fabricated in the same process, and their denominations may be interchangeable with each other dependent upon the direction of voltage to be allied thereto.
[0037] In one implementation, in the array substrate above according to the embodiment of the invention, in order to charge the pixel electrode sufficiently, the potential of the node P.sub.0 needs to be controlled, and furthermore aspects of the invention releate to the potential of the closest node P.sub.1 adjacent to the node P.sub.0 to be kept at the potential of a data signal loaded on the data line DATA, to thereby lower the difference in voltage between the source and the drain of the first transistor T.sub.1 so as to reduce leakage current. Accordingly one control capacitor C.sub.S can be arranged in a pixel zone so that the potential of the second electrode b of the control capacitor C.sub.S is the potential of the node P.sub.1 between the first transistor T.sub.1 and its adjacent transistor T, thus charging the pixel electrode sufficiently while lowering a cost of fabricating the array substrate as many as possible.
[0038] Of course there may be a plurality of control capacitors C.sub.S arranged in a pixel zone, but the number of control capacitors C.sub.S may be less than the number of transistors T, so if there are plurality of control capacitors C.sub.S to be arranged, then the second electrodes b of the respective control capacitors C.sub.S needs to be at the potentials of nodes between every two adjacent transistors T respectively. As illustrated in
[0039] In one embodiment, Table 1 depicts particular results of simulation on the structure as illustrated in
TABLE-US-00001 TABLE 1 Charging in a Charging in a positive frame negative frame The The inven- inven- Prior art tion Prior art tion Gate-on voltage Node 4.789 V 4.742 V 5.228 V 5.128 V Vgh just stopped P.sub.0 from being loaded Node 6.261 V 4.433 V 7.593 V 5.225 V on the gate line P.sub.1 350 s after gate-on Node 4.789 V 4.842 V 5.559 V 5.128 V voltage Vgh is P.sub.0 stopped from being Node 6.107 V 4.433 V 6.071 V 5.224 V loaded on the gate P.sub.1 line
[0040] In one implementation, in the array substrate above according to the embodiment of the invention, the fixed potential of the first electrode of the control capacitor may be the potential of a common electrode, or may be another potential, e.g., gate-on voltage Vgh or gate-off voltage in a peripheral circuit area. However the common electrode is located in a display area of the array substrate. i.e., a pixel zone, and typically the storage capacitor is consisted of the pixel electrode and the common electrode; and the gate-on voltage Vgh or the gate-off voltage Vgl is located in the peripheral circuit area of the array substrate, so if the fixed potential of the first electrode of the control capacitor is the gate-on voltage Vgh or the gate-off voltage Vgl, then additional wiring may be used to electrically connect a gate-on voltage Vgh or gate-off voltage Vgl generator with the first electrode of the control capacitor, thus undoubtedly increasing the amount of wiring in the pixel zone, which may lower an opening ratio, and also they may a short-circuit or broken-circuit condition arising from a larger length of wiring. On the other hand, if the fixed potential of the first electrode of the control capacitor is the potential of the common electrode, then the first electrode of the control capacitor may be electrically connected with the common electrode in the pixel zone through a via-hole or a wire, and the via-hole or the wire can be patterned together with another film layer determined by the location of the via-hole or the wire without any additional fabrication process, thus lowering an influence thereof on an opening ratio. Moreover both an active layer, and the source and the drain of a transistor are typically made of a heavily doped material which is generally doped with phosphor at a concentration which may be 10.sup.20 atoms per cubic centimeter, thus resulting in a lower resistance of the active layer, which is approximately 500 ohms, so the active layer can operate as the second electrode of the control capacitor. Of course, the doping element of the active layer, and the doping concentration thereof may not be limited thereto, but there may be another doping element and another doping concentration as long as the resistance of the active layer is so low that the active layer can operate as the second electrode of the control capacitor. According in the array substrate above according to the embodiment of the invention, in order to avoid an additional fabrication process without lowering an opening ratio, the first electrode of the control capacitor can be at the potential of the common electrode, and the second electrode of the control capacitor can be at the potential of the active layer connected between two adjacent transistors.
[0041] The structure of the control capacitor is described below in details in some embodiments thereof by way of an example in which one control capacitor is arranged in a pixel zone, a pixel switch includes a first switch transistor and a second switch transistor, a first electrode of the control capacitor is at the potential of a common electrode, and a second electrode of the control capacitor is at the potential of an active layer connected between the first transistor and its adjacent transistor.
[0042] If both the first switch transistor and the second switch transistor are in a top-gate structure, then
[0043] In one embodiment, in
[0044] In one embodiment, as illustrated in
[0045] Alternatively as illustrated in
[0046] Alternatively as illustrated in
[0047] Alternatively as illustrated in
[0048] If both the first switch transistor and the second switch transistor are in a bottom-gate structure, then
[0049] In one embodiment, in
[0050] In one embodiment, as illustrated in
[0051] Alternatively as illustrated in
[0052] Alternatively as illustrated in
[0053] Based upon the same inventive idea, an embodiment of the invention further provides a display panel as illustrated in
[0054] Based upon the same inventive idea, an embodiment of the invention further provides a display device including the display panel above according to any one of the embodiments of the invention, where when the display panel is a liquid crystal display panel, then as illustrated in
[0055] In the array substrate, the display panel, and the display device according to the embodiments of the invention, at least one control capacitor is added to a pixel zone, and the control capacitor has a first electrode at a fixed potential, and a second electrode at the same potential as a node between two adjacent transistors, so that when an active gate scan signal is stopped from being loaded on a gate line, the potential of the second electrode of the control capacitor is controlled to be kept at the potential of a data signal loaded on a data line, to thereby lower the difference in voltage between the source and the drain of a transistor associated with the second electrode of the control capacitor so as to keep the potential at a connection point of the transistor with a storage capacitor to be the potential of a data signal loaded on the data line, thus charging the pixel electrode sufficiently, and alleviating a picture from flickering due to insufficient charging thereof, etc.
[0056] Evidently those skilled in the art can make various modifications and variations to the invention without departing from the spirit and scope of the invention. Accordingly the invention is also intended to encompass these modifications and variations thereto so long as the modifications and variations come into the scope of the claims appended to the invention and their equivalents.