The present disclosure claims priority to Chinese Patent Application No. 202011643652.9, filed on Dec. 31, 2020, the content of which is incorporated herein by reference in its entirety.
The present disclosure relates to the field of display technology and, in particular, to a display panel, a display device, and a display method.
With the increase of users' demand for diversified use of display devices and emergence of design requirements for high screen-to-body ratios of display devices, a light-collecting module is provided on a back side of a display area of the display panel. For example, an under-screen camera technology provides a camera on the back side of the display area in the display panel. The back side is a side facing away from a light emission side of the display panel. With such design, with increasing the screen-to-body ratio of the display device, higher requirements for light transmittance at the light-collecting module in the display panel are put forward. Moreover, on this basis, how to make a position where the light-collecting module is correspondingly provided in the display panel to have a better display effect has also become a research focus of relevant technicians.
In one aspect, an embodiment of the present disclosure provides a display panel. The display panel has a first display area and a second display area, and the second display area at least partially surrounds the first display area. The display panel includes a plurality of first pixel units arranged in the first display area and a plurality of second pixel units arranged in the second display area. A density of the plurality of first pixel units is smaller than a density of the plurality of second pixel units. Each of the plurality of first pixel units includes a first sub-pixel row and a second sub-pixel row, the first sub-pixel row includes a plurality of sub-pixels of different colors arranged along a first direction, and the second sub-pixel row includes first high-transmittance sub-pixels. The first sub-pixel row and the second sub-pixel row are arranged along a second direction, and the first direction intersects the second direction. In the first display area, at least two of the plurality of first pixel units are arranged along the second direction to form one of first pixel unit columns, and the first pixel unit columns are arranged along the first direction. In one of the first pixel unit columns, the first sub-pixel rows and the second sub-pixel rows of at least two of the plurality of first pixel units are alternately arranged. Two closest first sub-pixel rows of the first sub-pixel rows of the plurality of first pixel units are respectively located in two adjacent ones of the first pixel unit columns and are staggered from each other in the first direction.
In another aspect, an embodiment of the present disclosure provides a display device. The display device includes a light-collecting module and a display panel, and an orthographic projection of the light-collecting module on a plane of the display panel is located in the first display area. The display panel has a first display area and a second display area, and the second display area at least partially surrounds the first display area. The display panel includes a plurality of first pixel units arranged in the first display area and a plurality of second pixel units arranged in the second display area. A density of the plurality of first pixel units is smaller than a density of the plurality of second pixel units. Each of the plurality of first pixel units includes a first sub-pixel row and a second sub-pixel row, the first sub-pixel row includes a plurality of sub-pixels of different colors arranged along a first direction, and the second sub-pixel row includes first high-transmittance sub-pixels. The first sub-pixel row and the second sub-pixel row are arranged along a second direction, and the first direction intersects the second direction. In the first display area, at least two of the plurality of first pixel units are arranged along the second direction to form one of first pixel unit columns, and the first pixel unit columns are arranged along the first direction. In one of the first pixel unit columns, the first sub-pixel rows and the second sub-pixel rows of at least two of the plurality of first pixel units are alternately arranged. Two closest first sub-pixel rows of the first sub-pixel rows of the plurality of first pixel units are respectively located in two adjacent ones of the first pixel unit columns and are staggered from each other in the first direction.
In still another aspect, an embodiment of the present disclosure provides a driving method applied to a display panel, and the display panel has a display mode and a light-collecting mode. The display panel has a first display area and a second display area, and the second display area at least partially surrounds the first display area. The display panel includes a plurality of first pixel units arranged in the first display area and a plurality of second pixel units arranged in the second display area. A density of the plurality of first pixel units is smaller than a density of the plurality of second pixel units. Each of the plurality of first pixel units includes a first sub-pixel row and a second sub-pixel row, the first sub-pixel row includes a plurality of sub-pixels of different colors arranged along a first direction, and the second sub-pixel row includes first high-transmittance sub-pixels. The first sub-pixel row and the second sub-pixel row are arranged along a second direction, and the first direction intersects the second direction. In the first display area, at least two of the plurality of first pixel units are arranged along the second direction to form one of first pixel unit columns, and the first pixel unit columns are arranged along the first direction. In one of the first pixel unit columns, the first sub-pixel rows and the second sub-pixel rows of at least two of the plurality of first pixel units are alternately arranged. Two closest first sub-pixel rows of the first sub-pixel rows of the plurality of first pixel units are respectively located in two adjacent ones of the first pixel unit columns and are staggered from each other in the first direction. The driving method includes: in the light-collecting mode, controlling at least the second sub-pixel row in each of the plurality of first pixel units to be lit up; and in the display mode, controlling the plurality of first pixel units to be lit up.
In order to more clearly illustrate the technical solutions in the embodiments of the present disclosure or the related art, the accompanying drawings used in the embodiments or the related art are briefly described below. The drawings described below are merely some embodiments of the present disclosure. Based on these drawings, those of ordinary skill in the art can obtain other drawings.
In order to better understand technical solutions of the present disclosure, the embodiments of the present disclosure are described in details with reference to the drawings.
It should be clear that the described embodiments are merely part of the embodiments of the present disclosure rather than all of the embodiments. Those skilled in the art can obtain other embodiments.
The terms used in the embodiments of the present disclosure are merely for the purpose of describing particular embodiments and not intended to limit the present disclosure. Unless otherwise noted in the context, the singular form expressions “a”, “an”, “the” and “said” used in the embodiments and appended claims of the present disclosure are also intended to represent a plural form.
It should be understood that the term “and/or” as used herein is merely an association describing the associated object, indicating that there may be three relationships. For example, A and/or B may indicate three cases: A alone; A and B; B alone. In addition, a character “/” herein generally indicates that the contextual objects are in an “or” relationship.
It should be understood that although the terms first, second, third, etc. can be used to describe pixel units in the embodiments of the present disclosure, these pixel units should not be limited to these terms. These terms are only used to distinguish pixel units located in different areas from each other. For example, without departing from the scope of the embodiments of the present disclosure, the first pixel unit can also be referred to as the second pixel unit, and similarly, the second pixel unit can also be referred to as the first pixel unit.
An embodiment of the present disclosure provides a display panel.
A plurality of first pixel units 31 is provided in the first display area 1. Exemplarily, the plurality of the first pixel units 31 can be arranged in an array along a first direction x and a second direction y in the first display area 1. The first direction x and the second direction y intersect. A plurality of second pixel units 32 is provided in the second display area 2. The plurality of the second pixel units 32 can be arranged in an array along the first direction x and the second direction y in the second display area 2.
In an embodiment of the present disclosure, a density of the first pixel unit 31 is smaller than a density of the second pixel unit 32. The density of the pixel unit (i.e., Pixels Per Inch, PPI for short) is the number of the pixel units per inch of length in the display panel. The density of the first pixel units 31 is the number of the first pixel units 31 per inch of length in the first display area 1, and the density of the second pixel units 32 is the number of the second pixel units 32 per inch of length in the second display area 2.
As shown in
The second sub-pixel row 312 includes first high-transmittance sub-pixels 3120. The light transmittance of the first high-transmittance sub-pixel 3120 is greater than the light transmittance of the first-color sub-pixel 3011, the light transmittance of the second-color sub-pixel 3021, and the light transmittance of the third-color sub-pixel 3031. In an embodiment, the first high-transmittance sub-pixel 3120 can be a white sub-pixel that emits white light.
In an embodiment of the present disclosure, in one of the first pixel units 31, the number of sub-pixels in the first sub-pixel row 311 is equal to the number of sub-pixels in the second sub-pixel row 312. As shown in
The second pixel unit 32 includes a plurality of sub-pixels of different colors. Types of colors of the sub-pixels included in the second pixel unit 32 can be the same as types of the colors of the sub-pixels included in the first sub-pixel row 311. In
In an embodiment of the present disclosure, first high-transmittance sub-pixels can also be provided in the second pixel unit 32, in order to increase the brightness of the second display area 2 and lower power consumption of the display panel when the second display area 2 displays. In an embodiment, the second pixel unit 32 is not provided with first high-transmittance sub-pixels, in order to increase the density of the second pixel unit 32 in the second display area 2 when sizes of various sub-pixels are constant, making a display image in the second display area 2 more delicate.
Continuing to refer to
In an embodiment, the display panel provided by the embodiment of the present disclosure can be a liquid crystal display panel. Each of the sub-pixels above includes a pixel electrode, a common electrode, a thin film transistor (TFT), and a color filter (CF) of a corresponding color. The display panel further includes scanning lines and data lines. The scanning line is electrically connected to a gate of the TFT, the data line is electrically connected to a source of the TFT, and the pixel electrode is electrically connected to a drain of the TFT. When the sub-pixel is lit, the TFT of the sub-pixel is turned on. A data voltage required for the sub-pixel to be lit up is applied to the corresponding pixel electrode through the data line. An electric field is formed between the pixel electrode and the common electrode. Under the electric field formed between the pixel electrode and the common electrode, the liquid crystal is deflected, to adjust the intensity of the light emitted from the display panel. The light is emitted through the color filter of the corresponding color, enabling the display panel to realize full-color display. The pixel electrode and the TFT are located in an array substrate of the display panel, and the color filter is located in a color film substrate. The common electrode can be located in the color film substrate or in the array substrate, and its position can be set according to a display mode of the display panel, which is not limited in the embodiment of the present disclosure.
According to functions of the display panel, an embodiment of the present disclosure can be provided with a corresponding light-collecting module corresponding to the first display area 1 of the display panel. The light-collecting module can be arranged on a side of the array substrate 41 facing away from the color film substrate 42. For example, the light-collecting module can include a camera module or a fingerprint recognition module. Correspondingly, working modes of the display panel provided by an embodiment of the present disclosure can include a display mode and a light-collecting mode:
In the light-collecting mode, at least the second sub-pixel row 312 in the first pixel unit 31 is controlled to be lit up. When the first high-transmission sub-pixel 3120 in the second sub-pixel row 312 is lit, a deflection angle of the liquid crystal corresponding to the first high-transmission sub-pixel 3120 allows light to pass. For example, when the light-collecting module is a camera module, the light-collecting mode can be a camera mode in which the camera module is turned on. In the camera mode, ambient light can enter the camera module provided corresponding to the first display area 1 through the liquid crystal 40 in an area where the first high-transmittance sub-pixel 3120 is located. When the light-collecting module is the fingerprint recognition module, after light emitted by a fingerprint recognition light source is reflected by a finger on a light emission side of the display panel, reflected light can enter the fingerprint recognition module provided corresponding to the first display area 1 through the liquid crystal 40 in the area where the first high-transmittance sub-pixel 3120 is located.
In the display mode, the first pixel unit 31 and the second pixel unit 32 are controlled to be lit up so that both the first display area 1 and the second display area 2 can be used for display. When the first display area 1 is used for display, the first display area 1 and the second display area 2 can jointly display a complete image. In an embodiment, the first display area 1 and the second display area 2 can display independently. For example, the first display area 1 can be used to display information such as date, time, and call reminder.
It can be seen that in the embodiment of the present disclosure, the first display area 1 can not only transmit light to meet light collecting requirements of the light-collecting modules such as the camera module or the fingerprint recognition module, but also perform normal image display. That is, the first display area 1 can have both display and light collecting functions, which enriches user experiences while also increasing a screen-to-body ratio of the display panel.
In the embodiment of the present disclosure, the first high-transmittance sub-pixels 3120 are provided in the first display area 1 and the density of the first pixel unit 31 is lower than the density of the second pixel unit 32, which can increase the light transmittance of the first display area 1 and then increase the light intensity of light entering the light-collecting module provided corresponding to the first display area 1. When the light-collecting module is the camera module, such configuration can improve a camera effect of the camera module. When the light-collecting module is the fingerprint recognition module, such configuration can improve recognition sensitivity of the fingerprint recognition module.
In the first display area 1, the embodiment of the present disclosure makes two first sub-pixel rows 311 that belong to two adjacent first pixel unit columns 310 and are closest be staggered from each other in the first direction x. For example, in the first direction x, the first sub-pixel row 311 and the second sub-pixel row 312 including the first high-transmittance sub-pixels 3120 can be alternately arranged, to avoid the plurality of the first sub-pixel rows 311 from being continuously arranged in the first display area 1, and to avoid the plurality of the second sub-pixel rows 312 from being continuously arranged in the first display area 1. When the first display area 1 displays, in a case where at least some of the sub-pixels in the first sub-pixel row 311 are lit and the first high-transmittance sub-pixel 3120 in the second sub-pixel row 312 is not lit, the arrangement provided in the embodiment of the present disclosure can prevent dark spots formed by the first high-transmittance sub-pixels 3120 from being continuously arranged in the first display area 1, to avoid that the dark spots formed by the first high-transmittance sub-pixels 3120 are too concentrated to cause human eyes to observe obvious dark lines. Moreover, such arrangement can also prevent bright spots formed by the first sub-pixel rows 311 from being continuously arranged in the first display area 1, to avoid that the bright spots formed by the first sub-pixel row 311 are too concentrated to cause the human eyes to observe obvious color fringing. That is, the arrangement in the embodiment of the present disclosure can also ensure the first display area 1 to have a higher light transmittance and cause the first display area 1 to have a better display effect while enabling the first display area 1 to have both display and lighting functions to enrich the user experience and increase the screen-to-body ratio of the display panel.
In an embodiment, in order to increase the area of the first high-transmittance sub-pixel 3120, a length Lx of the first high transmittance sub-pixel 3120 along the first direction x is greater than a length of each sub-pixel in the second pixel unit 32 along the first direction x. In an embodiment, in order to increase the area of the first high-transmittance sub-pixel 3120, a length Ly of the first high-transmittance sub-pixel 3120 in the second direction y is greater than a length of each sub-pixel in the second pixel unit 32 in the second direction y. In an embodiment, in order to increase the area of the first high-transmittance sub-pixel 3120, a length Lx of the high transmittance sub-pixel 3120 along the first direction x is greater than a length of each sub-pixel in the second pixel unit 32 along the first direction x, and a length Ly of the first high-transmittance sub-pixel 3120 in the second direction y is greater than a length of each sub-pixel in the second pixel unit 32 in the second direction y.
In an embodiment of the present disclosure, as shown in
Illustratively, in one first pixel unit 31, two sub-pixels that are respectively located in the first sub-pixel row 311 and the second sub-pixel row 312 are adjacent to each other along the second direction y and aligned with each other. Taking
When providing the data lines located in the first display area 1, three data lines can be provided corresponding to the first pixel unit 31: a first data line of the three data lines connects the first-color sub-pixel 3011 and the first high-transmittance sub-pixel 3120 adjacent thereto, a second data line of the three data lines connects the second-color sub-pixel 3021 and the first high-transmittance sub-pixel 3120 adjacent thereto, and a third data line of the three data lines connects the third-color sub-pixel 3031 and the first high-transmittance sub-pixel 3120 adjacent thereto. The first high-transmittance sub-pixel 3120 is aligned with its adjacent color sub-pixel, and the three data lines can be as arranged in a straight line to avoid winding of the data lines. With such configuration, in one aspect, the length of the data line can be shortened, to reduce an adverse effect of signal delay on the display of the first display area. In another aspect, since a black matrix is provided to cover the data line, and the area of the black matrix can be reduced when the length of the data line is reduced, which is beneficial to increase an aperture ratio of the sub-pixel.
In an embodiment of the present disclosure, the density PPI1 of the first pixel unit 31 satisfies 100<PPI1<300. The embodiment of the present disclosure, by setting PPI1<300, the light transmittance of the first display area 1 can be ensured, and a light collecting effect of the light-collecting module can be ensured. The embodiment of the present disclosure, by setting PPI1>100, a pixel pitch between adjacent first pixel units 31 is not too large, such that when the first display area 1 displays, the fineness of the display image of the first display area 1 can be ensured.
In an embodiment, the density PPI2 of the second pixel unit 32 satisfies PPI2>300, so that the second display area 2 can display a more delicate image.
In an embodiment of the present disclosure, along the first direction x, the number of the first pixel units 31 in a unit length of the first pixel units 31 in the same row is a1, and the number of the second pixel units 32 in a unit length of the second pixel units 32 in the same row is b1; along the second direction y, the number of the first pixel units 31 in the unit length of the first pixel units 31 in the same column is a2, and the number of the second pixel units 32 in the unit length of the second pixel units 32 in the same column is b2. In an embodiment, a1 and b1 can satisfy: 1:4<a1:b1<1. In an embodiment, a2 and b2 can satisfy: 1:4<a2:b2<1. In an embodiment, a1 and b1 can satisfy: 1:4<a1:b1<1, and a2 and b2 can satisfy: 1:4<a2:b2<1. With such configuration, it can be ensured that the density of the first pixel unit 31 is smaller than the density of the second pixel unit 32, and the density PPI1 of the first pixel unit 31 can satisfy 100<PPI1<300.
As shown in
It should be noted that the pixel designs shown in
In an embodiment, in order to make a1:b1<1, that is, to make the number of the first pixel units 31 in the unit length of the first pixel units 31 of the same row smaller than the number of the second pixel units 32 in the unit length of the second pixel units 32 in the same row, as shown in
In order to satisfy a2:b2<1, that is, to make the number of the first pixel units 31 in the unit length of the first pixel units 31 in the same column smaller than the number of the second pixel units 32 in the unit length of the second pixel units 32 in the same column, as shown in
In a manufacturing process of the liquid crystal display panel, as shown in
In an embodiment of the present disclosure, when the first color is red, the second color is green, and the third color is blue, that is, when multiple sub-pixels of different colors include the red sub-pixel, the green sub-pixel, and the blue sub-pixel, an area of at least one of the red sub-pixel or the green sub-pixel is smaller than an area of the blue sub-pixel in the first pixel unit 31.
In an embodiment, to reduce the area of the red sub-pixel 3011, the length of the red sub-pixel 3011 along the first direction x is smaller than the length of the blue sub-pixel 3031 along the first direction x. In an embodiment, to reduce the area of the red sub-pixel 3011, the length of the red sub-pixel 3011 along the second direction y is smaller than the length of the blue sub-pixel 3031 along the second direction y. In an embodiment, to reduce the area of the red sub-pixel 3011, the length of the red sub-pixel 3011 along the first direction x is smaller than the length of the blue sub-pixel 3031 along the first direction x, and the length of the red sub-pixel 3011 along the second direction y is smaller than the length of the blue sub-pixel 3031 along the second direction y. In an embodiment, to reduce the area of the green sub-pixel 3021, the length of the green sub-pixel 3021 along the first direction x is smaller than the length of the blue sub-pixel 3031 along the first direction x. In an embodiment, to reduce the area of the green sub-pixel 3021, the length of the green sub-pixel 3021 in the second direction y is smaller than the length of the blue sub-pixel 3031 in the second direction y. In an embodiment, to reduce the area of the green sub-pixel 3021, the length of the green sub-pixel 3021 along the first direction x is smaller than the length of the blue sub-pixel 3031 along the first direction x, and the length of the green sub-pixel 3021 in the second direction y is smaller than the length of the blue sub-pixel 3031 in the second direction y. In an embodiment, the area of the red sub-pixel 3011 and the area of the green sub-pixel 3021 are reduced, the area of the red sub-pixel 3011 is reduced according to the aforementioned embodiment and will not be repeated herein, and the area of the green sub-pixel 3021 is reduced according to the aforementioned embodiment and will not be repeated herein.
In an embodiment, in the first pixel unit 31, the lengths of the blue sub-pixel 3031 in the first direction x and the second direction y are both smaller than or equal to 65 Since the light transmittance of the blue color filter forming the blue sub-pixel 3031 is low, during display, if the lengths of the blue sub-pixel 3031 in the first direction x and the second direction y are too large, visible dark spots are likely to occur at a position where the blue sub-pixel 3031 is located due to the intensity of the blue light being smaller than the intensity of the red light and the intensity of the green light. The embodiment of the present disclosure, by controlling the lengths of the blue sub-pixel 3031 in the first direction x and the second direction y to be within the range of smaller than or equal to 65 an area of possible dark spots can be reduced, thereby avoiding that the dark spots are observed by the human eye.
In an embodiment of the present disclosure, as shown in
In conjunction with
Along the second direction y, the data driving circuit 5 is located on a side of the second display area 2 facing away from the first display area 1. In an embodiment of the present disclosure, the data line in the first display area 1 can be electrically connected to the data driving circuit 5 through the data line located in the second display area 2. That is, data driving signals are provided to the first display area 1 and the second display area 2 by one data driving circuit 5, which can reduce the number of the data driving circuits 5 in the display panel.
When providing sub-pixels in the first display area 1 and the second display area 2, as shown in
In the second display area 2, the first-color sub-pixels 3012 can be arranged along the second direction y to form a fourth pixel column 3040, the second-color sub-pixels 3022 can be arranged along the second direction y to a fifth pixel column 3050, and the third-color sub-pixels 3032 can be arranged along the second direction y to form a sixth pixel column 3060, and the data lines located in the second display area 2 are respectively electrically connected to the plurality of the pixel columns.
When connecting the data line in the first display area 1 and the data line in the second display area 2, embodiments of the present disclosure provide multiple ways.
In an embodiment, as shown in
It should be noted that in the liquid crystal display panel, the area where the sub-pixel is located, that is, the sides of the sub-pixels can be defined by the black matrix provided corresponding to the sub-pixel. As shown in
It can be seen that the embodiment of the present disclosure, by making the extension line of the first side 61 pass through the second side 62 and then making the first data line 51 be electrically connected to the first-color sub-pixels located in the first display area 1 and the second display area 2, the first data line 51 can be set as a straight line extending in the second direction y to avoid winding the first data line 51 while reducing the power consumption of the display panel. With such configuration, in one aspect, it can be avoided that the length of the first data line 51 is too long, which can reduce delay and attenuation of the data signal when it is transmitted on the first data line 51. In another aspect, an area of the black matrix 420 used to cover the first data line 51 can also be reduced, which can increase the aperture ratio of the sub-pixels.
As shown in
In an embodiment, as shown in
In an embodiment, as shown in
As shown in
As shown in
In an embodiment, the third data line 53 includes a first data sub-line 531, a second data sub-line 532, and a data connection line 530, the first data sub-line 531 is located in the first display area 1, the second data sub-line 532 is located in the second display area 2, and both the first data sub-line 531 and the second data sub-line 532 extend along the second direction y. The data connection line 530 connects the first data sub-line 531 with the second data sub-line 532, and an extension direction of the data connection line 530 is different from that of the first data sub-line 531 and that of the second data sub-line 532. The first data sub-line 531 is located on the fifth side 651 of the third-color sub-pixel 3031 in the first display area 1, and the second data sub-line 532 is located on the fifth side 652 of the third-color sub-pixel 3032 in the second display area 2. As shown in
As shown in
In an embodiment, when connecting the data line in the first display area 1 and the data line in the second display area 2, sub-pixels of different colors respectively located in the first display area 1 and the second display area 2 are connected to the same data line.
As shown in
It can be seen that with such configuration, the fourth data line 54 can be arranged as a straight line extending along the second direction y, to avoid winding of the fourth data line 54 while causing the fourth data line 54 to drive the third-color sub-pixel 3031 in the first display area 1 and the first-color sub-pixel 3012 in the second display area 2. In one aspect, it can avoid making a length of the fourth data line 54 too long, thereby reducing the delay and attenuation of the data signal when it is transmitted on the fourth data line 54. In another aspect, the area of the black matrix 420 for covering the fourth data line 54 can also be reduced, which increases the aperture ratio of the sub-pixels.
It should be noted that
As shown in
As shown in
As shown in
As shown in
As shown in
In an embodiment, the display panel provided by the embodiment of the present disclosure further has a transition area, and along the first direction x, the transition area is located between the first display area 1 and the second display area 2. In an embodiment, the display panel provided by the embodiment of the present disclosure further has a transition area, and along the second direction y, the transition area is located between the first display area 1 and the second display area 2. In an embodiment, the display panel provided by the embodiment of the present disclosure further has a transition area, and along the first direction x and the second direction y, the transition area is located between the first display area 1 and the second display area 2. A plurality of third pixel units are provided in the transition area. The density of the first pixel unit 31 is smaller than a density of the third pixel unit, and the density of the third pixel unit is smaller than the density of the second pixel unit 32.
In the transition area 3, the third pixel units 33 are arranged along the second direction y to form a third pixel unit column 330, and the third pixel unit columns 330 are arranged along the first direction x; in one third pixel unit column 330, the third sub-pixel rows 331 and the fourth sub-pixel rows 332 are alternately arranged; and two third sub-pixel rows 331 that belong to two adjacent third pixel unit columns 330 and are closest are staggered from each other in the first direction x.
Along the first direction x, the number of the third pixel units in a unit length in the transition area is c1. Along the second direction y, the number of the third pixel units in a unit length in the transition area is c2. In an embodiment of the present disclosure, 1:4<a1:b1<c1:b1≤1, so that the density of the third pixel unit 33 in the transition area 3 is between the density of the first pixel unit in the first display area 1 and the density of the second pixel unit in the second display area 2, and when both the first display area 1 and the second display area 2 are used for display, the setting of the transition area 3 can prevent an obvious boundary from appearing between the first display area 1 and the second display area 2, thereby making the display image form a smoother transition between the two. In an embodiment of the present disclosure, 1:4<a2:b2≤c2:b2≤1. In an embodiment of the present disclosure, 1:4<a1:b1≤c1:b1≤1, and, 1:4<a2:b2≤c2:b2≤1,
Exemplarily, along a direction from the first display area 1 to the second display area 2, a ratio of c1:b1 gradually increases, so as to improve the transition of the display image between the first display area 1 and the second display area 2 to be smoother. Exemplarily, along the direction from the first display area 1 to the second display area 2, a ration of c2:b2 gradually increases, so as to improve the transition of the display image between the first display area 1 and the second display area 2 to be smoother. Exemplarily, along the direction from the first display area 1 to the second display area 2, the ratio of c1:b1 gradually increases, and the ration of c2:b2 gradually increases, so as to improve the transition of the display image between the first display area 1 and the second display area 2 to be smoother.
It should be noted that shapes and areas of the first display area 1 and the second display area 2 shown in
In addition,
An embodiment of the present disclosure also provides a display device.
An embodiment of the present disclosure also provides a driving method applied to the above-mentioned display panel, and the display panel includes a display mode and a light-collecting mode. As shown in conjunction with
At step 1, in the light-collecting mode, at least the second sub-pixel row 312 in the first pixel unit 31 is controlled to be lit up. When the first high-transmission sub-pixel 3120 in the second sub-pixel row 312 is lit, the deflection angle of the liquid crystal corresponding to the first high-transmission sub-pixel 3120 allows light to pass. For example, when the light-collecting module is the camera module, the light-collecting mode can be a camera mode in which the camera module is turned on. In the camera mode, ambient light can enter the camera module provided corresponding to the first display area 1 through the liquid crystal 40 in the area where the first high-transmittance sub-pixel 3120 is located. When the light-collecting module is the fingerprint recognition module, after light emitted by the fingerprint recognition light source is reflected by a finger on the light emission side of the display panel, reflected light can enter the fingerprint recognition module provided corresponding to the first display area 1 through the liquid crystal 40 in the area where the first high-transmittance sub-pixel 3120 is located.
At step 2, in the display mode, the first pixel unit 31 is controlled to be lit up so that the first display area 1 can be used for display. When the second display area 2 also displays, the first display area 1 and the second display area 2 can jointly display a complete image. In an embodiment, the first display area 1 and the second display area 2 can display independently. For example, the first display area 1 can be used to display information such as date, time, and call reminder.
In an embodiment, in the display mode, the step 2 in which the first pixel unit 31 is controlled to be lit up includes: when a gray scale of the first high-transmittance sub-pixel 3120 is the same as a gray scale of the sub-pixel in the first sub-pixel row 311, controlling a data voltage of the first high-transmittance sub-pixel 3120 to be smaller than a data voltage of the sub-pixel in the first sub-pixel row 311.
Due to the relatively high light transmittance of the first high-transmittance sub-pixel 3120, the data voltage of the first high-transmittance sub-pixel 3120 is controlled to be smaller than the data voltage of the sub-pixel in the first sub-pixel row 311, which can prevent brightness of the first high-transmittance sub-pixel 3120 from being excessively high. For example, when an image to be displayed is a white image, the driving method of the embodiment of the present disclosure can make brightness at different positions in the first display area 1 tend to be consistent, and it can also make no obvious bright or dark areas in the white image displayed jointly by the first display area 1 and the second display area 2.
The foregoing descriptions are only some embodiments of the present disclosure and are not intended to limit the present disclosure. Those skilled in the art can make any modification, equivalent replacement, improvement, etc.
Number | Date | Country | Kind |
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202011643652.9 | Dec 2020 | CN | national |