The present disclosure relates to the technical field of display, and specifically to a pixel circuit and a display device.
In a liquid crystal display device, in order to improve a large viewing-angle color shift effect of a vertical alignment type liquid crystal display, pixel units can be designed with low color shift (LCS). For example, each of sub-pixel units is divided into a primary pixel electrode and a secondary pixel electrode. During a display process, the primary pixel electrode and the secondary pixel electrode are first charged with the same electric potential, and then the electric potential at the secondary pixel electrode is reduced so that the electric potential at the primary pixel electrode and the secondary pixel electrode are different.
For example, a switch of the primary pixel electrode, a switch of the secondary pixel electrode, and a sharing signal switch are controlled by a same signal line, an LCS curve will show a downward trend, wherein a viewing-angle is poor when the LCS characteristic parameter is low, and penetration is bad when the LCS characteristic parameter is high. In order to improve this situation, although other technologies have been proposed, such as a control method regarding changing the sharing signal switch, an adjustable range of an LCS characteristic curve is limited, which cannot meet the requirements of viewing-angle and transmittance at the same time, and still needs to be improved.
The present disclosure provides a pixel circuit and a display device, which are used to improve an adjustable range of a low color shift curve in the prior art.
To solve the above-mentioned problem, a first aspect of the present disclosure provides a pixel circuit, including: a plurality of pixel driving modules, wherein each of the pixel driving modules includes: a primary pixel control assembly comprising a primary switch and a primary pixel electrode, wherein the primary switch is configured to be controlled by a scan signal on a present-stage scan line to transfer a data signal on a data line to the primary pixel electrode; a secondary pixel control assembly including a secondary switch and a secondary pixel electrode, wherein the secondary switch is configured to be controlled by the scan signal on the present-stage scan line to transmit the data signal on the data line to the secondary pixel electrode; and a sharing switch configured to be controlled by a sharing scan signal on a sharing scan line to reduce the electric potential at the secondary pixel electrode; wherein the present-stage scan line and the sharing scan line are insulated from each other; and the scan signal on the present-stage scan line is configured to have a first positive-level pulse, and the sharing scan signal on the sharing scan line is configured to have a second positive-level pulse, the second positive-level pulse is later than the first positive-level pulse, and there is an interval of time between the first positive-level pulse and the second positive-level pulse.
According to an embodiment of the present disclosure, each of the primary switch, the secondary switch, and the sharing switch is a transistor switch including a control terminal, a first terminal, and a second terminal, the control terminal of the primary switch and the control terminal of the secondary switch are electrically connected to the present-stage scan line, and the control terminal of the sharing switch is electrically connected to the sharing scan line.
According to an embodiment of the present disclosure, the first terminal of the sharing switch is electrically connected to the secondary pixel electrode and the second terminal of the secondary switch, and the second terminal of the sharing switch is electrically connected to a common electrode.
According to an embodiment of the present disclosure, each of the primary pixel electrode and the secondary pixel electrode includes a liquid crystal capacitor and a storage capacitor, the liquid crystal capacitor of the secondary pixel electrode is electrically connected to the second terminal of the secondary switch and a first common electrode, the storage capacitor of the secondary pixel electrode is electrically connected to the second terminal of the secondary switch and a second common electrode, and the second terminal of the sharing switch is electrically connected to the second common electrode.
According to an embodiment of the present disclosure, the present-stage scan line and the sharing scan line are disposed in two metal material layers, and an insulation layer is disposed between the two metal material layers.
According to an embodiment of the present disclosure, the sharing switch is configured to be turned on to reduce the electric potential at the secondary pixel electrode.
According to an embodiment of the present disclosure, the pixel driving module is configured for blue sub-pixels, configured for red sub-pixels, or configured for blue and red sub-pixels.
To solve the above-mentioned problem, a second aspect of the present disclosure provides a pixel circuit, including: a plurality of pixel driving modules, wherein each of the pixel driving modules includes: a primary pixel control assembly including a primary switch and a primary pixel electrode, wherein the primary switch is configured to be controlled by a scan signal on a present-stage scan line to transfer a data signal on a data line to the primary pixel electrode; a secondary pixel control assembly including a secondary switch and a secondary pixel electrode, wherein the secondary switch is configured to be controlled by the scan signal on the present-stage scan line to transmit the data signal on the data line to the secondary pixel electrode; and a sharing switch configured to be controlled by a sharing scan signal on a sharing scan line to reduce the electric potential at the secondary pixel electrode.
According to an embodiment of the present disclosure, each of the primary switch, the secondary switch, and the sharing switch is a transistor switch including a control terminal, a first terminal, and a second terminal, the control terminal of the primary switch and the control terminal of the secondary switch are electrically connected to the present-stage scan line, and the control terminal of the sharing switch is electrically connected to the sharing scan line.
According to an embodiment of the present disclosure, the first terminal of the sharing switch is electrically connected to the secondary pixel electrode and the second terminal of the secondary switch, and the second terminal of the sharing switch is electrically connected to a common electrode.
According to an embodiment of the present disclosure, each of the primary pixel electrode and the secondary pixel electrode includes a liquid crystal capacitor and a storage capacitor, the liquid crystal capacitor of the secondary pixel electrode is electrically connected to the second terminal of the secondary switch and a first common electrode, the storage capacitor of the secondary pixel electrode is electrically connected to the second terminal of the secondary switch and a second common electrode, and the second terminal of the sharing switch is electrically connected to the second common electrode.
According to an embodiment of the present disclosure, the present-stage scan line and the sharing scan line are insulated from each other.
According to an embodiment of the present disclosure, the present-stage scan line and the sharing scan line are disposed in two metal material layers, and an insulation layer is disposed between the two metal material layers.
According to an embodiment of the present disclosure, the sharing switch is configured to be turned on to reduce the electric potential at the secondary pixel electrode.
According to an embodiment of the present disclosure, the scan signal on the present-stage scan line is configured to have a first positive-level pulse, and the sharing scan signal on the sharing scan line is configured to have a second positive-level pulse, the second positive-level pulse is later than the first positive-level pulse, and there is an interval of time between the first positive-level pulse and the second positive-level pulse.
According to an embodiment of the present disclosure, the pixel driving module is configured for blue sub-pixels, configured for red sub-pixels, or configured for blue and red sub-pixels.
To solve the above-mentioned problem, a third aspect of the present disclosure provides a display device including the above-mentioned pixel circuit.
In the pixel circuit and the display device of the present disclosure, the primary switch is configured to be controlled by the scan signal on the present-stage scan line to transmit the data signal on the data line to the primary pixel electrode, and the secondary switch is configured to be controlled by the scan signal on the present-stage scan line to transmit the data signal on the data line to the secondary pixel electrode, and the sharing switch is configured to be controlled by the sharing scan signal on the sharing scan line to reduce the electric potential at the secondary pixel electrode. Therefore, the electric potential at the primary pixel electrode is different from the electric potential at the secondary pixel electrode, which greatly increases an adjustable range of an LCS curve, and can simultaneously meet a low grayscale viewing-angle and high grayscale penetration requirements of the display device for proper adjustment to a difference of a liquid crystal deflection angle. Meanwhile, meeting the low grayscale viewing-angle and high grayscale penetration requirements of the display device can improve the viewing-angle and improve a large viewing-angle color shift effect of the liquid crystal display device.
To more clearly describe the technical solutions in the embodiments of the present disclosure, the accompanying drawings used in the description of the embodiments will be briefly introduced as follows. Obviously, the accompanying drawings in the following description are only some embodiments of the present disclosure. For those skilled in the art, other drawings can be obtained based on these drawings without creative work.
Technical solutions in the embodiments of the present disclosure will be clearly and completely described below in conjunction with accompanying drawings in embodiments of the present disclosure. Obviously, the described embodiments are only a part of the embodiments of the present disclosure, rather than all the embodiments. Based on the embodiments of the present disclosure, all other embodiments obtained by those skilled in the art without creative work shall fall within a protection scope of the present disclosure.
In the description herein, it should be understood that the terms such as “center,” “longitudinal,” “transverse,” “length,” “width,” “thickness,” “upper,” “lower,” “front,” “back,” “left,” “right,” “vertical,” “horizontal,” “top,” “bottom,” “inner,” “outer,” “clockwise,” and “counterclockwise” indicating a directional or positional relationship are based on orientation or positional relationship shown in the drawings and are only for the convenience of describing the present disclosure and simplifying the description and do not indicate or imply that the device or element referred to has a specific orientation and is constructed and operated in a specific orientation, and therefore it cannot be understood as a limitation to the present disclosure.
In the description herein, it should be understood that terms “first” and “second” are only used for descriptive purposes, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of indicated technical features. Therefore, features defined with “first” and “second” may explicitly or implicitly include one or more of the features. In the description of the present disclosure, “plurality” means two or more, unless otherwise specifically defined.
Many different embodiments or examples are provided herein to realize the different structures of the present disclosure. In order to simplify the disclosure of the present disclosure, components and configurations of specific examples are described below. Certainly, they are only examples, and the purpose is not limited to the present disclosure. In addition, the present disclosure may repeat reference numerals and/or reference letters in different examples, and this repetition is used for a purpose of simplification and clarity and itself does not indicate a relationship between the various embodiments and/or configurations discussed. In addition, examples of various specific processes and materials are provided herein, but those skilled in the art may be aware of applications of other processes and/or the use of other materials.
In the liquid crystal display panel, in order to improve a large viewing-angle color shift effect of a liquid crystal display device (such as a vertical alignment type), pixel units can be designed with low color shift (LCS).
For example, a first aspect of the present disclosure provides a pixel circuit that can be applied to a liquid crystal display device with a design for low color shift, such as a liquid crystal display device with a multi-domain (such as four-domain or eight-domain) structure, but is not limited to the description here.
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The following examples illustrate embodiments of the pixel circuit, but are not limited to the description here.
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It should be noted that the length of time that the electric potential at the secondary pixel electrode is at a high electric potential and at a low electric potential is adjustable (time division) so that low color shift (LCS) characteristic parameters (e.g., the ratio of the brightness of the secondary pixel electrode to the brightness of the primary pixel electrode) can be flexibly adjusted.
For example, the pixel brightness that the sharing switch is turned on ¼ frame later than the primary switch and the secondary switch is taken as an example,
In
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It should be noted that after the sharing switch is turned on, a voltage of the secondary pixel electrode is reduced to produce a brightness change, but a frequency of the brightness change is consistent with a refresh frequency of the display panel, in which a brightness change frequency of a flickering picture is not like at twice the refresh frequency of the display panel. Therefore, the brightness change after the sharing switch is turned on will not cause an obvious flicker.
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It should be noted that, as shown in
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In addition, a second aspect of the present disclosure provides a display device, such as a liquid crystal display device with a low color shift architecture. The display device includes the pixel circuit as described above. The implementation details of the pixel circuit can be referred to the embodiments mentioned above and will not be repeatedly described.
It should be noted that, in the pixel circuit and display device of the above-mentioned embodiments of the present disclosure, the time of turning on and off of the sharing switch is independently controlled, so that the display process of the sub-pixels has a time-division effect. As shown in
In the pixel circuit and the display device of the above embodiment of the present disclosure, the primary switch is configured to be controlled by the scan signal on the present-stage scan line to transmit the data signal on the data line to the primary pixel electrode, and the secondary switch is configured to be controlled by the scan signal on the present-stage scan line to transmit the data signal on the data line to the secondary pixel electrode, and the sharing switch is configured to be controlled by the sharing scan signal on the sharing scan line to reduce the electric potential at the secondary pixel electrode. Therefore, the electric potential at the primary pixel electrode is different from the electric potential at the secondary pixel electrode, in which the adjustable range of the LCS curve is greatly increased. Meanwhile, it can simultaneously meet a low grayscale viewing-angle and high grayscale penetration requirements of the display device for proper adjustment to a difference of a liquid crystal deflection angle. Meanwhile, meeting the low grayscale viewing-angle and high grayscale penetration requirements of the display device can improve the viewing-angle and improve a large viewing-angle color shift effect of the liquid crystal display device.
The embodiments of the present disclosure are described in detail above, and specific examples are used herein to illustrate the principles and implementation of the present disclosure. The descriptions of the above embodiments are only used to help understand the technical solutions and core ideas of the present disclosure. Those skilled in the art should understand that they can still modify the technical solutions recorded in the previous embodiments or equivalently replace some technical features. However, these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present disclosure.
Number | Date | Country | Kind |
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202111263202.1 | Oct 2021 | CN | national |
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PCT/CN2021/128761 | 11/4/2021 | WO |
Publishing Document | Publishing Date | Country | Kind |
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WO2023/070720 | 5/4/2023 | WO | A |
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Number | Date | Country | |
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20240013742 A1 | Jan 2024 | US |