This application claims priority of Chinese Patent Application No. 202010623020.X, filed on Jun. 30, 2020, the entire contents of which are hereby incorporated by reference.
The present disclosure generally relates to the field of display technology and, more particularly, relates to a display panel and a display device.
At present, mobile phones and other electronic products may face an increasing demand for a high screen-to-body ratio. Full-screen mobile phones may cover almost 70% of the mobile phone market. The screen-to-body ratio is a ratio of a screen area to a whole device area. A mobile phone with a higher screen-to-body ratio can bring users a better visual experience.
As a front side of a mobile phone needs to be placed with a camera, a light sensor and other components, there are usually two existing solutions. One solution is to design a non-display area at a top of the screen including, widely used “notched screen”, “water drop screen”, and “infinity-o screen”. The non-display area cannot display images. The other solution is to design a lifting camera. Although the lifting camera can achieve a full-screen display, it requires response time of a camera mechanism during shooting and the camera is unprotected. In addition, a lifting structure may be used, which may increase a thickness of the mobile phone and is not conducive to development of thin and light mobile phones.
One aspect of the present disclosure provides a display panel. The display panel includes a first display area and a second display area adjacent to the first display area. The second display area is multiplexed as a photosensitive element setting area. The first display area includes a plurality of first pixels arranged in an array. The second display area includes a plurality of second pixels arranged in an array. A first pixel of the plurality of first pixels includes a plurality of first sub-pixels. A second pixel of the plurality of second pixels includes a first area and a second area. The first area includes a plurality of second sub-pixels. An area of a first sub-pixel of the plurality of first sub-pixels is less than an area of a second sub-pixel of the plurality of second sub-pixels. An area of the first area is less than or equal to an area of the second area. The second area is in an open state when a photosensitive element is in operation. External light enters the photosensitive element through the second area. The second area is in a closed state when the display panel is in a full screen display. The plurality of second sub-pixels are configured to realize a normal display of the second display area.
Another aspect of the present disclosure provides a display device. The display device includes a display panel and a photosensitive element. The display panel includes a first display area and a second display area adjacent to the first display area. The second display area is multiplexed as a photosensitive element setting area. The first display area includes a plurality of first pixels arranged in an array. The second display area includes a plurality of second pixels arranged in an array. A first pixel of the plurality of first pixels includes a plurality of first sub-pixels. A second pixel of the plurality of second pixels includes a first area and a second area. The first area includes a plurality of second sub-pixels. An area of a first sub-pixel of the plurality of first sub-pixels is less than an area of a second sub-pixel of the plurality of second sub-pixels. An area of the first area is less than or equal to an area of the second area. The second area is in an open state when a photosensitive element is in operation. External light enters the photosensitive element through the second area. The second area is in a closed state when the display panel is in a full screen display. The plurality of second sub-pixels are configured to realize a normal display of the second display area. The photosensitive element is disposed in the second display area of the display panel and on a side away from a light emitting surface of the display panel, a photosensitive surface of the photosensitive element facing toward the display panel.
Other aspects or embodiments of the present disclosure can be understood by those skilled in the art in light of the description, the claims, and the drawings of the present disclosure.
The present disclosure is further described in detail below with reference to appending drawings and specific embodiments. It can be understood that the specific embodiments described here are only used to explain but not to limit the present disclosure. In addition, it should be noted that, for ease of description, the appending drawings only show part but not all of the structure related to the present disclosure.
The terms used in the embodiments of the present disclosure are only for the purpose of describing the embodiments but are not intended to limit the present disclosure. It should be noted that “upper”, “lower”, “left”, “right” and other directional words described in the embodiments of the present disclosure are described from the angle shown in the drawings, and should not be construed as limiting the embodiments of the present disclosure. In addition, in the context, it should be understood that when it is mentioned that an element is formed “on” or “under” another element, it can not only be directly formed “on” or “under” another element, but also indirectly formed “on” or “under” another element through an intermediate element. The terms “first”, “second”, etc. are only used for descriptive purposes, and do not indicate any order, quantity or importance, but are only used to distinguish different components. For those skilled in the art, specific meanings of the above terms in the present disclosure can be understood according to specific situations.
In one embodiment, a display panel includes a first display area and a second display area adjacent to the first display area. The second display area is multiplexed as a photosensitive element setting area. The first display area includes a plurality of first pixels arranged in an array. The second display area includes a plurality of second pixels arranged in an array. A first pixel of the plurality of first pixels includes a plurality of first sub-pixels. A second pixel of the plurality of second pixels includes a first area and a second area. The first area includes a plurality of second sub-pixels. An area of a first sub-pixel of the plurality of first sub-pixels is smaller than an area of a second sub-pixel of the plurality of second sub-pixels. An area of the first area is less than or equal to an area of the second area. The second area is in an open state when a photosensitive element is in operation, and external light enters the photosensitive element through the second area. The second area is in a closed state when the display panel is in a full screen display, and the second sub-pixel is configured to realize a normal display of the second display area.
In one embodiment, the display panel is suitable for display devices that require photosensitive elements under the screen. A photosensitive element can be a camera, a plurality of cameras, or any suitable elements. For illustrative purposes, following embodiments all take a camera as an example of the photosensitive element. Due to high light requirements of the camera, the existing technology generally sets a hollowed-out area at an edge or inside of the display area. The hollowed-out area cannot be displayed and is difficult to realize a true full-screen design. Since an aperture of the camera to receive light is generally set to be circular,
In a specific implementation process, a shape of the second display area 20 can be set to a regular shape such as a rectangle. A top corner of the rectangle can be a right angle or an arc-shaped corner. The shape of the second display area 20 can also be set to a trapezoid. The trapezoid can be a regular trapezoid or an inverted trapezoid. A top angle of the trapezoid can be a regular angle or an arc angle. The shape of the second display area 20 can also be set to an irregular shape such as a drop shape. In practical applications, the shape of the second display area 20 can be designed according to shapes of elements arranged in the second display area 20, which is not limited herein.
In a specific implementation process, an area of the second display area 20 is smaller than an area of the first display area 10. In practical applications, the second display area 20 can be designed according to elements arranged in the second display area 20, which is not limited herein.
A relative positional relationship and shape of the first display area 10 and the second display area 20 are not limited and can be specifically set according to a screen design of a display device. Taking a mobile phone as an example, the second display area 20 can be set in an upper left corner of the display area, or the second display area 20 can be set in an upper right corner of the display area. By setting a camera in a corner, the second display area 20 may be configured to display time, weather, information reminders and other simple and quick function services.
Referring to
According to technical solutions of the embodiments of the present disclosure, by arranging a plurality of second pixels in an array in the second display area, a normal display of the second display area is realized, a screen-to-body ratio of the display panel is increased, and a full-screen display is realized. By setting the second area in the plurality of second pixels, the second area is in an open state when a photosensitive element (such as a camera) is in operation, and can transmit external light, thereby being received by the photosensitive element. When the display panel is normally displayed, the second area is in a closed state to avoid affecting display of the second display area, thereby taking into account a normal display and transmittance of the second display area, and increasing screen-to-body ratio of the display panel.
Optionally, continuing to refer to
In one embodiment, a first direction x perpendicular to a second direction y is taken as an example. In the following, the first direction x is a row direction of a pixel array, and the second direction y is a column direction of the pixel array. The display panel may be a liquid crystal display panel. Red sub-pixels R, green sub-pixels G, and blue sub-pixels B can be formed by a red filter, a green filter, and a blue filter respectively. Optionally, the second area 23 includes white sub-pixels. Each of the plurality of first sub-areas 231 in
Based on similar design ideas, the second display area can be designed in other pixel settings. Exemplarily,
In one embodiment, each second sub-area 232 forms a white sub-pixel W, and a circular setting of RGWWBW is formed along the first direction x. In the setting, there is a white sub-pixel W between every two color sub-pixels (R, G, B), which is equivalent to a setting of RGB striped pixels arranged in sequence. A display can be more uniform. In other embodiments, there may be more pixel settings. For example, along the first direction x, it may be RGWBW circular setting, RGWWB circular setting, RWGBW circular setting, RWGB circular setting, RGWB circular setting, etc.
Each second sub-pixel 221 shown in
A pixel setting shown in
Optionally, second sub-pixels include red sub-pixels, green sub-pixels, and blue sub-pixels. In two adjacently arranged second pixels, positions of first areas in the two adjacently arranged second pixels are different.
Exemplarily, like a setting of pixels in the second display area in
Optionally, a length of the second area in the first direction changes non-periodically, and/or a length of the second area in the second direction changes non-periodically.
When the camera is in operation, the white sub-pixels in the second area form light-transmitting areas. The red sub-pixels, green sub-pixels, and blue sub-pixels in the first area form non-light-transmitting areas. When the light-transmitting areas and the non-light-transmitting areas are arranged at intervals, a grating structure is formed. When light is transmitted through the light-transmitting areas, multi-order diffraction fringes are formed, which affects imaging effect of the camera. Therefore, a size of the second area can be set to change non-periodically along a row direction and/or a column direction, which can reduce diffraction of light in the transparent area and improve imaging effect of the camera.
Exemplarily, [0014]
Optionally, in a display panel in one embodiment, first sub-pixels in first pixels and the second sub-pixels in second pixels synchronously display pictures, thereby realizing synchronous display of a first display area and a second display area. avoid designing a separate driving circuit for the second display area and simplifying cost of display panel design.
Optionally, a second area includes pixel electrodes. A second display area also includes a conductive metal layer. The conductive metal layer is electrically connected to all of the pixel electrodes in the second area, and is configured to control the second area to be in an open state when a photosensitive element is in operation, and to control the second area to be in a closed state when a display panel is in a full screen display.
Each sub-pixel in a liquid crystal display panel has a corresponding pixel electrode and a common electrode. Different voltages are applied to pixel electrodes through a pixel circuit to control deflections of liquid crystal molecules to achieve different grayscale displays. In order to simplify structure of a display panel, a second area may not be provided with a pixel circuit, and all of the pixel electrodes corresponding to the second area are connected by a conductive metal layer, so that all white sub-pixels in the second pixel in a same row are regarded as same sub-pixels. An overall control of the white sub-pixels in all rows, only includes two states of on (transparent) and off (opaque), thus simplifying a control method of a second display area. Exemplarily,
Optionally, a first pixel includes first sub-pixel circuits corresponding to first sub-pixels. The first sub-pixel circuits are configured to control the first sub-pixels to emit light. A second pixel includes second sub-pixel circuits corresponding to the second sub-pixels. The second sub-pixels are configured to control the second sub-pixels to emit light. The second pixels also include third sub-pixel circuits corresponding to a second area. The third sub-pixel circuits are configured to control light transmittance of the second area according to light output brightness of the second sub-pixels.
Exemplarily,
When pixel circuits are also designed in the second area, in existing designs, a larger area matrix need to be designed to shield the pixel circuits and metal traces, resulting in a decrease in pixel aperture ratio and a smaller light-transmitting area formed in the second area. Therefore, the present disclosure also improves pixel circuit structure and matrix shape to increase aperture ratio.
Optionally, in two adjacent second pixels, second sub-pixel circuits of two adjacent second sub-pixels are arranged adjacently and aligned along a third direction. Or a second sub-pixel circuit of the adjacent second sub-pixels and a third sub-pixel circuit of a second area are arranged adjacently and aligned along a third direction. The third direction is parallel to a column direction or row direction of a second. A display panel also includes light-shielding layers. A projection of a light-shielding layer on a plane where the display panel is located completely covers the second sub-pixel circuit and the third sub-pixel circuit.
Exemplarily,
Optionally, a distance between an edge of the light-shielding layer and an edge of a corresponding sub-pixel circuit is less than or equal to 2 μm.
By setting the distance between an edge of the light-shielding layer and an edge of the corresponding sub-pixel circuit to be less than or equal to 2 μm, it can not only ensure that the light-shielding layer completely shields corresponding sub-pixels, but also ensure a smaller light-shielding layer area and improve aperture ratio of the second display area.
In one embodiment, pixel circuits of two adjacent color sub-pixels or adjacent one color sub-pixel and one white sub-pixel are aligned in a row direction or a column direction, so as to share a light-shielding layer with a smaller area and avoid making the light-shielding layer into a whole shape to reduce aperture ratio. In other embodiments, pixel circuits of two adjacent white sub-pixels may be aligned in a row direction or a column direction. In a specific implementation, the pixel circuits can be designed according to an actual structure.
Optionally, a second sub-pixel circuit and a third sub-pixel circuits both include thin film transistors. A distance between active layers of the thin film transistors in two adjacent sub-pixel circuits is 2 μm to 3 μm.
Exemplarily,
A structure of two second sub-pixel circuits aligned in a row direction or column direction is a same as a structure shown in
Optionally, in two adjacent second pixels, second sub-pixel circuits of two adjacent second sub-pixels are arranged adjacently and are misaligned along a third direction. Or a second sub-pixel circuit of the adjacent second sub-pixels and a third sub-pixel circuit of a second area are arranged adjacently and is misaligned along the third direction. The third direction is parallel to a column direction or row direction of a second pixel array. A display panel also includes light-shielding layers. A projection of a light-shielding layer on a plane where the display panel is located completely covers the second sub-pixel circuit and the third sub-pixel circuit.
Exemplarily,
Optionally, a second sub-pixel circuit and a third sub-pixel circuit both include thin film transistors. A distance between active layers of the thin film transistors in two adjacent sub-pixel circuits is 1.5 μm to 2.5 μm.
A structure of two second sub-pixel circuits that staggered in a row direction or a column direction is a same as a structure shown in
Optionally, the photosensitive element 300 may be a camera or a plurality of cameras arranged in an array. Since the display device includes any display panel provided by the above embodiments, it has a same and corresponding technical effect of the display panel.
The above are only preferred embodiments of the present disclosure and applied technical principles. The present disclosure is not limited to the specific embodiments described herein. Those skilled in the art can make various obvious changes, re-adjustments, and substitutions without departing from the protection scope of the present disclosure. Although the present disclosure has been described in detail through the above embodiments, the present disclosure is not only limited to the above embodiments and may include other equivalent embodiments without departing from concepts of the present disclosure. The scope of the present disclosure is determined by the scope of the appended claims.
Number | Date | Country | Kind |
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202010623020.X | Jun 2020 | CN | national |
Number | Name | Date | Kind |
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20190108802 | Imai | Apr 2019 | A1 |
20190108806 | Kimura | Apr 2019 | A1 |
Number | Date | Country |
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110416275 | Nov 2019 | CN |
110416276 | Nov 2019 | CN |
Number | Date | Country | |
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20210407445 A1 | Dec 2021 | US |