Pixel structure, display panel and display device
By designing a pixel structure in OLED display devices that alternates between sub-pixels and blank areas, the crosstalk problem in curved display products is solved, improving display effect and resolution.
Patent Information
- Application Number
- CN202111399849.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-11-19
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2042-02-10
AI Technical Summary
OLED display devices suffer from crosstalk issues in curved display products, which leads to a decrease in display performance.
Design a pixel structure in which the pixel density of the second display area is less than that of the first display area. By alternately setting sub-pixels and blank areas, ensure that the sub-pixel arrangement order is consistent with the output order of the data signal lines, reduce the floating state of the data signal lines, and solve the crosstalk problem.
It improves display quality, especially in red and blue areas, reduces the number of signal lines, saves space, and increases space utilization and resolution.
Smart Images

Figure CN114420723B_ABST
Abstract
Description
Technical Field
[0001] This disclosure relates to, but is not limited to, the field of display technology, and in particular to a pixel structure, a display panel, and a display device. Background Technology
[0002] Organic light-emitting diodes (OLEDs) are active-matrix display devices with advantages such as self-illumination, wide viewing angle, high contrast, low power consumption, and extremely fast response speed. With the continuous development of display technology, flexible displays using OLEDs as the light-emitting device and thin-film transistors (TFTs) for signal control have become the mainstream products in the display field. However, some OLED display devices suffer from crosstalk problems, which degrade the display effect. Summary of the Invention
[0003] The following is an overview of the subject matter described in detail herein. This overview is not intended to limit the scope of the claims.
[0004] In a first aspect, embodiments of this disclosure provide a pixel structure, including: a first display area and a second display area, wherein the pixel density of the second display area is less than the pixel density of the first display area;
[0005] It also includes: multiple pixel rows, multiple pixel columns, and multiple data signal lines; each pixel row includes: a first color sub-pixel, a second color sub-pixel, and a third color sub-pixel of different colors; each pixel column is connected to a data signal line; the multiple pixel columns include: any one or more of the first pixel column and the second pixel column.
[0006] The first pixel column includes: a first sub-region located in the first display area and a second sub-region located in the second display area, which are arranged sequentially along the first direction. The first sub-region includes: alternating first color sub-pixels and third color sub-pixels. The second sub-region includes any of the following arrangements: alternating first color sub-pixels and blank areas, alternating blank areas and third color sub-pixels, and alternating first color sub-pixels and third color sub-pixels. Blank areas refer to areas where no sub-pixels are set.
[0007] The second pixel column includes: a third sub-region located in the first display area and a fourth sub-region located in the second display area, arranged sequentially along a first direction. The third sub-region includes: alternating third color sub-pixels and first color sub-pixels. The fourth sub-region includes any of the following arrangements: alternating third color sub-pixels and blank areas, alternating blank areas and first color sub-pixels, and alternating third color sub-pixels and first color sub-pixels.
[0008] Secondly, embodiments of this disclosure provide a display panel, including the pixel structure described in the above embodiments.
[0009] Thirdly, embodiments of this disclosure provide a display device, including: the display panel described in the above embodiments.
[0010] The pixel structure, display panel, and display device provided in this disclosure include a pixel structure that may include a first display area and a second display area, wherein the pixel density of the second display area is less than that of the first display area. The pixel structure may also include multiple pixel rows, multiple pixel columns, and multiple data signal lines; each pixel row may include a first color sub-pixel P1, a second color sub-pixel P2, and a third color sub-pixel P3 of different colors; each pixel column is connected to a data signal line; the multiple pixel columns may include any one or more of the first pixel column and the second pixel column. The first pixel column may include a first sub-region located in the first display area and a second sub-region located in the second display area, arranged sequentially along a first direction DR1. The first sub-region includes alternating first color sub-pixels P1 and third color sub-pixels P3. The second sub-region includes any of the following arrangements: alternating first color sub-pixels P1 and a blank area, alternating blank areas and third color sub-pixels P3, and alternating first color sub-pixels P1 and third color sub-pixels P3. The blank area may refer to an area without sub-pixels. The second pixel column may include a third sub-region located in the first display area and a fourth sub-region located in the second display area, arranged sequentially along the first direction DR1. The third sub-region includes alternating third-color sub-pixels P3 and first-color sub-pixels P1. The fourth sub-region includes any of the following arrangements: alternating third-color sub-pixels P3 and blank areas, alternating blank areas and first-color sub-pixels P1, and alternating third-color sub-pixels P3 and first-color sub-pixels P1. Blank areas may refer to areas without sub-pixels. This ensures that the sub-pixel arrangement order of the first pixel column is consistent with the output order of the data signals transmitted by the data signal lines connected to the first pixel column, and that the sub-pixel arrangement order of the second pixel column is consistent with the output order of the data signals transmitted by the data signal lines connected to the second pixel column. Therefore, the problem of crosstalk occurring in the second display area under a first color image (e.g., a red image) or a second color image (e.g., a blue image) can be solved, thereby improving the display effect.
[0011] Other features and advantages of this disclosure will be set forth in the following description, and will be apparent in part from the description, or may be learned by practicing the disclosure. Other advantages of this disclosure may be realized and obtained by means of the methods described in the description and the accompanying drawings.
[0012] After reading and understanding the accompanying diagrams and detailed descriptions, the other aspects will become clear. Attached Figure Description
[0013] The accompanying drawings are provided to illustrate the technical solutions of this disclosure and form part of the specification. They are used together with the embodiments of this disclosure to explain the technical solutions of this disclosure and do not constitute a limitation on the technical solutions of this disclosure. The shapes and sizes of the components in the drawings do not reflect actual proportions and are only intended to illustrate the content of this disclosure.
[0014] Figure 1 This is a schematic diagram of a pixel structure.
[0015] Figure 2A for Figure 1 A schematic diagram illustrating one display effect of the pixel structure shown;
[0016] Figure 2B for Figure 1 This diagram illustrates another display effect of the pixel structure.
[0017] Figure 3 This is a schematic diagram of a first structure of the pixel structure in an exemplary embodiment of the present disclosure;
[0018] Figure 4 This is a schematic diagram of a second structure of the pixel structure in an exemplary embodiment of this disclosure;
[0019] Figure 5 This is a schematic diagram of a third structure of the pixel structure in an exemplary embodiment of this disclosure;
[0020] Figure 6 This is a schematic diagram of a fourth pixel structure in an exemplary embodiment of this disclosure;
[0021] Figure 7 This is a schematic diagram of a fifth pixel structure in an exemplary embodiment of the present disclosure;
[0022] Figure 8 This is a schematic diagram of a sixth structure of the pixel structure in an exemplary embodiment of this disclosure;
[0023] Figure 9 This is a schematic diagram of the seventh structure of the pixel structure in an exemplary embodiment of this disclosure;
[0024] Figure 10 This is a schematic diagram of the eighth structure of the pixel structure in an exemplary embodiment of this disclosure;
[0025] Figure 11 This is a schematic diagram of a display panel in an exemplary embodiment of the present disclosure;
[0026] Figure 12 This is a schematic diagram of another structure of the display panel in an exemplary embodiment of the present disclosure. Detailed Implementation
[0027] This document describes several embodiments, but these descriptions are exemplary and not limiting. Many more embodiments and implementations are possible within the scope of the embodiments described herein. Although many possible combinations of features are shown in the accompanying drawings and discussed in the detailed description, many other combinations of the disclosed features are also possible. Unless specifically limited, any feature or element of any embodiment may be used in conjunction with, or may replace, any other feature or element of any other embodiment.
[0028] In describing representative embodiments, the specification may have presented methods and / or processes as a specific sequence of steps. However, the method or process should not be limited to the specific order of steps described herein, to the extent that it does not depend on such a specific order. Other sequences of steps are possible, as will be understood by those skilled in the art. Therefore, the specific order of steps set forth in the specification should not be construed as a limitation of the claims. Furthermore, the claims relating to the method and / or process should not be limited to the steps performed in the order written, and those skilled in the art will readily understand that these orders may be varied and still remain within the spirit and scope of the embodiments disclosed herein.
[0029] In the accompanying drawings, the size of each component, the thickness of a layer, or the area are sometimes exaggerated for clarity. Therefore, this disclosure is not necessarily limited to these dimensions, and the shape and size of each part in the drawings do not reflect true proportions. Furthermore, the drawings schematically illustrate ideal examples, and this disclosure is not limited to the shapes or values shown in the drawings.
[0030] In the exemplary embodiments disclosed herein, the terms "first," "second," "third," and similar terms are used to avoid confusion of constituent elements, rather than to limit them in terms of quantity, order, or importance.
[0031] In exemplary embodiments of this disclosure, the words “comprising” or “including” and similar terms mean that the element or object preceding the word covers the element or object listed after the word and its equivalents, without excluding other elements or objects.
[0032] In the exemplary embodiments of this disclosure, for convenience, terms such as "middle," "upper," "lower," "front," "rear," "vertical," "horizontal," "top," "bottom," "inner," and "outer," indicating orientation or positional relationship, are used to describe the positional relationship of constituent elements with reference to the accompanying drawings. This is solely for the purpose of facilitating the description of this specification and simplifying the description, and is not intended to indicate or imply that the device or element referred to has a specific orientation, or is constructed and operated in a specific orientation. Therefore, it should not be construed as a limitation of this disclosure. The positional relationship of the constituent elements may be appropriately changed depending on the direction in which each constituent element is described. Therefore, the description is not limited to the terms used in the specification and may be appropriately replaced as appropriate.
[0033] In the exemplary embodiments disclosed herein, unless otherwise expressly specified and limited, the terms "connected," "linked," "installed," and similar words should be interpreted broadly. For example, they may refer to a fixed connection, a detachable connection, or an integral connection; they may refer to a mechanical connection or an electrical connection; they may refer to a direct connection, an indirect connection via an intermediate component, or a connection within two components. Those skilled in the art will understand the meaning of the above terms in this disclosure as appropriate.
[0034] In exemplary embodiments of this disclosure, "electrical connection" includes the case where constituent elements are connected together by an element having some electrical function. There are no particular limitations on the "electrical function" as long as it enables the transmission and reception of electrical signals between the connected constituent elements. The "electrical function" can be, for example, an electrode or wiring, a switching element such as a transistor, or other functional elements such as a resistor, inductor, or capacitor.
[0035] In exemplary embodiments of this disclosure, a transistor is a device that includes at least three terminals: a gate electrode (gate or control electrode), a drain electrode (drain electrode terminal, drain region, or drain electrode), and a source electrode (source electrode terminal, source region, or source electrode). The transistor has a channel region between the drain electrode and the source electrode, and current can flow through the drain electrode, the channel region, and the source electrode. Note that in this specification, the channel region refers to the region through which current primarily flows.
[0036] In exemplary embodiments of this disclosure, to distinguish the two terminals of a transistor other than the gate electrode (gate or control electrode), one terminal is directly described as the first terminal and the other as the second terminal. The first terminal can be the drain electrode and the second terminal can be the source electrode, or vice versa. In cases where transistors with opposite polarities are used or where the current direction changes during circuit operation, the functions of the "source electrode" and "drain electrode" are sometimes interchanged. Therefore, in this specification, the "source electrode" and "drain electrode" can be interchanged.
[0037] In the exemplary embodiments of this disclosure, the transistor can be a thin film transistor (TFT), a field effect transistor (FET), or other devices with similar characteristics. For example, the thin film transistor used in the embodiments of this disclosure may include, but is not limited to, oxide TFTs or low-temperature poly-silicon TFTs (LTPS TFTs). This disclosure does not limit the scope of the application.
[0038] In the exemplary embodiments of this disclosure, "parallel" can refer to a state in which the angle formed by two straight lines is greater than or equal to -10° and less than 10°, and therefore may also include a state in which the angle is greater than or equal to -5° and less than 5°. In addition, "perpendicular" can refer to a state in which the angle formed by two straight lines is greater than or equal to 80° and less than 100°, and therefore may also include a state in which the angle is greater than or equal to 85° and less than 95°.
[0039] In exemplary embodiments of this disclosure, "about" may refer to a value that is not strictly limited and allows for process and measurement errors.
[0040] In the exemplary embodiments of this disclosure, rectangles, rhombuses, pentagons, or hexagons are not strictly defined; they may be approximate rectangles, rhombuses, pentagons, or hexagons. Small deformations due to tolerances may exist, and chamfers, curved edges, and other deformations may be present.
[0041] In the exemplary embodiments of this disclosure, the first direction DR1 can refer to the extension direction or column direction of the data signal line (also known as a data line) in the display area, the second direction DR2 can refer to the extension direction or row direction of the scan signal line (also known as a gate line) in the display area, and the third direction DR3 can refer to the thickness direction of the display panel or a direction perpendicular to the plane of the display panel. The first direction DR1 intersects with the second direction DR2, and the first direction DR1 intersects with the third direction DR3. For example, the first direction DR1 and the second direction DR2 can be perpendicular to each other, and the first direction DR1 and the third direction DR3 can be perpendicular to each other. This embodiment of the disclosure does not limit this.
[0042] In an exemplary embodiment of this disclosure, a plurality of sub-pixels arranged sequentially along the first direction DR1 are called a pixel column, and a plurality of sub-pixels arranged sequentially along the second direction DR2 are called a pixel row.
[0043] With the development of display technology and the diversification of OLED product forms (e.g., mobile phones), customer demand for curved OLED displays is gradually increasing, making it a hot topic in the display field. The curvature of the sides of curved OLED displays increases the display area, improves the screen-to-body ratio, and provides users with a better sensory experience. Curved OLED displays can include: double-sided curved displays where at least part of two opposite sides of the display panel has a certain curvature, and quad-sided curved displays where at least part of all four sides of the display panel has a certain curvature.
[0044] Figure 1 This is a schematic diagram of a pixel structure. (Example) Figure 1 As shown, the pixel structure may include: a first display area 100 and a second display area 200 located on one side of the first direction DR1 of the first display area 100. The pixel density of the second display area 200 is less than the pixel density of the first display area 100. The first display area 100 may include: a plurality of first pixel units 300. At least one of the plurality of first pixel units 300 may include: a red (R) sub-pixel, two green (G) sub-pixels and a blue (B) sub-pixel. The second display area 200 may include: a plurality of second pixel units 400. At least one of the plurality of second pixel units 400 may include: a red (R) sub-pixel, a green (G) sub-pixel and a blue (B) sub-pixel.
[0045] like Figure 1As shown, j and k are odd numbers greater than or equal to 1. The j-th pixel row, the (j+2)-th pixel row, the k-th pixel row, and the (k+2)-th pixel row are odd-numbered pixel rows, while the (j+1)-th pixel row, the (j+3)-th pixel row, the (k+1)-th pixel row, and the (k+3)-th pixel row are even-numbered pixel rows. The first data signal line D1 is connected to the R sub-pixels in the odd-numbered pixel rows of the first display area 100, the B sub-pixels in the even-numbered pixel rows of the first display area 100, the R sub-pixels in the odd-numbered pixel rows of the second display area 200, and the R sub-pixels in the even-numbered pixel rows of the second display area 200. The (i+1)-th data signal line D(i+1) is connected to the G sub-pixels in the odd-numbered pixel rows of the first display area 100, the G sub-pixels in the odd-numbered pixel rows of the second display area 200, and the G sub-pixels in the even-numbered pixel rows of the second display area 200. The (i+1)-th data signal line D(i+1) is connected to the G sub-pixels in the odd-numbered pixel rows of the first display area 100, the G sub-pixels in the odd-numbered pixel rows of the second display area 200, and the G sub-pixels in the even-numbered pixel rows of the second display area 200. The even-numbered pixel rows are in a floating state; the (i+2)th data signal line D(i+2) is connected to the B sub-pixels in the odd-numbered pixel rows of the first display area 100, the R sub-pixels in the even-numbered pixel rows of the first display area 100, the B sub-pixels in the odd-numbered pixel rows of the second display area 200, and the B sub-pixels in the even-numbered pixel rows of the second display area 200; the (i+3)th data signal line D(i+3) is connected to the G sub-pixels in the even-numbered pixel rows of the first display area 100, and the (i+3)th data signal line D(i+3) is in a floating state in the odd-numbered pixel rows of the first display area 100 and the second display area 200; wherein, the (i+2)th data signal line D(i+3) is connected to the B sub-pixels in the even-numbered pixel rows of the first display area 100, the R ... and the R sub-pixels in the even-numbered pixel rows of the second display area 200. The (i+3)th data signal line D(i+3) being in a floating state in the second display area 200 means that the (i+3)th data signal line D(i+3) is not connected to any sub-pixel in the second display area 200; the (i+4)th data signal line D(i+4) is connected to the R sub-pixel in the odd-numbered pixel rows of the first display area 100 and the B sub-pixel in the even-numbered pixel rows of the first display area 100, and the (i+4)th data signal line D(i+4) is in a floating state in the second display area 200; the (i+5)th data signal line D(i+5) is connected to the G sub-pixel in the odd-numbered pixel rows of the first display area 100, and the (i+5)th data signal line D(i+5) is in a floating state in the second display area 200. The even-numbered pixel rows of the display area 100 and the second display area 200 are in a floating state; the (i+6)th data signal line D(i+6) is connected to the B sub-pixel in the odd-numbered pixel rows of the first display area 100 and the R sub-pixel in the even-numbered pixel rows of the first display area 100, and the (i+6)th data signal line D(i+6) is in a floating state in the second display area 200; the (i+7)th data signal line D(i+7) is connected to the G sub-pixel in the even-numbered pixel rows of the first display area 100, and the (i+7)th data signal line D(i+7) is in a floating state in the odd-numbered pixel rows of the first display area 100 and the second display area 200.
[0046] The inventors of this publication have discovered that: because the second display area 200 uses the data signal lines shared by the R and B sub-pixels in the first display area 100 (e.g., the first data signal line D1 and the third data signal line D3, etc.), and these shared data signal lines are configured to alternately provide data signals to the red and blue sub-pixels to achieve monochrome display, both the R and B sub-pixels in the second display area 200 will emit light under either a red (R) or blue (B) screen, causing crosstalk and preventing the normal display of image colors, thus reducing the display effect. For example, as... Figure 1 and Figure 2A As shown, because the third data signal line D3 alternately provides data signals to the B sub-pixels and R sub-pixels, while the blue sub-pixel column in the second display area 200 uses the first data signal line D3, some B sub-pixels in the blue sub-pixel column of the second display area 200 will emit light under a red screen. That is, under a red screen, both the R sub-pixels and some B sub-pixels in the second display area 200 will emit light, thus causing crosstalk. For example, as... Figure 1 and Figure 2B As shown, since the first data signal line D1 alternately provides data signals to the R sub-pixel and the B sub-pixel, and the red sub-pixel column in the second display area 200 uses the first data signal line D1, some R sub-pixels in the red sub-pixel column of the second display area 200 will light up under the blue screen. That is, under the blue screen, both the B sub-pixel and some R sub-pixels in the second display area 200 will light up, thus causing crosstalk problems.
[0047] This disclosure provides a pixel structure that may include a first display area and a second display area, wherein the pixel density of the second display area is less than the pixel density of the first display area. The pixel structure may further include multiple pixel rows, multiple pixel columns, and multiple data signal lines; each pixel row may include a first color sub-pixel P1, a second color sub-pixel P2, and a third color sub-pixel P3 of different colors; each pixel column is connected to a data signal line; the multiple pixel columns may include any one or more of the first pixel column and the second pixel column.
[0048] The first pixel column may include a first sub-region located in the first display area and a second sub-region located in the second display area, arranged sequentially along the first direction DR1. The first sub-region includes alternating first-color sub-pixels P1 and third-color sub-pixels P3. The second sub-region includes any of the following arrangements: alternating first-color sub-pixels P1 and blank areas, alternating blank areas and third-color sub-pixels P3, and alternating first-color sub-pixels P1 and third-color sub-pixels P3. Blank areas may refer to areas without sub-pixels. This ensures that the sub-pixel arrangement order of the first pixel column is consistent with the output order of the data signals transmitted by the data signal lines connected to the first pixel column. Therefore, the crosstalk problem that occurs in the second display area under a first-color screen (e.g., a red screen) or a second-color screen (e.g., a blue screen) can be solved, thereby improving the display effect.
[0049] The second pixel column may include a third sub-region located in the first display area and a fourth sub-region located in the second display area, arranged sequentially along the first direction DR1. The third sub-region includes alternating third-color sub-pixels P3 and first-color sub-pixels P1. The fourth sub-region includes any of the following arrangements: alternating third-color sub-pixels P3 and blank areas, alternating blank areas and first-color sub-pixels P1, and alternating third-color sub-pixels P3 and first-color sub-pixels P1. Blank areas may refer to areas without sub-pixels. This ensures that the sub-pixel arrangement order of the second pixel column is consistent with the output order of the data signals transmitted by the data signal lines connected to the second pixel column. Therefore, it can solve the crosstalk problem that occurs in the second display area under a first-color screen (e.g., a red screen) or a second-color screen (e.g., a blue screen), thereby improving the display effect.
[0050] Here, pixel density can be referred to as resolution (Pixels Per Inch, PPI), which refers to the number of pixels per unit area. A higher PPI value means the display panel can display images at a higher density, resulting in richer image detail. Relatively speaking, the first display area can be called the high-resolution display area or the normal-resolution display area, while the second display area can be called the low-resolution display area.
[0051] In this case, the data signal lines connected to the pixel column are suspended in the blank areas of the pixel column.
[0052] Specifically, the data signals connected to the first pixel column are configured to alternately provide corresponding data signals in the order of the first color sub-pixel P1 and the third color sub-pixel P3. The data signals connected to the second pixel column are configured to alternately provide data signals in the order of the third color sub-pixel P3 and the first color sub-pixel P1. This saves on the number of signal lines, reduces the space occupied, simplifies the structure, optimizes the layout, fully utilizes the map space, improves space utilization, and is beneficial for increasing resolution.
[0053] In one exemplary embodiment, the extension direction of each pixel row is the second direction DR2, and multiple pixel rows can be arranged sequentially along the first direction DR1.
[0054] In one exemplary embodiment, the extension direction of each pixel column is a first direction DR1, and multiple pixel rows can be sequentially arranged along a second direction DR2.
[0055] In one exemplary embodiment, both the first pixel column and the second pixel column can be in the form of a broken line.
[0056] In one exemplary embodiment, the plurality of pixel columns may further include a third pixel column. All sub-pixels in the third pixel column are second color sub-pixels P2.
[0057] In one exemplary embodiment, the third pixel column may include: a fifth sub-region located in the first display area and a sixth sub-region located in the second display area, which are sequentially arranged along the first direction DR1. The fifth sub-region may include: a plurality of first sub-regions arranged at intervals, each of which may include: two second color sub-pixels P2. The sixth sub-region may include: a plurality of second sub-regions and a plurality of third sub-regions arranged alternately. Wherein, the second sub-region may include one or two second color sub-pixels P2, and the third sub-region may not have any sub-pixels; or, the second sub-region may not have any sub-pixels, and the third sub-region may include one or two second color sub-pixels P2.
[0058] In one exemplary embodiment, the third pixel column may be linear.
[0059] In one exemplary embodiment, the first display area may include a plurality of first pixel units, and the second display area may include a plurality of second pixel units. The arrangement density of the second pixel units in the second display area is less than the arrangement density of the plurality of first pixel units in the first display area. Each first pixel unit and each second pixel unit includes a first color sub-pixel P1, two second color sub-pixels P2, and a third color sub-pixel P3, with the two second color sub-pixels P2 aligned along a first direction. Thus, since the first pixel unit and the second pixel unit have the same number of sub-pixels of the same color and are arranged in the same way, the white balance of the first display area and the second display area can be made consistent, thereby improving the display effect.
[0060] In one exemplary embodiment, the first color sub-pixel P1, the second color sub-pixel P2, and the third color sub-pixel P3 may each include a pixel driving circuit and a light-emitting device. For example, the pixel driving circuits in the first color sub-pixel P1, the second color sub-pixel P2, and the third color sub-pixel P3 may be connected to a scan signal line, a data signal line, and a light-emitting signal line, respectively. The pixel driving circuits are configured to receive data signals transmitted by the data signal line and output corresponding currents to the light-emitting devices under the control of the scan signal line and the light-emitting signal line. The light-emitting devices in the first sub-pixel P1, the second sub-pixel P2, and the third sub-pixel P3 are respectively connected to the pixel driving circuit of their respective sub-pixels, and the light-emitting devices are configured to emit light of corresponding brightness in response to the current output by the pixel driving circuit of their respective sub-pixels.
[0061] In one exemplary embodiment, the light-emitting device may be an organic light-emitting diode (OLED), comprising: a first electrode (e.g., as an anode), an organic light-emitting layer, and a second electrode (e.g., as a cathode) stacked together. For example, the organic light-emitting layer may include: a hole injection layer (HIL), a hole transport layer (HTL), an electron block layer (EBL), an emitting layer (EML), a hole block layer (HBL), an electron transport layer (ETL), and an electron injection layer (EIL) stacked together. This disclosure does not limit the scope of the embodiment.
[0062] In one exemplary embodiment, the pixel driving circuit may be a 3T1C (3 transistors and 1 storage capacitor), 4T1C, 5T1C, 5T2C, 6T1C, or 7T1C structure, etc. Here, the embodiments disclosed herein do not limit this.
[0063] In one exemplary embodiment, the first color sub-pixel P1, the second color sub-pixel P2, and the third color sub-pixel P3 can be any one of a red (R) sub-pixel, a green (G) sub-pixel, and a blue (B) sub-pixel, and they are all different from each other. For example, the first color sub-pixel P1 can be a red sub-pixel, the second color sub-pixel P2 can be a green sub-pixel, and the third color sub-pixel P3 can be a blue sub-pixel. Here, the embodiments of this disclosure do not limit this.
[0064] In one exemplary embodiment, the shape of the sub-pixel can be rectangular, rhomboid, pentagonal, or hexagonal, etc. For example, the first color sub-pixel P1 and the third color sub-pixel P3 can be hexagonal, and the second color sub-pixel P2 can be pentagonal. Here, the embodiments of this disclosure do not limit this.
[0065] The pixel structure provided in the embodiments of this disclosure will now be described with reference to the accompanying drawings.
[0066] Figure 3 This is a schematic diagram of a first structural representation of a pixel structure in an exemplary embodiment of this disclosure. Figure 4 This is a schematic diagram of a second structure of the pixel structure in an exemplary embodiment of this disclosure. Figure 5 This is a schematic diagram of a third pixel structure in an exemplary embodiment of this disclosure. Figure 6 This is a schematic diagram of a fourth pixel structure in an exemplary embodiment of this disclosure. Figure 7 This is a schematic diagram of a fifth pixel structure in an exemplary embodiment of this disclosure. Figure 8 This is a schematic diagram of the sixth structure of the pixel structure in an exemplary embodiment of this disclosure. Figure 9 This is a schematic diagram of the seventh pixel structure in an exemplary embodiment of this disclosure. Figure 10 This is an eighth structural diagram of the pixel structure in an exemplary embodiment of this disclosure.
[0067] here, Figures 3 to 10 The following diagram illustrates the first display area 100, specifically the row from pixel j to the (j+3)th pixel, and the second display area 200, specifically the row from pixel k to the (k+3)th pixel. Here, j and k are odd numbers greater than or equal to 1. The row from pixel j to the (j+2)th pixel, the row from pixel k to the (k+2)th pixel are odd-numbered pixel rows, while the row from pixel j+1 to the (j+3)th pixel, the row from pixel k+1 to the (k+3)th pixel, and the row from pixel k+3rd pixel are even-numbered pixel rows. Figures 3 to 10 The shape of the data signal line in the diagram is merely an illustrative example and does not represent the actual shape. Figures 3 to 10The following example illustrates the color sub-pixel P1 as red (R), the color sub-pixel P2 as green (G), and the color sub-pixel P3 as blue (B). Figures 3 to 10 The illustration is based on the example where the first color sub-pixel P1 and the third color sub-pixel P3 are hexagonal, and the second color sub-pixel P2 is pentagonal.
[0068] The following is in conjunction with the appendix Figures 3 to 4 The pixel structure provided in the embodiments of this disclosure will be described.
[0069] In one exemplary embodiment, such as Figures 3 to 4 As shown, the pixel structure may include: multiple pixel column groups, and the i-th pixel column group in the multiple pixel column groups may include: the i-th pixel column connected to the i-th data signal line D(i) to the i+7-th pixel column connected to the i+7-th data signal line D(i+7) arranged sequentially along the second direction DR2, where i is a positive integer greater than or equal to 1. Wherein: the i-th pixel column may include: a plurality of first-color sub-pixels P1 and a plurality of third-color sub-pixels P3 alternately arranged in the first display area 100 and a plurality of first-color sub-pixels P1 and a plurality of blank areas alternately arranged in the second display area 200; the (i+1)-th pixel column may include: a plurality of second-color sub-pixels P2 spaced apart in the first display area 100 and a plurality of second-color sub-pixels P2 and a plurality of blank areas alternately arranged in the second display area 200; the (i+2)-th pixel column may include: a plurality of third-color sub-pixels P3 and a plurality of first-color sub-pixels P1 alternately arranged in the first display area 100 and a plurality of third-color sub-pixels P3 and a plurality of first-color sub-pixels P1 alternately arranged in the second display area 200; the (i+3)-th pixel column may include: in the first display area... The first display area 100 may include a plurality of second color sub-pixels P2 spaced apart, and a plurality of blank areas and a plurality of second color sub-pixels P2 alternately arranged in the second display area 200; the (i+4)th pixel column may include a plurality of first color sub-pixels P1 and a plurality of third color sub-pixels P3 alternately arranged in the first display area 100, and a plurality of blank areas and a plurality of third color sub-pixels P3 alternately arranged in the second display area 200; the (i+5)th pixel column may include a plurality of second color sub-pixels P2 spaced apart in the first display area 100; the (i+6)th pixel column may include a plurality of third color sub-pixels P3 and a plurality of first color sub-pixels P1 alternately arranged in the first display area 100; the (i+7)th pixel column may include a plurality of second color sub-pixels P2 spaced apart in the first display area 100.
[0070] In one exemplary embodiment, such as Figure 3 and Figure 4As shown, the pixel structure may further include: multiple data signal line groups, wherein the i-th data signal line group among the multiple data signal line groups may include: the i-th data signal line D(i) connected to the i-th pixel column to the (i+7)-th data signal line D(i+7) connected to the (i+7)-th pixel column, which are sequentially arranged along the second direction, wherein:
[0071] In one exemplary embodiment, such as Figure 3 and Figure 4 As shown, the i-th data signal line D(i) is connected to the first color sub-pixel P1 in the odd-numbered pixel row of the first display area 100, the i-th data signal line D(i) is connected to the third color sub-pixel P3 in the even-numbered pixel row of the first display area 100, the i-th data signal line D(i) is connected to the first color sub-pixel P1 in the odd-numbered pixel row of the second display area 200, and the i-th data signal line D(i) is in a floating state in the even-numbered pixel row of the second display area 200.
[0072] In one exemplary embodiment, such as Figure 3 and Figure 4 As shown, the (i+1)th data signal line D(i+1) is connected to the second color sub-pixel P2 in the odd-numbered pixel rows of the first display area 100, the (i+1)th data signal line D(i+1) is in a floating state in the even-numbered pixel rows of the first display area 100, the (i+1)th data signal line D(i+1) is connected to the second color sub-pixel P2 in the odd-numbered pixel rows of the second display area 200, and the (i+1)th data signal line D(i+1) is in a floating state in the even-numbered pixel rows of the second display area 200.
[0073] In one exemplary embodiment, such as Figure 3 and Figure 4 As shown, the (i+2)th data signal line D(i+2) is connected to the third color sub-pixel P3 in the odd-numbered pixel rows of the first display area 100, the (i+2)th data signal line D(i+2) is connected to the first color sub-pixel P1 in the even-numbered pixel rows of the first display area 100, the (i+2)th data signal line D(i+2) is connected to the third color sub-pixel P3 in the odd-numbered pixel rows of the second display area 200, and the (i+2)th data signal line D(i+2) is connected to the first color sub-pixel P1 in the even-numbered pixel rows of the second display area 200.
[0074] In one exemplary embodiment, such as Figure 3 and Figure 4As shown, the (i+3)th data signal line D(i+3) is in a floating state in the odd-numbered pixel rows of the first display area 100, and is connected to the second color sub-pixel P2 in the even-numbered pixel rows of the first display area 100. The (i+3)th data signal line D(i+3) is in a floating state in the odd-numbered pixel rows of the second display area 200, and is connected to the second color sub-pixel P2 in the even-numbered pixel rows of the second display area 200.
[0075] In one exemplary embodiment, such as Figure 3 and Figure 4 As shown, the (i+4)th data signal line D(i+4) is connected to the first color sub-pixel P1 in the odd-numbered pixel rows of the first display area 100, the (i+4)th data signal line D(i+4) is connected to the third color sub-pixel P3 in the even-numbered pixel rows of the first display area 100, the (i+4)th data signal line D(i+4) is in a floating state in the odd-numbered pixel rows of the second display area 200, and the (i+4)th data signal line D(i+4) is connected to the third color sub-pixel P3 in the even-numbered pixel rows of the second display area 200.
[0076] In one exemplary embodiment, such as Figure 3 and Figure 4 As shown, the (i+5)th data signal line D(i+5) is connected to the second color sub-pixel P2 in the odd-numbered pixel rows of the first display area 100. The (i+5)th data signal line D(i+5) is in a floating state in the even-numbered pixel rows of the first display area 100, and the (i+5)th data signal line D(i+5) is in a floating state in the second display area 200. That is, the (i+5)th data signal line D(i+5) is in a floating state in both the odd-numbered pixel rows and the even-numbered pixel rows of the second display area 200, which means that the (i+5)th data signal line D(i+5) is not connected to any sub-pixel in the second display area 200.
[0077] In one exemplary embodiment, such as Figure 3 and Figure 4 As shown, the (i+6)th data signal line D(i+6) is connected to the third color sub-pixel P3 in the odd-numbered pixel row of the first display area 100, and the (i+6)th data signal line D(i+6) is connected to the first color sub-pixel P1 in the even-numbered pixel row of the first display area 100. The (i+6)th data signal line D(i+6) is in a floating state in the second display area 200.
[0078] In one exemplary embodiment, such as Figure 3 and Figure 4As shown, the (i+7)th data signal line D(i+7) is in a floating state in the odd-numbered pixel rows of the first display area 100, the (i+7)th data signal line D(i+7) is connected to the second color sub-pixel P2 in the even-numbered pixel rows of the first display area 100, and the (i+7)th data signal line D(i+7) is in a floating state in the second display area 200.
[0079] In one exemplary embodiment, such as Figure 3 and Figure 4 As shown, for each row of pixels in the second display area 200, two adjacent second pixel units 400 can be spaced apart by about one second pixel unit 400 in the second direction DR2 (i.e., the row direction).
[0080] In one exemplary embodiment, such as Figure 3 and Figure 4 As shown, the even-numbered pixel rows and odd-numbered pixel rows of the second display area 200 can be staggered by a first distance. Similarly, the even-numbered pixel rows and odd-numbered pixel rows of the first display area 100 can be staggered by a first distance. For example, two adjacent pixel rows in the second display area 200 may be staggered in the first direction DR1 (i.e., the column direction) by a distance greater than half a second pixel unit 400. This embodiment of the present disclosure does not limit this arrangement.
[0081] In one exemplary embodiment, such as Figure 3 and Figure 4 As shown, the odd-numbered pixel rows of the second display area 200 are aligned with the same color sub-pixels in the odd-numbered pixel rows of the first display area 100, and the even-numbered pixel rows of the second display area 200 are aligned with the same color sub-pixels in the even-numbered pixel rows of the first display area 100.
[0082] In this way, the arrangement order of the first color sub-pixel P1 and the third color sub-pixel P3 in the first display area 100 and the second display area 200 is consistent with the output order of the data signal transmitted by the data signal line shared by the first color sub-pixel P1 and the third color sub-pixel P3. This avoids crosstalk problems in the first color image or the third color image, thereby improving the display quality of the second display area 200.
[0083] The following is in conjunction with the appendix Figures 5 to 6 The pixel structure provided in the embodiments of this disclosure will be described.
[0084] In one exemplary embodiment, such as Figure 5 and Figure 6As shown, the pixel structure may include: multiple pixel column groups, and the i-th pixel column group in the multiple pixel column groups may include: the i-th pixel column connected to the i-th data signal line D(i) to the i+7-th pixel column connected to the i+7-th data signal line D(i+7) arranged sequentially along the second direction DR2, where i is a positive integer greater than or equal to 1. Wherein: the i-th pixel column may include: a plurality of first-color sub-pixels P1 and a plurality of third-color sub-pixels P3 alternately arranged in the first display area 100, and a plurality of first-color sub-pixels P1 and a plurality of blank areas alternately arranged in the second display area 200; the (i+1)-th pixel column may include: a plurality of second-color sub-pixels P2 spaced apart in the first display area 100, and a plurality of second-color sub-pixels P2 and a plurality of blank areas alternately arranged in the second display area 200; the (i+2)-th pixel column may include: a plurality of third-color sub-pixels P3 and a plurality of first-color sub-pixels P1 alternately arranged in the first display area 100, and a plurality of third-color sub-pixels P3 and a plurality of blank areas alternately arranged in the second display area 200; the (i+3)-th pixel column may include: a plurality of second-color sub-pixels P2 spaced apart in the first display area 100. The (i+4)th pixel column may include: a plurality of first-color sub-pixels P1 and a plurality of third-color sub-pixels P3 alternately arranged in the first display area 100, and a plurality of blank areas and a plurality of third-color sub-pixels P3 alternately arranged in the second display area 200; the (i+5)th pixel column may include: a plurality of second-color sub-pixels P2 spaced apart in the first display area 100, and a plurality of blank areas and a plurality of second-color sub-pixels P2 alternately arranged in the second display area 200; the (i+6)th pixel column may include: a plurality of third-color sub-pixels P3 and a plurality of first-color sub-pixels P1 alternately arranged in the first display area 100, and a plurality of blank areas and a plurality of first-color sub-pixels P1 alternately arranged in the second display area 200; the (i+7)th pixel column may include: a plurality of second-color sub-pixels P2 spaced apart in the first display area 100.
[0085] In one exemplary embodiment, such as Figure 5 and Figure 6 As shown, the pixel structure may further include: multiple data signal line groups, wherein the i-th data signal line group among the multiple data signal line groups may include: the i-th data signal line D(i) connected to the i-th pixel column to the (i+7)-th data signal line D(i+7) connected to the (i+7)-th pixel column, which are sequentially arranged along the second direction DR2, wherein:
[0086] In one exemplary embodiment, such as Figure 5 and Figure 6As shown, the i-th data signal line D(i) is connected to the first color sub-pixel P1 in the odd-numbered pixel row of the first display area 100, the i-th data signal line D(i) is connected to the third color sub-pixel P3 in the even-numbered pixel row of the first display area 100, the i-th data signal line D(i) is connected to the first color sub-pixel P1 in the odd-numbered pixel row of the second display area 200, and the i-th data signal line D(i) is in a floating state in the even-numbered pixel row of the second display area 200.
[0087] In one exemplary embodiment, such as Figure 5 and Figure 6 As shown, the (i+1)th data signal line D(i+1) is connected to the second color sub-pixel P2 in the odd-numbered pixel rows of the first display area 100, the (i+1)th data signal line D(i+1) is in a floating state in the even-numbered pixel rows of the first display area 100, the (i+1)th data signal line D(i+1) is connected to the second color sub-pixel P2 in the odd-numbered pixel rows of the second display area 200, and the (i+1)th data signal line D(i+1) is in a floating state in the even-numbered pixel rows of the second display area 200.
[0088] In one exemplary embodiment, such as Figure 5 and Figure 6 As shown, the (i+2)th data signal line D(i+2) is connected to the third color sub-pixel P3 in the odd-numbered pixel row of the first display area 100, the (i+2)th data signal line D(i+2) is connected to the first color sub-pixel P1 in the even-numbered pixel row of the first display area 100, the (i+2)th data signal line D(i+2) is connected to the third color sub-pixel P3 in the odd-numbered pixel row of the second display area 200, and the (i+2)th data signal line D(i+2) is in a floating state in the even-numbered pixel row of the second display area 200.
[0089] In one exemplary embodiment, such as Figure 5 and Figure 6 As shown, the (i+3)th data signal line D(i+3) is in a floating state in the odd-numbered pixel rows of the first display area 100, and the (i+3)th data signal line D(i+3) is connected to the second color sub-pixel P2 in the even-numbered pixel rows of the first display area 100. The (i+3)th data signal line D(i+3) is in a floating state in the odd-numbered pixel rows of the second display area 200, and the (i+3)th data signal line D(i+3) is in a floating state in the even-numbered pixel rows of the second display area 200.
[0090] In one exemplary embodiment, such as Figure 5 and Figure 6As shown, the (i+4)th data signal line D(i+4) is connected to the first color sub-pixel P1 in the odd-numbered pixel rows of the first display area 100, the (i+4)th data signal line D(i+4) is connected to the third color sub-pixel P3 in the even-numbered pixel rows of the first display area 100, the (i+4)th data signal line D(i+4) is in a floating state in the odd-numbered pixel rows of the second display area 200, and the (i+4)th data signal line D(i+4) is connected to the third color sub-pixel P3 in the even-numbered pixel rows of the second display area 200.
[0091] In one exemplary embodiment, such as Figure 5 and Figure 6 As shown, the (i+5)th data signal line D(i+5) is connected to the second color sub-pixel P2 in the odd-numbered pixel rows of the first display area 100. The (i+5)th data signal line D(i+5) is in a floating state in the even-numbered pixel rows of the first display area 100. The (i+5)th data signal line D(i+5) is in a floating state in the odd-numbered pixel rows of the second display area 200. The (i+5)th data signal line D(i+5) is connected to the second color sub-pixel P2 in the even-numbered pixel rows of the second display area 200.
[0092] In one exemplary embodiment, such as Figure 5 and Figure 6 As shown, the (i+6)th data signal line D(i+6) is connected to the third color sub-pixel P3 in the odd-numbered pixel rows of the first display area 100, the (i+6)th data signal line D(i+6) is connected to the first color sub-pixel P1 in the even-numbered pixel rows of the first display area 100, the (i+6)th data signal line D(i+6) is in a floating state in the odd-numbered pixel rows of the second display area 200, and the (i+6)th data signal line D(i+6) is connected to the first color sub-pixel P1 in the even-numbered pixel rows of the second display area 200.
[0093] In one exemplary embodiment, such as Figure 5 and Figure 6 As shown, the (i+7)th data signal line D(i+7) is in a floating state in the odd-numbered pixel rows of the first display area 100, the (i+7)th data signal line D(i+7) is connected to the second color sub-pixel P2 in the even-numbered pixel rows of the first display area 100, and the (i+7)th data signal line D(i+7) is in a floating state in the second display area 200.
[0094] In one exemplary embodiment, such as Figure 5 and Figure 6 As shown, for each row of pixels in the second display area 200, two adjacent second pixel units 400 can be spaced apart by about one second pixel unit 400 in the second direction DR2 (i.e., the row direction).
[0095] In one exemplary embodiment, such as Figure 5 and Figure 6 As shown, the even-numbered pixel rows and odd-numbered pixel rows of the second display area 200 can be staggered by a second distance. The even-numbered pixel rows and odd-numbered pixel rows of the first display area 100 can be staggered by a third distance, where the third distance is less than the second distance. For example, two adjacent pixel rows in the second display area 200 are staggered by approximately one second pixel unit 400 in the first direction DR1 (i.e., the column direction). This embodiment of the present disclosure does not limit this arrangement.
[0096] In one exemplary embodiment, such as Figure 5 and Figure 6 As shown, the odd-numbered pixel rows of the second display area 200 are aligned with the same color sub-pixels in the odd-numbered pixel rows of the first display area 100. The second-color sub-pixel P2 in the even-numbered pixel rows of the second display area 200 is aligned with the second-color sub-pixel P2 in the odd-numbered pixel rows of the first display area 100. The first-color sub-pixel P1 in the even-numbered pixel rows of the second display area 200 is aligned with the third-color sub-pixel P3 in the odd-numbered pixel rows of the first display area 100. The third-color sub-pixel P3 in the even-numbered pixel rows of the second display area 200 is aligned with the first-color sub-pixel P1 in the odd-numbered pixel rows of the first display area 100.
[0097] In this way, the arrangement order of the first color sub-pixel P1 and the third color sub-pixel P3 in the first display area 100 and the second display area 200 is consistent with the output order of the data signal transmitted by the data signal line shared by the first color sub-pixel P1 and the third color sub-pixel P3. This avoids crosstalk problems in the first color image or the third color image, thereby improving the display quality of the second display area 200.
[0098] The following is in conjunction with the appendix Figures 7 to 8 The pixel structure provided in the embodiments of this disclosure will be described.
[0099] In one exemplary embodiment, such as Figure 7 and Figure 8As shown, the pixel structure may include: multiple pixel column groups, wherein the i-th pixel column group in the multiple pixel column groups may include: the i-th pixel column connected to the i-th data signal line D(i) to the i+7-th pixel column connected to the i+7-th data signal line D(i+7) arranged sequentially along the second direction DR2, where i is a positive integer greater than or equal to 1, wherein: the i-th pixel column may include: multiple first color sub-pixels P1 and multiple third color sub-pixels P3 alternately arranged in the first display area 100 and multiple blank areas and multiple third color sub-pixels P3 alternately arranged in the second display area 200; the i+1-th pixel column may include: multiple second color sub-pixels P2 spaced apart in the first display area 100; the i+2-th pixel column may include: multiple third color sub-pixels P3 and multiple first color sub-pixels P1 alternately arranged in the first display area 100 and multiple third color sub-pixels P3 and multiple blank areas alternately arranged in the second display area 200; the i+3-th pixel column may include: in the first display area The first display area 100 may include a plurality of second color sub-pixels P2 spaced apart; the (i+4)th pixel column may include a plurality of first color sub-pixels P1 and a plurality of third color sub-pixels P3 alternately arranged in the first display area 100 and a plurality of first color sub-pixels P1 and a plurality of blank areas alternately arranged in the second display area 200; the (i+5)th pixel column may include a plurality of second color sub-pixels P2 spaced apart in the first display area 100 and a plurality of second color sub-pixels P2 and a plurality of blank areas alternately arranged in the second display area 200; the (i+6)th pixel column may include a plurality of third color sub-pixels P3 and a plurality of first color sub-pixels P1 alternately arranged in the first display area 100 and a plurality of blank areas and a plurality of first color sub-pixels P1 alternately arranged in the second display area 200; the (i+7)th pixel column may include a plurality of second color sub-pixels P2 spaced apart in the first display area 100 and a plurality of blank areas and a plurality of second color sub-pixels P2 alternately arranged in the second display area 200.
[0100] In one exemplary embodiment, such as Figure 7 and Figure 8 As shown, the pixel structure may further include: multiple data signal line groups, wherein the i-th data signal line group among the multiple data signal line groups may include: the i-th data signal line D(i) connected to the i-th pixel column to the (i+7)-th data signal line D(i+7) connected to the (i+7)-th pixel column, which are sequentially arranged along the second direction DR2, wherein:
[0101] In one exemplary embodiment, such as Figure 7 and Figure 8As shown, the i-th data signal line D(i) is connected to the first color sub-pixel P1 in the odd-numbered pixel rows of the first display area 100, connected to the third color sub-pixel P3 in the even-numbered pixel rows of the first display area 100, and is in a floating state in the odd-numbered pixel rows of the second display area 200 and connected to the third color sub-pixel P3 in the even-numbered pixel rows of the second display area 200.
[0102] In one exemplary embodiment, such as Figure 7 and Figure 8 As shown, the (i+1)th data signal line D(i+1) is connected to the second color sub-pixel P2 in the odd-numbered pixel row of the first display area 100, the (i+1)th data signal line D(i+1) is in a floating state in the even-numbered pixel row of the first display area 100, and the (i+1)th data signal line D(i+1) is in a floating state in the second display area 200.
[0103] In one exemplary embodiment, such as Figure 7 and Figure 8 As shown, the (i+2)th data signal line D(i+2) is connected to the third color sub-pixel P3 in the odd-numbered pixel row of the first display area 100, the (i+2)th data signal line D(i+2) is connected to the first color sub-pixel P1 in the even-numbered pixel row of the first display area 100, the (i+2)th data signal line D(i+2) is connected to the third color sub-pixel P3 in the odd-numbered pixel row of the second display area 200, and the (i+2)th data signal line D(i+2) is in a floating state in the even-numbered pixel row of the second display area 200.
[0104] In one exemplary embodiment, such as Figure 7 and Figure 8 As shown, the (i+3)th data signal line D(i+3) is in a floating state in the odd-numbered pixel rows of the first display area 100, the (i+3)th data signal line D(i+3) is connected to the second color sub-pixel P2 in the even-numbered pixel rows of the first display area 100, and the (i+3)th data signal line D(i+3) is in a floating state in the second display area 200.
[0105] In one exemplary embodiment, such as Figure 7 and Figure 8 As shown, the (i+4)th data signal line D(i+4) is connected to the first color sub-pixel P1 in the odd-numbered pixel row of the first display area 100, the (i+4)th data signal line D(i+4) is connected to the third color sub-pixel P3 in the even-numbered pixel row of the first display area 100, the (i+4)th data signal line D(i+4) is connected to the first color sub-pixel P1 in the odd-numbered pixel row of the second display area 200, and the (i+4)th data signal line D(i+4) is in a floating state in the even-numbered pixel row of the second display area 200.
[0106] In one exemplary embodiment, such as Figure 7 and Figure 8 As shown, the (i+5)th data signal line D(i+5) is connected to the second color sub-pixel P2 in the odd-numbered pixel row of the first display area 100, the (i+5)th data signal line D(i+5) is in a floating state in the even-numbered pixel row of the first display area 100, the (i+5)th data signal line D(i+5) is connected to the second color sub-pixel P2 in the odd-numbered pixel row of the second display area 200, and the (i+5)th data signal line D(i+5) is in a floating state in the even-numbered pixel row of the second display area 200.
[0107] In one exemplary embodiment, such as Figure 7 and Figure 8 As shown, the (i+6)th data signal line D(i+6) is connected to the third color sub-pixel P3 in the odd-numbered pixel row of the first display area 100, and the (i+6)th data signal line D(i+6) is connected to the first color sub-pixel P1 in the even-numbered pixel row of the first display area 100. The (i+6)th data signal line D(i+6) is in a floating state in the odd-numbered pixel row of the second display area 200, and the (i+6)th data signal line D(i+6) is connected to the first color sub-pixel P1 in the even-numbered pixel row of the second display area 200.
[0108] In one exemplary embodiment, such as Figure 7 and Figure 8 As shown, the (i+7)th data signal line D(i+7) is in a floating state in the odd-numbered pixel rows of the first display area 100, and is connected to the second color sub-pixel P2 in the even-numbered pixel rows of the first display area 100. The (i+7)th data signal line D(i+7) is in a floating state in the odd-numbered pixel rows of the second display area 200, and is connected to the second color sub-pixel P2 in the even-numbered pixel rows of the second display area 200.
[0109] In one exemplary embodiment, such as Figure 7 and Figure 8 As shown, for each row of pixels in the second display area 200, two adjacent second pixel units 400 can be spaced apart by a distance of about one second pixel unit 400 in the second direction DR2 (i.e., the row direction).
[0110] In one exemplary embodiment, such as Figure 7 and Figure 8As shown, the even-numbered pixel rows of the second display area 200 and the odd-numbered pixel rows of the second display area 200 can be staggered by a fourth distance. The even-numbered pixel rows of the first display area 100 and the odd-numbered pixel rows of the first display area 100 can be staggered by a fifth distance. The fifth distance is less than the fourth distance. For example, two adjacent pixel rows in the second display area 200 may be staggered in the first direction DR1 (i.e., the column direction) by a distance greater than one second pixel unit 400. This embodiment of the present disclosure does not limit this.
[0111] In one exemplary embodiment, such as Figure 7 and Figure 8 As shown, the odd-numbered pixel rows of the second display area 200 are aligned with the same color sub-pixels in the odd-numbered pixel rows of the first display area 100, and the even-numbered pixel rows of the second display area 200 are aligned with the same color sub-pixels in the even-numbered pixel rows of the first display area 100.
[0112] In this way, the arrangement order of the first color sub-pixel P1 and the third color sub-pixel P3 in the first display area 100 and the second display area 200 is consistent with the output order of the data signal transmitted by the data signal line shared by the first color sub-pixel P1 and the third color sub-pixel P3. This avoids crosstalk problems in the first color image or the third color image, thereby improving the display quality of the second display area 200.
[0113] The following is in conjunction with the appendix Figures 9 to 10 The pixel structure provided in the embodiments of this disclosure will be described.
[0114] In one exemplary embodiment, such as Figure 9 and Figure 10As shown, the pixel structure may include: multiple pixel column groups, wherein the i-th pixel column group in the multiple pixel column groups may include: the i-th pixel column connected to the i-th data signal line D(i) to the i+7-th pixel column connected to the i+7-th data signal line D(i+7) arranged sequentially along the second direction, where i is a positive integer greater than or equal to 1, wherein: the i-th pixel column may include: multiple first color sub-pixels P1 and multiple third color sub-pixels P3 alternately arranged in the first display area 100; the i+1-th pixel column may include: multiple second color sub-pixels P2 spaced apart in the first display area 100 and multiple second color sub-pixels P2 and multiple blank areas alternately arranged in the second display area 200; the i+2-th pixel column may include: multiple third color sub-pixels P3 and multiple first color sub-pixels P1 alternately arranged in the first display area 100 and multiple third color sub-pixels P3 alternately arranged in the second display area 200. The first display area 100 includes a pixel P3 and a plurality of first color sub-pixels P1; the (i+3)th pixel column may include a plurality of second color sub-pixels P2 spaced apart in the first display area 100 and a plurality of blank areas and a plurality of second color sub-pixels P2 alternately arranged in the second display area 200; the (i+4)th pixel column may include a plurality of first color sub-pixels P1 and a plurality of third color sub-pixels P3 alternately arranged in the first display area 100 and a plurality of first color sub-pixels P1 and a plurality of third color sub-pixels P3 alternately arranged in the second display area 200; the (i+5)th pixel column may include a plurality of second color sub-pixels P2 spaced apart in the first display area 100; the (i+6)th pixel column may include a plurality of third color sub-pixels P3 and a plurality of first color sub-pixels P1 alternately arranged in the first display area 100; the (i+7)th pixel column may include a plurality of second color sub-pixels P2 spaced apart in the first display area 100.
[0115] In one exemplary embodiment, such as Figure 9 and Figure 10 As shown, the pixel structure may further include: multiple data signal line groups, wherein the i-th data signal line group among the multiple data signal line groups may include: the i-th data signal line D(i) connected to the i-th pixel column to the (i+7)-th data signal line D(i+7) connected to the (i+7)-th pixel column, which are sequentially arranged along the second direction DR2, wherein:
[0116] In one exemplary embodiment, such as Figure 9 and Figure 10 As shown, the i-th data signal line D(i) is connected to the first color sub-pixel P1 in the odd-numbered pixel row of the first display area 100, the i-th data signal line D(i) is connected to the third color sub-pixel P3 in the even-numbered pixel row of the first display area 100, and the i-th data signal line D(i) is in a floating state in the second display area 200.
[0117] In one exemplary embodiment, such as Figure 9 and Figure 10 As shown, the (i+1)th data signal line D(i+1) is connected to the second color sub-pixel P2 in the odd-numbered pixel row of the first display area 100, the (i+1)th data signal line D(i+1) is in a floating state in the even-numbered pixel row of the first display area 100, the (i+1)th data signal line D(i+1) is connected to the second color sub-pixel P2 in the odd-numbered pixel row of the second display area 200, and the (i+1)th data signal line D(i+1) is in a floating state in the even-numbered pixel row of the second display area 200.
[0118] In one exemplary embodiment, such as Figure 9 and Figure 10 As shown, the (i+2)th data signal line D(i+2) is connected to the third color sub-pixel P3 in the odd-numbered pixel rows of the first display area 100, the (i+2)th data signal line D(i+2) is connected to the first color sub-pixel P1 in the even-numbered pixel rows of the first display area 100, the (i+2)th data signal line D(i+2) is connected to the third color sub-pixel P3 in the odd-numbered pixel rows of the second display area 200, and the (i+2)th data signal line D(i+2) is connected to the first color sub-pixel P1 in the even-numbered pixel rows of the second display area 200.
[0119] In one exemplary embodiment, such as Figure 9 and Figure 10 As shown, the (i+3)th data signal line D(i+3) is in a floating state in the odd-numbered pixel rows of the first display area 100, and is connected to the second color sub-pixel P2 in the even-numbered pixel rows of the first display area 100. The (i+3)th data signal line D(i+3) is in a floating state in the odd-numbered pixel rows of the second display area 200, and is connected to the second color sub-pixel P2 in the even-numbered pixel rows of the second display area 200.
[0120] In one exemplary embodiment, such as Figure 9 and Figure 10 As shown, the (i+4)th data signal line D(i+4) is connected to the first color sub-pixel P1 in the odd-numbered pixel rows of the first display area 100, the (i+4)th data signal line D(i+4) is connected to the third color sub-pixel P3 in the even-numbered pixel rows of the first display area 100, the (i+4)th data signal line D(i+4) is connected to the first color sub-pixel P1 in the odd-numbered pixel rows of the second display area 200, and the (i+4)th data signal line D(i+4) is connected to the third color sub-pixel P3 in the even-numbered pixel rows of the second display area 200.
[0121] In one exemplary embodiment, such as Figure 9 and Figure 10 As shown, the (i+5)th data signal line D(i+5) is connected to the second color sub-pixel P2 in the odd-numbered pixel row of the first display area 100, the (i+5)th data signal line D(i+5) is in a floating state in the even-numbered pixel row of the first display area 100, and the (i+5)th data signal line D(i+5) is in a floating state in the second display area 200.
[0122] In one exemplary embodiment, such as Figure 9 and Figure 10 As shown, the (i+6)th data signal line D(i+6) is connected to the third color sub-pixel P3 in the odd-numbered pixel row of the first display area 100, and the (i+6)th data signal line D(i+6) is connected to the first color sub-pixel P1 in the even-numbered pixel row of the first display area 100. The (i+6)th data signal line D(i+6) is in a floating state in the second display area 200.
[0123] In one exemplary embodiment, such as Figure 9 and Figure 10 As shown, the (i+7)th data signal line D(i+7) is in a floating state in the odd-numbered pixel rows of the first display area 100, the (i+7)th data signal line D(i+7) is connected to the second color sub-pixel P2 in the even-numbered pixel rows of the first display area 100, and the (i+7)th data signal line D(i+7) is in a floating state in the second display area 200.
[0124] In one exemplary embodiment, such as Figure 9 and Figure 10 As shown, for each row of pixels in the second display area 200, two adjacent second pixel units 400 can be spaced apart by a distance of about one second pixel unit 400 in the second direction DR2 (i.e., the row direction).
[0125] In one exemplary embodiment, such as Figure 9 and Figure 10 As shown, the even-numbered pixel rows of the second display area 200 and the odd-numbered pixel rows of the second display area 200 can be staggered by a sixth distance. The even-numbered pixel rows of the first display area 100 and the odd-numbered pixel rows of the first display area 100 can be staggered by a seventh distance, which is greater than the sixth distance. For example, two adjacent pixel rows in the second display area 200 are staggered in the first direction DR1 (i.e., the column direction) by a distance less than one second pixel unit 400, for example, approximately the distance of the second color sub-pixel P2 in the second pixel unit 400.
[0126] In one exemplary embodiment, such as Figure 9 and Figure 10As shown, the odd-numbered pixel rows of the second display area 200 are aligned with the same color sub-pixels in the odd-numbered pixel rows of the first display area 100, and the even-numbered pixel rows of the second display area 200 are aligned with the same color sub-pixels in the even-numbered pixel rows of the first display area 100.
[0127] In this way, the arrangement order of the first color sub-pixel P1 and the third color sub-pixel P3 in the first display area 100 and the second display area 200 is consistent with the output order of the data signal transmitted by the data signal line shared by the first color sub-pixel P1 and the third color sub-pixel P3. This avoids crosstalk problems in the first color image or the third color image, thereby improving the display quality of the second display area 200.
[0128] In one exemplary embodiment, such as Figures 3 to 10 As shown, adjacent sub-pixels in adjacent pixel rows in the second display area 200 have different colors. This ensures that the arrangement order of the first-color sub-pixels P1 and the third-color sub-pixels P3 in the first display area 100 and the second display area 200 is consistent with the output order of the data signals transmitted by the data signal lines shared by the first-color sub-pixels P1 and the third-color sub-pixels P3. This avoids crosstalk problems in the first-color or third-color images, thereby improving the display quality of the second display area 200.
[0129] The above are merely examples of various application scenarios for which the pixel structure provided in the exemplary embodiments of this disclosure is applicable. Besides the application scenarios listed above, the pixel structure in the exemplary embodiments of this disclosure is also applicable to other application scenarios. For example, it can avoid crosstalk by ensuring that the arrangement order of multiple sub-pixels in the first and second display areas is consistent with the output order of the data signals transmitted by the data signal lines shared by these multiple sub-pixels. Here, the application scenarios of the pixel structure provided in the exemplary embodiments of this disclosure are not limited.
[0130] Based on the same inventive concept, this disclosure also provides a display panel. The display panel may include the pixel structure described in one or more of the above embodiments.
[0131] In one exemplary embodiment, the display panel may be an OLED display panel.
[0132] In one exemplary embodiment, the display panel can be a curved display panel. For example, the curved display panel can be a double-curved display panel or a quad-curved display panel, etc. Figure 11 or Figure 12 As shown, at least one edge of the second display area 200 is formed by bending at a certain arc.
[0133] In one exemplary embodiment, such as Figure 11 As shown, the display panel can be a double-curved display panel, and the two second display areas 200 can be located on both sides of the first display area 100 along the first direction DR1. Along the second direction DR2, the second display area 200 can include: a first side extending close to the first display area 100 and along the first direction DR1, a second side opposite to the first side, a third side, and a fourth side opposite to the third side. One end of the third side is connected to one end of the first side, and the other end of the third side is curved at a certain arc towards the direction close to the second side and connected to one end of the second side. One end of the fourth side is connected to the other end of the first side, and the other end of the fourth side is curved at a certain arc and connected to the other end of the second side.
[0134] In one exemplary embodiment, such as Figure 12 As shown, the display panel can be a four-sided curved display panel. The second display area 200 consists of the four corner areas of the display area of the display panel. The second display area 200 includes: a first side extending near the first display area 100 and along the first direction DR1, a second side extending near the first display area 100 and along the first direction DR1, and a third side. One end of the third side is curved with a certain arc towards the direction near the first side and connects to one end of the first side. One end of the third side is curved with a certain arc towards the direction near the second side and connects to one end of the second side. The other end of the second side is connected to the other end of the first side. Here, this embodiment of the disclosure does not limit the scope of the invention.
[0135] Furthermore, in addition to the pixel structure described above, the display panel in this embodiment may also include other necessary components and structures, such as scan signal lines or TFT substrates. Those skilled in the art can make corresponding designs and additions depending on the type of display panel, which will not be elaborated upon here and should not be construed as limiting this disclosure.
[0136] The description of the display panel embodiments above is similar to the description of the pixel structure embodiments above, and has similar beneficial effects. For technical details not disclosed in the pixel structure embodiments of this disclosure, please refer to the description of the pixel structure embodiments of this disclosure for understanding. Further details will not be repeated here.
[0137] Based on the same inventive concept, this disclosure also provides a display device. The display device may include the display panel described in one or more of the above embodiments.
[0138] In one exemplary embodiment, the display device can be any product or component with a display function, such as a mobile phone, tablet computer, television, monitor, notebook computer, digital photo frame, or navigator. Here, this disclosure does not limit the type of display device. Other essential components of the display device are those that should be understood by those skilled in the art, and will not be described in detail here, nor should they be construed as limiting this disclosure.
[0139] The description of the display device embodiments above is similar to the description of the display panel embodiments above, and has similar beneficial effects. For technical details not disclosed in the display device embodiments of this disclosure, please refer to the description of the display panel embodiments of this disclosure for understanding. Further details will not be repeated here.
[0140] While the embodiments disclosed herein are as described above, the above content is merely for the purpose of facilitating understanding of this disclosure and is not intended to limit this disclosure. Any person skilled in the art to which this disclosure pertains may make any modifications and changes in the form and details of the implementation without departing from the spirit and scope disclosed herein, but the scope of patent protection of this disclosure shall still be determined by the scope defined in the appended claims.
Claims
1. A pixel structure, characterized in that, include: A first display area and a second display area, wherein the pixel density of the second display area is less than the pixel density of the first display area; It also includes: multiple pixel rows, multiple pixel columns, and multiple data signal lines; each pixel row includes: a first color sub-pixel, a second color sub-pixel, and a third color sub-pixel of different colors; each pixel column is connected to a data signal line; the multiple pixel columns include: any one or more of the first pixel column and the second pixel column. The first pixel column includes: a first sub-region located in the first display area and a second sub-region located in the second display area, which are arranged sequentially along the first direction. The first sub-region includes: alternating first color sub-pixels and third color sub-pixels. The second sub-region includes any of the following arrangements: alternating first color sub-pixels and blank areas, alternating blank areas and third color sub-pixels, and alternating first color sub-pixels and third color sub-pixels. Blank areas refer to areas where no sub-pixels are set. The second pixel column includes: a third sub-region located in the first display area and a fourth sub-region located in the second display area, which are arranged sequentially along the first direction. The third sub-region includes: alternating third color sub-pixels and first color sub-pixels. The fourth sub-region includes any of the following arrangements: alternating third color sub-pixels and blank areas, alternating blank areas and first color sub-pixels, and alternating third color sub-pixels and first color sub-pixels. The plurality of pixel columns further includes: a third pixel column, wherein all sub-pixels in the third pixel column are second color sub-pixels, the third pixel column includes: a fifth sub-region located in the first display area and a sixth sub-region located in the second display area, arranged sequentially along a first direction, the fifth sub-region including: a plurality of first sub-regions arranged at intervals, each first sub-region including: two second color sub-pixels, the sixth sub-region including: a plurality of second sub-regions and a plurality of third sub-regions arranged alternately; wherein, the second sub-region includes one or two second color sub-pixels, and the third sub-region is not provided with sub-pixels; or, the second sub-region is not provided with sub-pixels, and the third sub-region includes one or two second color sub-pixels.
2. The pixel structure according to claim 1, characterized in that, Both the first pixel column and the second pixel column are in the form of broken lines.
3. The pixel structure according to claim 1, characterized in that, The third pixel column is in a straight line.
4. The pixel structure according to any one of claims 1 to 3, characterized in that, Also includes: Multiple pixel column groups, wherein the i-th pixel column group in the multiple pixel column groups includes: the i-th pixel column to the (i+7)-th pixel column arranged sequentially along the second direction, where i is a positive integer greater than or equal to 1, wherein... The i-th pixel column includes: a plurality of first-color sub-pixels and a plurality of third-color sub-pixels alternately arranged in the first display area, and a plurality of first-color sub-pixels and a plurality of blank areas alternately arranged in the second display area; The (i+1)th pixel column includes: a plurality of second-color sub-pixels spaced apart in the first display area and a plurality of second-color sub-pixels and a plurality of blank areas alternately arranged in the second display area; The (i+2)th pixel column includes: a plurality of third-color sub-pixels and a plurality of first-color sub-pixels alternately arranged in the first display area, and a plurality of third-color sub-pixels and a plurality of first-color sub-pixels alternately arranged in the second display area; The (i+3)th pixel column includes: a plurality of second-color sub-pixels spaced apart in the first display area and a plurality of blank areas and a plurality of second-color sub-pixels alternately arranged in the second display area; The (i+4)th pixel column includes: a plurality of first-color sub-pixels and a plurality of third-color sub-pixels alternately arranged in the first display area, and a plurality of blank areas and a plurality of third-color sub-pixels alternately arranged in the second display area; The (i+5)th pixel column includes: a plurality of second-color subpixels spaced apart in the first display area; The (i+6)th pixel column includes: a plurality of third-color sub-pixels and a plurality of first-color sub-pixels alternately arranged in the first display area; The i+7th pixel column includes a plurality of second-color subpixels spaced apart in the first display area.
5. The pixel structure according to claim 4, characterized in that, Also includes: Multiple data signal line groups, wherein the i-th data signal line group comprises: an i-th data signal line connected to the i-th pixel column to an i+7-th data signal line sequentially arranged along a second direction, wherein... The i-th data signal line is connected to the first color sub-pixel in the odd-numbered pixel row of the first display area, connected to the third color sub-pixel in the even-numbered pixel row of the first display area, and connected to the first color sub-pixel in the odd-numbered pixel row of the second display area, while the even-numbered pixel row of the second display area is in a floating state. The (i+1)th data signal line is connected to the second color sub-pixel in the odd-numbered pixel row of the first display area, is in a floating state in the even-numbered pixel row of the first display area, and is connected to the second color sub-pixel in the odd-numbered pixel row of the second display area and is in a floating state in the even-numbered pixel row of the second display area. The (i+2)th data signal line is connected to the third color sub-pixel in the odd-numbered pixel row of the first display area, to the first color sub-pixel in the even-numbered pixel row of the first display area, to the third color sub-pixel in the odd-numbered pixel row of the second display area, and to the first color sub-pixel in the even-numbered pixel row of the second display area. The (i+3)th data signal line is in a floating state in the odd-numbered pixel row of the first display area and connected to the second color sub-pixel in the even-numbered pixel row of the first display area; it is in a floating state in the odd-numbered pixel row of the second display area and connected to the second color sub-pixel in the even-numbered pixel row of the second display area. The (i+4)th data signal line is connected to the first color sub-pixel in the odd-numbered pixel row of the first display area, and to the third color sub-pixel in the even-numbered pixel row of the first display area. In the odd-numbered pixel row of the second display area, it is in a floating state and is connected to the third color sub-pixel in the even-numbered pixel row of the second display area. The i+5th data signal line is connected to the second color sub-pixel in the odd-numbered pixel row of the first display area, and is in a floating state in the even-numbered pixel row of the first display area and in the second display area. The i+6th data signal line is connected to the third color sub-pixel in the odd-numbered pixel row of the first display area and the first color sub-pixel in the even-numbered pixel row of the first display area, and is in a floating state in the second display area. The i+7th data signal line is in a floating state in the odd-numbered pixel row of the first display area, connected to the second color sub-pixel in the even-numbered pixel row of the first display area, and is also in a floating state in the second display area.
6. The pixel structure according to any one of claims 1 to 3, characterized in that, Also includes: Multiple pixel column groups, wherein the i-th pixel column group in the multiple pixel column groups includes: the i-th pixel column to the (i+7)-th pixel column arranged sequentially along the second direction, where i is a positive integer greater than or equal to 1, wherein... The i-th pixel column includes: a plurality of first-color sub-pixels and a plurality of third-color sub-pixels alternately arranged in the first display area, and a plurality of first-color sub-pixels and a plurality of blank areas alternately arranged in the second display area; The (i+1)th pixel column includes: a plurality of second-color sub-pixels spaced apart in the first display area and a plurality of second-color sub-pixels and a plurality of blank areas alternately arranged in the second display area; The (i+2)th pixel column includes: a plurality of third-color sub-pixels and a plurality of first-color sub-pixels alternately arranged in the first display area, and a plurality of third-color sub-pixels and a plurality of blank areas alternately arranged in the second display area; The (i+3)th pixel column includes: a plurality of second-color subpixels spaced apart in the first display area; The (i+4)th pixel column includes: a plurality of first-color sub-pixels and a plurality of third-color sub-pixels alternately arranged in the first display area, and a plurality of blank areas and a plurality of third-color sub-pixels alternately arranged in the second display area; The (i+5)th pixel column includes: a plurality of second-color sub-pixels spaced apart in the first display area and a plurality of blank areas and a plurality of second-color sub-pixels alternately arranged in the second display area; The i+6th pixel column includes: a plurality of third-color sub-pixels and a plurality of first-color sub-pixels alternately arranged in the first display area, and a plurality of blank areas and a plurality of first-color sub-pixels alternately arranged in the second display area; The i+7th pixel column includes a plurality of second-color subpixels spaced apart in the first display area.
7. The pixel structure according to claim 6, characterized in that, Also includes: Multiple data signal line groups, wherein the i-th data signal line group comprises: an i-th data signal line connected to the i-th pixel column to an i+7-th data signal line sequentially arranged along a second direction, wherein... The i-th data signal line is connected to the first color sub-pixel in the odd-numbered pixel row of the first display area, connected to the third color sub-pixel in the even-numbered pixel row of the first display area, and connected to the first color sub-pixel in the odd-numbered pixel row of the second display area, while the even-numbered pixel row of the second display area is in a floating state. The (i+1)th data signal line is connected to the second color sub-pixel in the odd-numbered pixel row of the first display area, is in a floating state in the even-numbered pixel row of the first display area, and is connected to the second color sub-pixel in the odd-numbered pixel row of the second display area and is in a floating state in the even-numbered pixel row of the second display area. The (i+2)th data signal line is connected to the third color sub-pixel in the odd-numbered pixel row of the first display area, to the first color sub-pixel in the even-numbered pixel row of the first display area, and to the third color sub-pixel in the odd-numbered pixel row of the second display area, while the even-numbered pixel row of the second display area is in a floating state. The (i+3)th data signal line is in a floating state in the odd-numbered pixel row of the first display area, connected to the second color sub-pixel in the even-numbered pixel row of the first display area, and is also in a floating state in the second display area. The (i+4)th data signal line is connected to the first color sub-pixel in the odd-numbered pixel row of the first display area, and to the third color sub-pixel in the even-numbered pixel row of the first display area. In the odd-numbered pixel row of the second display area, it is in a floating state and is connected to the third color sub-pixel in the even-numbered pixel row of the second display area. The i+5th data signal line is connected to the second color sub-pixel in the odd-numbered pixel row of the first display area, is in a floating state in the even-numbered pixel row of the first display area, and is in a floating state in the odd-numbered pixel row of the second display area and connected to the second color sub-pixel in the even-numbered pixel row of the second display area. The i+6th data signal line is connected to the third color sub-pixel in the odd-numbered pixel row of the first display area and to the first color sub-pixel in the even-numbered pixel row of the first display area. In the odd-numbered pixel row of the second display area, it is in a floating state and is connected to the first color sub-pixel in the even-numbered pixel row of the second display area. The i+7th data signal line is in a floating state in the odd-numbered pixel row of the first display area, connected to the second color sub-pixel in the even-numbered pixel row of the first display area, and is also in a floating state in the second display area.
8. The pixel structure according to any one of claims 1 to 3, characterized in that, Also includes: Multiple pixel column groups, wherein the i-th pixel column group in the multiple pixel column groups includes: the i-th pixel column to the (i+7)-th pixel column arranged sequentially along the second direction, where i is a positive integer greater than or equal to 1, wherein... The i-th pixel column includes: a plurality of first-color sub-pixels and a plurality of third-color sub-pixels alternately arranged in the first display area, and a plurality of blank areas and a plurality of third-color sub-pixels alternately arranged in the second display area; The (i+1)th pixel column includes: a plurality of second-color sub-pixels spaced apart in the first display area; The (i+2)th pixel column includes: a plurality of third-color sub-pixels and a plurality of first-color sub-pixels alternately arranged in the first display area, and a plurality of third-color sub-pixels and a plurality of blank areas alternately arranged in the second display area; The (i+3)th pixel column includes: a plurality of second-color subpixels spaced apart in the first display area; The (i+4)th pixel column includes: a plurality of first-color sub-pixels and a plurality of third-color sub-pixels alternately arranged in the first display area, and a plurality of first-color sub-pixels and a plurality of blank areas alternately arranged in the second display area; The (i+5)th pixel column includes: a plurality of second-color sub-pixels spaced apart in the first display area and a plurality of second-color sub-pixels and a plurality of blank areas alternately arranged in the second display area; The i+6th pixel column includes: a plurality of third-color sub-pixels and a plurality of first-color sub-pixels alternately arranged in the first display area, and a plurality of blank areas and a plurality of first-color sub-pixels alternately arranged in the second display area; The i+7th pixel column includes: a plurality of second-color subpixels spaced apart in the first display area and a plurality of blank areas and a plurality of second-color subpixels alternately arranged in the second display area.
9. The pixel structure according to claim 8, characterized in that, Also includes: Multiple data signal line groups, wherein the i-th data signal line group comprises: an i-th data signal line connected to the i-th pixel column to an i+7-th data signal line sequentially arranged along a second direction, wherein... The i-th data signal line is connected to the first color sub-pixel in the odd-numbered pixel row of the first display area, connected to the third color sub-pixel in the even-numbered pixel row of the first display area, and is in a floating state with the odd-numbered pixel row of the second display area and connected to the third color sub-pixel in the even-numbered pixel row of the second display area. The (i+1)th data signal line is connected to the second color sub-pixel in the odd-numbered pixel row of the first display area, and is in a floating state in the even-numbered pixel row of the first display area and in the second display area. The (i+2)th data signal line is connected to the third color sub-pixel in the odd-numbered pixel row of the first display area, to the first color sub-pixel in the even-numbered pixel row of the first display area, and to the third color sub-pixel in the odd-numbered pixel row of the second display area, while the even-numbered pixel row of the second display area is in a floating state. The (i+3)th data signal line is in a floating state in the odd-numbered pixel row of the first display area, and the (i+3)th data signal line is connected to the second color sub-pixel in the even-numbered pixel row of the first display area and is in a floating state in the second display area. The (i+4)th data signal line is connected to the first color sub-pixel in the odd-numbered pixel row of the first display area, connected to the third color sub-pixel in the even-numbered pixel row of the first display area, connected to the first color sub-pixel in the odd-numbered pixel row of the second display area, and is in a floating state in the even-numbered pixel row of the second display area. The i+5th data signal line is connected to the second color sub-pixel in the odd-numbered pixel row of the first display area, is in a floating state in the even-numbered pixel row of the first display area, and is connected to the second color sub-pixel in the odd-numbered pixel row of the second display area and is in a floating state in the even-numbered pixel row of the second display area. The i+6th data signal line is connected to the third color sub-pixel in the odd-numbered pixel row of the first display area and to the first color sub-pixel in the even-numbered pixel row of the first display area. In the odd-numbered pixel row of the second display area, it is in a floating state and is connected to the first color sub-pixel in the even-numbered pixel row of the second display area. The i+7th data signal line is in a floating state in the odd-numbered pixel rows of the first display area and connected to the second color sub-pixel in the even-numbered pixel rows of the first display area. It is in a floating state in the odd-numbered pixel rows of the second display area and connected to the second color sub-pixel in the even-numbered pixel rows of the second display area.
10. The pixel structure according to any one of claims 1 to 3, characterized in that, Also includes: Multiple pixel column groups, wherein the i-th pixel column group in the multiple pixel column groups includes: the i-th pixel column to the (i+7)-th pixel column arranged sequentially along the second direction, where i is a positive integer greater than or equal to 1, wherein... The i-th pixel column includes: a plurality of first-color sub-pixels and a plurality of third-color sub-pixels alternately arranged in the first display area; The (i+1)th pixel column includes: a plurality of second-color sub-pixels spaced apart in the first display area and a plurality of second-color sub-pixels and a plurality of blank areas alternately arranged in the second display area; The (i+2)th pixel column includes: a plurality of third-color sub-pixels and a plurality of first-color sub-pixels alternately arranged in the first display area, and a plurality of third-color sub-pixels and a plurality of first-color sub-pixels alternately arranged in the second display area; The (i+3)th pixel column includes: a plurality of second-color sub-pixels spaced apart in the first display area and a plurality of blank areas and a plurality of second-color sub-pixels alternately arranged in the second display area; The (i+4)th pixel column includes: a plurality of first-color sub-pixels and a plurality of third-color sub-pixels alternately arranged in the first display area and a plurality of first-color sub-pixels and a plurality of third-color sub-pixels alternately arranged in the second display area; The (i+5)th pixel column includes: a plurality of second-color subpixels spaced apart in the first display area; The (i+6)th pixel column includes: a plurality of third-color sub-pixels and a plurality of first-color sub-pixels alternately arranged in the first display area; The i+7th pixel column includes a plurality of second-color subpixels spaced apart in the first display area.
11. The pixel structure according to claim 10, characterized in that, Also includes: Multiple data signal line groups, wherein the i-th data signal line group comprises: an i-th data signal line connected to the i-th pixel column to an i+7-th data signal line sequentially arranged along a second direction, wherein... The i-th data signal line is connected to the first color sub-pixel in the odd-numbered pixel row of the first display area, connected to the third color sub-pixel in the even-numbered pixel row of the first display area, and is in a floating state in the second display area; The (i+1)th data signal line is connected to the second color sub-pixel in the odd-numbered pixel row of the first display area, is in a floating state in the even-numbered pixel row of the first display area, and is connected to the second color sub-pixel in the odd-numbered pixel row of the second display area and is in a floating state in the even-numbered pixel row of the second display area. The (i+2)th data signal line is connected to the third color sub-pixel in the odd-numbered pixel row of the first display area, to the first color sub-pixel in the even-numbered pixel row of the first display area, to the third color sub-pixel in the odd-numbered pixel row of the second display area, and to the first color sub-pixel in the even-numbered pixel row of the second display area. The (i+3)th data signal line is in a floating state in the odd-numbered pixel row of the first display area and connected to the second color sub-pixel in the even-numbered pixel row of the first display area; it is in a floating state in the odd-numbered pixel row of the second display area and connected to the second color sub-pixel in the even-numbered pixel row of the second display area. The (i+4)th data signal line is connected to the first color sub-pixel in the odd-numbered pixel row of the first display area, to the third color sub-pixel in the even-numbered pixel row of the first display area, and to the first color sub-pixel in the odd-numbered pixel row of the second display area and the third color sub-pixel in the even-numbered pixel row of the second display area. The i+5th data signal line is connected to the second color sub-pixel in the odd-numbered pixel row of the first display area, and is in a floating state in the even-numbered pixel row of the first display area and in the second display area. The i+6th data signal line is connected to the third color sub-pixel in the odd-numbered pixel row of the first display area and the first color sub-pixel in the even-numbered pixel row of the first display area, and is in a floating state in the second display area. The i+7th data signal line is in a floating state in the odd-numbered pixel row of the first display area, connected to the second color sub-pixel in the even-numbered pixel row of the first display area, and is also in a floating state in the second display area.
12. The pixel structure according to claim 1, characterized in that, The odd-numbered pixel rows of the second display area are aligned with the same color sub-pixels in the odd-numbered pixel rows of the first display area, and the even-numbered pixel rows of the second display area are aligned with the same color sub-pixels in the even-numbered pixel rows of the first display area; Alternatively, the odd-numbered pixel rows of the second display area are aligned with the same color sub-pixels in the odd-numbered pixel rows of the first display area, the first color sub-pixels in the even-numbered pixel rows of the second display area are aligned with the third color sub-pixels in the odd-numbered pixel rows of the first display area, the second color sub-pixels in the even-numbered pixel rows of the second display area are aligned with the second color sub-pixels in the odd-numbered pixel rows of the first display area, and the third color sub-pixels in the even-numbered pixel rows of the second display area are aligned with the first color sub-pixels in the odd-numbered pixel rows of the first display area.
13. The pixel structure according to claim 1, characterized in that, In the second display area, adjacent sub-pixels in adjacent pixel rows have different colors.
14. The pixel structure according to claim 1, characterized in that, The first display area includes a plurality of first pixel units, and the second display area includes a plurality of second pixel units, wherein, The arrangement density of the second pixel unit in the second display area is less than the arrangement density of the plurality of first pixel units in the first display area, and both the first pixel unit and the second pixel unit include: a first color sub-pixel, two second color sub-pixels and a third color sub-pixel, and the two second color sub-pixels are aligned along the first direction.
15. The pixel structure according to claim 1 or 14, characterized in that, The first color sub-pixel and the third color sub-pixel are hexagonal, and the second color sub-pixel is pentagonal.
16. The pixel structure according to claim 1 or 14, characterized in that, The first color sub-pixel is a red sub-pixel, the second color sub-pixel is a green sub-pixel, and the third color sub-pixel is a blue sub-pixel.
17. A display panel, characterized in that, include: The pixel structure as described in any one of claims 1 to 16.
18. A display device, characterized in that, include: The display panel as described in claim 17.
Citation Information
Patent Citations
Display panel and manufacturing method thereof, and display device
CN111837238A