Display substrate and display device
The display substrate design with strategically placed light-transmitting openings in the black matrix layer addresses low light extraction efficiency and signal transmission issues, enhancing OLED device performance by increasing efficiency and reducing power consumption.
Patent Information
- Application Number
- JP2022558520
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-06-29
- Filing Date
- 2021-11-04
- Publication Date
- 2026-01-27
- Estimated Expiration
- 2041-11-04
AI Technical Summary
Conventional OLED display substrates suffer from low light extraction efficiency due to the use of polarizers, leading to high power consumption, and difficulty in transmitting signal light for photosensitive elements like image sensors.
A display substrate design with a black matrix layer featuring first and second light-transmitting openings, arranged to allow light from sub-pixels to pass through, and orthogonal projections of these openings positioned between signal lines, enabling efficient light transmission for both image sensing and display functionality.
Enhances light extraction efficiency and reduces power consumption while maintaining display quality by allowing sufficient light transmission for photosensitive elements, thus improving the overall performance of OLED display devices.
Smart Images

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Abstract
Description
[Technical Field]
[0001] This application claims priority from International Application No. PCT / CN2021 / 073725 filed on January 26, 2021, and from Chinese Patent Application No. 202110726478.2 filed on June 29, 2021, the entire contents of which are incorporated herein by reference.
[0002] The embodiments of the present disclosure relate to a display substrate and a display device. [Background technology]
[0003] OLED (Organic Light Emitting Diode) display devices have a series of advantages such as self-luminescence, high contrast, high resolution, wide viewing angle, low power consumption, fast response speed, and low manufacturing cost, and have become one of the main development directions for next-generation display devices, and therefore have attracted more and more attention. Summary of the Invention [Means for solving the problem]
[0004] At least one embodiment of the present disclosure provides a display substrate having a plurality of sub-pixels arranged in a plurality of rows and a plurality of columns, the display substrate including: a base substrate; a driving circuit layer provided on the base substrate; a light-emitting device layer provided on a side of the driving circuit layer away from the base substrate; and a black matrix layer provided on a side of the light-emitting device layer away from the base substrate, wherein each of the plurality of sub-pixels includes a pixel driving circuit provided in the driving circuit layer and a light-emitting device provided in the light-emitting device layer, the pixel driving circuit being configured to drive the light-emitting device, and the driving circuit layers being provided parallel to each other and periodically arranged. the black matrix layer includes a plurality of first light-transmitting openings and a plurality of second light-transmitting openings, each of which exposes a light-emitting device of each of the sub-pixels; the black matrix layer includes a plurality of first light-transmitting openings and a plurality of second light-transmitting openings, each of which exposes a light-emitting device of each of the sub-pixels; the plurality of second light-transmitting openings are disposed between the plurality of first light-transmitting openings; and orthogonal projections of the plurality of second light-transmitting openings on the base substrate are respectively positioned between the orthogonal projections of one first signal line on the base substrate and the orthogonal projections of one second signal line on the base substrate that is closest to the one first signal line.
[0005] For example, in a display substrate according to at least one embodiment of the present disclosure, the first signal line is a light-emitting control signal line, and the second signal line is a reset voltage line.
[0006] For example, in a display substrate according to at least one embodiment of the present disclosure, the plurality of sub-pixels in the multiple rows and columns include at least one first sub-pixel and at least one second sub-pixel adjacent to and located below the at least one first sub-pixel, the pixel driving circuits of the at least one first sub-pixel share one light-emitting control signal line and one reset voltage line, the pixel driving circuits of the at least one second sub-pixel share one light-emitting control signal line and one reset voltage line, and a positive projection of a second light-transmitting opening of one row on the base substrate is included between a positive projection of the light-emitting control signal line shared by the pixel driving circuits of the at least one first sub-pixel and a positive projection of the reset voltage line shared by the pixel driving circuits of the at least one second sub-pixel.
[0007] For example, in a display substrate according to at least one embodiment of the present disclosure, the driving circuit layer includes third signal lines and fourth signal lines that are arranged parallel to each other and periodically disposed, the third signal lines and the fourth signal lines intersect with the first signal lines and the second signal lines, respectively, the third signal lines and the fourth signal lines are configured to provide different electrical signals to the plurality of sub-pixels, and orthogonal projections of the plurality of second light-transmitting openings on the base substrate are each located between the orthogonal projection of one third signal line on the base substrate and the orthogonal projection of one fourth signal line adjacent to the one third signal line on the base substrate.
[0008] For example, in a display substrate according to at least one embodiment of the present disclosure, the third signal line is a first power supply line, and the fourth signal line is a data line.
[0009] For example, in a display substrate according to at least one embodiment of the present disclosure, the first signal line, the second signal line, the third signal line, and the fourth signal line define a plurality of first regions, and the orthogonal projections of the plurality of second light-transmitting openings on the base substrate are respectively located within the orthogonal projections of the plurality of first regions on the base substrate.
[0010] For example, in a display substrate according to at least one embodiment of the present disclosure, the pixel driving circuit includes a thin film transistor and a storage capacitor, the thin film transistor includes a gate provided on the base substrate, the storage capacitor includes a first capacitor electrode and a second capacitor electrode provided on the base substrate, the second capacitor electrode is provided on the side of the first capacitor electrode away from the base substrate, and the light-emitting control signal line is provided in the same layer as the gate and the first capacitor electrode.
[0011] For example, in a display substrate according to at least one embodiment of the present disclosure, the reset voltage line is provided in the same layer as the second capacitor electrode.
[0012] For example, a display substrate according to at least one embodiment of the present disclosure further includes a planarization layer provided on a side of the driving circuit layer away from the base substrate and a pixel definition layer located on the side of the planarization layer away from the base substrate, the pixel definition layer including a plurality of subpixel openings, the light emitting devices including a first electrode layer, a light emitting material layer, and a second electrode layer that are stacked in order in a direction away from the base substrate, the first electrode layer being provided on the side of the planarization layer away from the base substrate, the pixel definition layer being provided on the side of the first electrode layer away from the base substrate, the plurality of subpixel openings exposing the first electrode layers of the light emitting devices of the plurality of subpixels, the planarization layer including a plurality of vias, the first electrode layers of the light emitting devices of the plurality of subpixels being electrically connected to the pixel driving circuits of the plurality of subpixels by the plurality of vias, the plurality of vias corresponding to the plurality of subpixels located in the same row including a first via, a second via, and a third via, and a first straight line passing through the first via and the second via but not the third via.
[0013] For example, in a display substrate according to at least one embodiment of the present disclosure, the orthogonal projections of at least some of the plurality of vias on the base substrate are located within the orthogonal projections of the plurality of first regions on the base substrate, respectively.
[0014] For example, a display substrate according to at least one embodiment of the present disclosure further includes a plurality of connection electrodes provided on a side of the planarization layer closer to the base substrate, wherein first electrode layers of the light-emitting devices of the plurality of subpixels are electrically connected to the plurality of connection electrodes by the plurality of vias, respectively, and the plurality of connection electrodes are electrically connected to pixel driving circuits of the plurality of subpixels, and the orthogonal projections of at least some of the plurality of connection electrodes on the base substrate are located within the orthogonal projections of a plurality of first regions on the base substrate.
[0015] For example, in a display substrate according to at least one embodiment of the present disclosure, the plurality of subpixels include a red subpixel, a green subpixel, and a blue subpixel, and one blue subpixel, one red subpixel, and two green subpixels form one repeating unit, and the plurality of subpixels form a plurality of repeating units arranged in a plurality of rows and a plurality of columns, and four vias corresponding to one adjacent blue subpixel, one red subpixel, and two green subpixels located in the same row are not on the same straight line.
[0016] For example, in a display substrate according to at least one embodiment of the present disclosure, three vias corresponding to three adjacent green sub-pixels located in the same row are not on the same straight line.
[0017] For example, in a display substrate according to at least one embodiment of the present disclosure, the second straight line passes through a plurality of vias corresponding to a plurality of sub-pixels located in the same column in sequence.
[0018] For example, in a display substrate according to at least one embodiment of the present disclosure, the driving circuit layer includes a plurality of light-transmitting portions, which are light-transmitting in a direction perpendicular to the surface of the base substrate, and at least some of the second light-transmitting openings are arranged in one-to-one correspondence with at least some of the light-transmitting portions, and are configured to transmit light that forms a predetermined angle range with the surface of the base substrate.
[0019] For example, in a display substrate according to at least one embodiment of the present disclosure, in the corresponding second light-transmitting opening and light-transmitting portion, the planar shape of the second light-transmitting opening and the planar shape of the light-transmitting portion are at least partially the same in a direction parallel to the plate surface of the base substrate, and the planar size of the second light-transmitting opening is smaller than the planar size of the light-transmitting portion.
[0020] For example, in a display substrate according to at least one embodiment of the present disclosure, the first signal line, the second signal line, the third signal line, the fourth signal line and the plurality of connection electrodes collectively define the plurality of transparent portions.
[0021] For example, in a display substrate according to at least one embodiment of the present disclosure, one second light-transmitting opening is provided corresponding to each of the plurality of sub-pixels.
[0022] For example, in a display substrate according to at least one embodiment of the present disclosure, in the corresponding second light-transmitting opening and light-transmitting portion, in a direction parallel to the plate surface of the base substrate, the planar shape of the second light-transmitting opening is circular, the planar shape of the light-transmitting portion is polygonal, and the planar size of the second light-transmitting opening is smaller than the planar size of the light-transmitting portion.
[0023] For example, in a display substrate according to at least one embodiment of the present disclosure, one second light-transmitting opening is provided corresponding to every two sub-pixels among the plurality of sub-pixels.
[0024] For example, in a display substrate according to at least one embodiment of the present disclosure, the distance between two adjacent second light-transmitting openings among the plurality of second light-transmitting openings is 50 μm-60 μm.
[0025] For example, in a display substrate according to at least one embodiment of the present disclosure, in a correspondingly provided second light-transmitting opening and light-transmitting portion, the orthogonal projection of the second light-transmitting opening on the base substrate is located inside the orthogonal projection of the light-transmitting portion on the base substrate.
[0026] For example, in a display substrate according to at least one embodiment of the present disclosure, at least one of the plurality of first light-transmitting openings has an arcuate edge.
[0027] For example, in a display substrate according to at least one embodiment of the present disclosure, in a direction parallel to the surface of the base substrate, the planar shape of at least one of the plurality of first light-transmitting openings is elliptical, semi-elliptical, circular, semi-circular, track-shaped, or semi-track-shaped.
[0028] For example, in a display substrate according to at least one embodiment of the present disclosure, in a direction perpendicular to the surface of the base substrate, the plurality of subpixel openings and the plurality of first light-transmitting openings correspond one-to-one and overlap with each other, and for one corresponding subpixel opening and one corresponding first light-transmitting opening, the planar shape of the subpixel opening and the planar shape of the first light-transmitting opening are the same in a direction parallel to the surface of the base substrate.
[0029] For example, in a display substrate according to at least one embodiment of the present disclosure, the orthogonal projection of the sub-pixel opening on the base substrate is located within the orthogonal projection of the first light-transmitting opening on the base substrate.
[0030] For example, the display substrate according to at least one embodiment of the present disclosure further includes a color film layer, the color film layer including a plurality of color film patterns, and the plurality of color film patterns are respectively provided in the plurality of first light-transmitting openings.
[0031] At least one embodiment of the present disclosure further provides a display device including a display substrate according to an embodiment of the present disclosure.
[0032] For example, a display device according to at least one embodiment of the present disclosure further includes a textured touch surface and an image sensor array, the image sensor array being disposed on a side of the driving circuit layer away from the light emitting device layer and including a plurality of image sensors, the plurality of image sensors being configured to receive light emitted from a plurality of light emitting devices in the light emitting device layer, reflected by a texture on the textured touch surface, and passing through the second light-transmitting opening to reach the plurality of image sensors for texture collection.
[0033] At least one embodiment of the present disclosure provides a display substrate having a plurality of sub-pixels arranged in a plurality of rows and a plurality of columns, the display substrate including: a base substrate; a driving circuit layer provided on the base substrate; a light-emitting device layer provided on a side of the driving circuit layer away from the base substrate; and a black matrix layer provided on a side of the light-emitting device layer away from the base substrate, wherein each of the plurality of sub-pixels includes a pixel driving circuit provided in the driving circuit layer and a light-emitting device provided in the light-emitting device layer, the pixel driving circuit being configured to drive the light-emitting device, the driving circuit layer including first signal lines and second signal lines provided parallel to each other and periodically arranged, the first signal lines and the second signal lines being configured to provide different electrical signals to the plurality of sub-pixels, the black matrix layer including a plurality of first light-transmitting openings and a plurality of second light-transmitting openings, the plurality of first light-transmitting openings exposing the light-emitting devices of the plurality of sub-pixels, the plurality of second light-transmitting openings being respectively provided between the plurality of first light-transmitting openings, and the orthogonal projections of the plurality of second light-transmitting openings on the base substrate being respectively one a pixel defining layer disposed on the side of the planarization layer that is away from the base substrate, the pixel defining layer including a plurality of subpixel openings; a first electrode layer, a light emitting material layer, and a second electrode layer that are stacked in this order in a direction away from the base substrate; and the first electrode layer is disposed on the base substrate between the orthogonal projection of a first signal line on the base substrate and the orthogonal projection of a second signal line that is closest to the first signal line. the pixel definition layer is disposed on a side of the first electrode layer away from the base substrate, the pixel definition layer is disposed on a side of the first electrode layer away from the base substrate, and the plurality of sub-pixel openings respectively expose first electrode layers of light-emitting devices of the plurality of sub-pixels, the planarization layer includes a plurality of vias, the first electrode layers of the light-emitting devices of the plurality of sub-pixels are respectively electrically connected to pixel driving circuits of the plurality of sub-pixels through the plurality of vias, the plurality of vias corresponding to the plurality of sub-pixels located in the same row include a first via, a second via and a third via, and a first straight line passes through the first via and the second via;It does not penetrate the third via.
[0034] In order to more clearly explain the technical solutions of the embodiments of the present disclosure, the drawings of the embodiments will be briefly described below. It should be apparent that the drawings described below only relate to some embodiments of the present disclosure and do not limit the present disclosure. [Brief explanation of the drawings]
[0035] [Figure 1] FIG. 1 is a partial plan view schematic diagram of a display substrate according to at least one embodiment of the present disclosure. [Figure 2] FIG. 2 is a partial cross-sectional schematic view of a display substrate according to at least one embodiment of the present disclosure. [Figure 3] FIG. 3 is a partial schematic plan view of a pixel definition layer and a black matrix layer of a display substrate according to at least one embodiment of the present disclosure. [Figure 4] FIG. 4 is a partial schematic plan view of a planarization layer of a display substrate according to at least one embodiment of the present disclosure. [Figure 5] FIG. 5 is another partial cross-sectional schematic view of a display substrate according to at least one embodiment of the present disclosure. [Figure 6] FIG. 6 is another partial schematic plan view of a display substrate according to at least one embodiment of the present disclosure. [Figure 7A] FIG. 7A is a schematic diagram of a pixel driving circuit of a display substrate according to at least one embodiment of the present disclosure. [Figure 7B] FIG. 7B is a schematic diagram of another pixel driving circuit of a display substrate according to at least one embodiment of the present disclosure. [Figure 8] FIG. 8 is a partial schematic plan view of each functional layer of a display substrate according to at least one embodiment of the present disclosure and a partial schematic plan view after the functional layers are laminated in order. [Figure 9A] FIG. 9A is a partial schematic plan view of each functional layer of a display substrate according to at least one embodiment of the present disclosure and a partial schematic plan view after the functional layers are laminated in order. [Figure 9B]FIG. 9B is a partial schematic plan view of each functional layer of a display substrate according to at least one embodiment of the present disclosure and a partial schematic plan view after the functional layers are laminated in order. [Figure 10A] FIG. 10A is a partial schematic plan view of each functional layer of a display substrate according to at least one embodiment of the present disclosure and a partial schematic plan view after the functional layers are laminated in order. [Figure 10B] FIG. 10B is a partial schematic plan view of each functional layer of a display substrate according to at least one embodiment of the present disclosure and a partial schematic plan view after the functional layers are laminated in order. [Figure 11A] FIG. 11A is a partial schematic plan view of each functional layer of a display substrate according to at least one embodiment of the present disclosure and a partial schematic plan view after the functional layers are laminated in order. [Figure 11B] FIG. 11B is a partial schematic plan view of each functional layer of a display substrate according to at least one embodiment of the present disclosure and a partial schematic plan view after the functional layers are laminated in order. [Figure 12A] FIG. 12A is a partial schematic plan view of each functional layer of a display substrate according to at least one embodiment of the present disclosure and a partial schematic plan view after the functional layers are laminated in order. [Figure 12B] FIG. 12B is a partial schematic plan view of each functional layer of a display substrate according to at least one embodiment of the present disclosure and a partial schematic plan view after the functional layers are laminated in order. [Figure 13A] FIG. 13A is a partial schematic plan view of each functional layer of a display substrate according to at least one embodiment of the present disclosure and a partial schematic plan view after the functional layers are laminated in order. [Figure 13B] FIG. 13B is a partial schematic plan view of each functional layer of a display substrate according to at least one embodiment of the present disclosure and a partial schematic plan view after the functional layers are laminated in order. [Figure 14] FIG. 14 is a partial schematic plan view of a black matrix layer and a color film layer of a display substrate according to at least one embodiment of the present disclosure. [Figure 15] FIG. 15 is a schematic cross-sectional view of a display device according to at least one embodiment of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION
[0036] In order to clarify the objectives, technical solutions and advantages of the embodiments of the present disclosure, the technical solutions of the embodiments of the present disclosure will be clearly and completely described below with reference to the drawings of the embodiments of the present disclosure. It is obvious that the described embodiments are only some embodiments of the present disclosure, but not all embodiments. Based on the described embodiments of the present disclosure, all other embodiments that a person skilled in the art can obtain without creative work fall within the scope of protection of the present disclosure.
[0037] Unless otherwise defined, technical or scientific terms used in this disclosure should have the ordinary meaning understood by those skilled in the art. The words "first," "second," and similar words used in this disclosure do not denote any order, number, or importance, but are merely used to distinguish different components. Similar words such as "comprise" or "comprise" mean that the element or item appearing after the word covers the element or item listed before the word and its equivalents, but does not exclude other elements or components. Similar words such as "connect" or "couple" are not limited to physical or mechanical connections, but include electrical connections, whether direct or indirect. Terms such as "top," "bottom," "left," and "right" are merely used to indicate relative positional relationships, and if the absolute position of the objects being described changes, the relative positional relationships may change correspondingly.
[0038] To prevent light reflection from the screen, conventional OLED display substrates typically have a polarizer attached to the display substrate to improve the display substrate's comfort in ambient light. However, the inventors of the present disclosure discovered that the transmittance of polarizers is typically only about 40%, resulting in low light extraction efficiency and high power consumption for the display substrate.
[0039] In some embodiments, COE (Cover Film On Encapsulation) technology, i.e., replacing the polarizer with a color film (CF), is used to improve the light extraction efficiency of the display substrate, and this technology is advantageous for the development of highly integrated, lightweight and thin display substrates. In COE technology, a black matrix layer is formed on a display substrate, and at positions corresponding to the light-emitting devices of the sub-pixels, the black matrix layer has light-transmitting openings that allow light emitted by the light-emitting devices of the sub-pixels to pass through. The above-mentioned color film is then provided in the light-transmitting openings. In this case, the black matrix layer can absorb light and also shield part of the metal in the display substrate, thereby reducing the light reflectance of the display substrate. Meanwhile, in order to realize functions such as fingerprint recognition, a photosensitive element such as an image sensor is usually provided on the non-display side of the display substrate. In this case, the display substrate also needs to have a certain light transmittance so that signal light incident from the display side of the display substrate can pass through the display substrate and reach the non-display side of the display substrate. However, with the structure of conventional display substrates, it is difficult to realize a light-transmitting region that can transmit signal light. Therefore, it is necessary to reconfigure part of the structure of the display substrate to allow the display substrate to transmit signal light.
[0040] At least one embodiment of the present disclosure provides a display substrate and a display device, the display substrate having a plurality of sub-pixels arranged in a plurality of rows and a plurality of columns, the display substrate including: a base substrate; a driving circuit layer provided on the base substrate; a light-emitting device layer provided on a side of the driving circuit layer away from the base substrate; and a black matrix layer provided on a side of the light-emitting device layer away from the base substrate, each of the plurality of sub-pixels including a pixel driving circuit provided on the driving circuit layer and a light-emitting device provided on the light-emitting device layer, the pixel driving circuit being configured to drive the light-emitting device, and the driving circuit layers being arranged parallel to each other and periodically the black matrix layer includes a plurality of first light-transmitting openings and a plurality of second light-transmitting openings, each of the plurality of first light-transmitting openings exposing the light-emitting devices of the plurality of sub-pixels, and the plurality of second light-transmitting openings are disposed between the plurality of first light-transmitting openings, and orthogonal projections of the plurality of second light-transmitting openings on the base substrate are each located between the orthogonal projections of one of the first signal lines on the base substrate and the orthogonal projections of one of the second signal lines that is closest to one of the first signal lines on the base substrate.
[0041] In the display substrate according to at least one embodiment of the present disclosure, the black matrix layer has a plurality of second light-transmitting openings, which can be used to transmit light, for example, to transmit signal light for a photosensitive element. In a direction parallel to the surface of the base substrate, the second light-transmitting openings are arranged between a first signal line and a second signal line that is closest to the first signal line. In this case, a large light-transmitting area can be formed between the first signal line and the second signal line that is closest to the first signal line. Therefore, by arranging the second light-transmitting openings at this position, a sufficient size can be achieved, sufficient light can be transmitted, and the display effect of the display substrate will not be impaired.
[0042] Hereinafter, a display substrate and a display device according to an embodiment of the present disclosure will be described in detail with reference to some specific examples.
[0043] At least one embodiment of the present disclosure provides a display substrate, in which FIG. 1 shows a partial plan view of the display substrate, FIG. 2 shows a partial cross-sectional view of the display substrate, and FIG. 3 shows a partial plan view of a pixel definition layer and a black matrix layer of the display substrate.
[0044] As shown in Figures 1 to 3, the display substrate has a plurality of sub-pixels SP arranged in a plurality of rows and a plurality of columns, and includes a base substrate 101, a drive circuit layer 102 provided on the base substrate, an emitting device layer provided on the side of the drive circuit layer 102 away from the base substrate 101, and a black matrix layer 113 provided on the side of the emitting device layer away from the base substrate 101.
[0045] For example, each sub-pixel includes a pixel driving circuit provided in the driving circuit layer 102 and a light-emitting device EM provided in the light-emitting device layer, and the pixel driving circuit is electrically connected to the light-emitting device EM and configured to drive the light-emitting device EM. For example, as shown in Figure 1, the driving circuit layer 102 includes first and second signal lines S1 and S2 that are provided parallel to each other and periodically arranged, and the first and second signal lines S1 and S2 are configured to provide different electrical signals to the multiple sub-pixels SP.
[0046] It should be noted that, taking into consideration process errors and structural errors in actual production, the formed signal lines may not be straight, for example, may have uneven portions. In the embodiments of the present disclosure, the first signal line S1 and the second signal line S2 being "mutually parallel" means that the angle formed in the extension direction of the first signal line S1 and the second signal line S2 is within a range of 15 degrees, and they do not necessarily have to be strictly parallel.
[0047] 1 to 3, the black matrix layer includes a plurality of first light-transmitting openings 1131 and a plurality of second light-transmitting openings 1132. The plurality of first light-transmitting openings 1131 expose the light-emitting devices EM of the plurality of subpixels, respectively, and allow light emitted by the light-emitting devices EM of the plurality of subpixels to pass through. The plurality of second light-transmitting openings 1132 are disposed between the plurality of first light-transmitting openings 1131, respectively. As shown in FIG. 1, the orthogonal projections of the plurality of second light-transmitting openings 1132 on the base substrate 101 are respectively located between the orthogonal projections of one first signal line S1 on the base substrate 101 and the orthogonal projections of one second signal line S2 that is closest to the one first signal line S1 on the base substrate 101.
[0048] For example, in some embodiments, the first signal line S1 is a light emission control signal line EMT, and the second signal line is a reset voltage line VNT, which will be described in detail later.
[0049] For example, in some embodiments, the plurality of sub-pixels SP in the plurality of rows and the plurality of columns include at least one first sub-pixel SP1 (the first sub-pixel SP1 in the first row is illustrated as an example) and at least one second sub-pixel SP2 (the second sub-pixel SP2 in the first row is illustrated as an example) adjacent to the at least one first sub-pixel SP1 and located below the at least one first sub-pixel SP1 (i.e., located in the row next to the at least one first sub-pixel SP1 or scanned after the at least one first sub-pixel SP1 when performing circuit scanning), and the at least one first sub-pixel S The pixel driving circuits of P1 share one emission control signal line EMT1 and one reset voltage line VNT1, and the pixel driving circuits of the second sub-pixels of at least one row share one emission control signal line EMT2 and one reset voltage line VNT2, and in this case, the orthogonal projection on the base substrate 101 of the emission control signal line EM1 shared by the pixel driving circuits of the first sub-pixels SP1 of at least one row and the orthogonal projection on the base substrate 101 of the reset voltage line VNT2 shared by the pixel driving circuits of the second sub-pixels SP2 of at least one row include the orthogonal projection on the base substrate 101 of one row of second light-transmitting openings 1132.
[0050] For example, in another embodiment, the pixel driving circuits of the first subpixels SP1 in the plurality of rows may share one emission control signal line EMT1 and one reset voltage line VNT1, and the pixel driving circuits of the second subpixels in the plurality of rows may share one emission control signal line EMT2 and one reset voltage line VNT2. In this case, the orthogonal projection on the base substrate 101 of the emission control signal line EMT1 shared by the pixel driving circuits of the first subpixels SP1 in the plurality of rows and the orthogonal projection on the base substrate 101 of the reset voltage line VNT2 shared by the pixel driving circuits of the second subpixels SP2 in the plurality of rows includes the orthogonal projection on the base substrate 101 of one row of the second light-transmitting opening 1132.
[0051] For example, as shown in FIG. 1, the multiple subpixels SP in multiple rows and columns further include at least one row of third subpixels SP3 (the third subpixel SP3 in one row is illustrated as an example) adjacent to at least one row of second subpixels SP2 and located below at least one row of second subpixels SP2, and the pixel driving circuits of the at least one row of third subpixels SP3 share one light-emitting control signal line (not shown) and one reset voltage line VNT3, and the orthogonal projection on the base substrate 101 of the light-emitting control signal line EMT2 shared by the pixel driving circuits of at least one row of second subpixels SP2 and the orthogonal projection on the base substrate 101 of the reset voltage line VNT3 shared by the pixel driving circuits of at least one row of third subpixels SP3 include the orthogonal projection on the base substrate 101 of one row of second light-transmitting openings 1132.
[0052] 1 and 2, in some embodiments, the driving circuit layer 102 includes a plurality of light-transmitting portions 1020, and the plurality of light-transmitting portions 1020 are light-transmitting in a direction perpendicular to the surface of the base substrate 101. For example, at least some of the second light-transmitting openings 1132 are provided in one-to-one correspondence with at least some of the light-transmitting portions 1020 and are arranged to transmit light that forms a predetermined angle range with the surface of the base substrate 101. For example, as shown in FIG. 2, light ray L can pass from the display side (i.e., the upper side in the drawing) of the display substrate through the second light-transmitting openings 1132 and the light-transmitting portions 1020 in this order to reach the non-display side (i.e., the lower side in the drawing) of the display substrate so that a photosensitive element, such as an image sensor, provided on the non-display side of the display substrate is photosensitive and operates.
[0053] For example, as shown in FIG. 1 , in a direction parallel to the base substrate 101, one row of transparent portions 1020 is included between the emission control signal line EM1 shared by the pixel driving circuits of at least one row of first subpixels SP1 and the reset voltage line VNT2 shared by the pixel driving circuits of at least one row of second subpixels SP2, and one row of transparent portions 1020 is included between the emission control signal line EMT2 shared by the pixel driving circuits of at least one row of second subpixels SP2 and the reset voltage line VNT3 shared by the pixel driving circuits of at least one row of third subpixels SP3. In this case, the transparent portions 1020 have a large area between the emission control signal line and the reset voltage line, and can achieve a sufficient transparent effect in combination with the second transparent openings 1132.
[0054] For example, as shown in FIG. 1, the driving circuit layer includes third signal lines S3 and fourth signal lines S4 that are arranged parallel to each other and periodically disposed, the third signal lines S3 and fourth signal lines S4 intersecting the first signal line S1 and the second signal line S2, respectively, and being, for example, perpendicular to the first signal line S1 and the second signal line S2, the third signal lines S3 and the fourth signal lines S4 are configured to provide different electrical signals to multiple sub-pixels, and the orthogonal projections of the multiple second light-transmitting openings 1032 on the base substrate 101 are each located between the orthogonal projections of one third signal line S3 on the base substrate 101 and the orthogonal projections of one fourth signal line S4 adjacent to the third signal line S3 on the base substrate 101.
[0055] For example, in some embodiments, the third signal line S3 is the first power supply line VDD1, and the fourth signal line S4 is the data line DT, which will be described in detail later.
[0056] 1, the first signal line S1, the second signal line S2, the third signal line S3, and the fourth signal line S4 define a plurality of first regions RG, i.e., regions surrounded by dashed lines in the figure, and the orthogonal projections of the plurality of second light-transmitting openings 1032 on the base substrate 101 are respectively located within the orthogonal projections of the plurality of first regions RG on the base substrate 101. For example, in some examples, as shown in FIG. 1, in the corresponding second light-transmitting openings 1132 and light-transmitting portions 1020, the planar shapes of the second light-transmitting openings 1132 and the light-transmitting portions 1020 are at least partially the same in a direction parallel to the surface of the base substrate 101. For example, as shown in FIG. 1, at least a portion of the outline of the second light-transmitting opening 1132 follows the outline of the light-transmitting portion 1020, and the planar size of the second light-transmitting opening 1132 is smaller than the planar size of the light-transmitting portion 1020. For example, in the second light-transmitting opening 1132 and the light-transmitting portion 1020 provided correspondingly, the orthogonal projection of the second light-transmitting opening 1132 on the base substrate 101 is located inside the orthogonal projection of the light-transmitting portion 1020 on the base substrate 101 .
[0057] For example, in some embodiments, as shown in FIG. 1, one second translucent opening 1132 is provided corresponding to each subpixel SP, so that the number and size of the second translucent openings 1132 on the display substrate are sufficient to achieve a sufficient translucent effect.
[0058] 2, the pixel driving circuit includes at least one thin film transistor TFT and a storage capacitor Cst, and the thin film transistor TFT includes an active layer 1021, a gate 1022, a source 1023, and a drain 1024, etc., provided on a base substrate 101. The source 1023 of the thin film transistor TFT is electrically connected to a first electrode layer 104 of the light emitting device EM. The storage capacitor Cst includes a first capacitor electrode C1 and a second capacitor electrode C2 provided on the base substrate 101, and the second capacitor electrode C2 is provided on the side of the first capacitor electrode C1 that is away from the base substrate 101. For example, in some embodiments, the light emission control signal line EMT is provided in the same layer as the gate 1022 and the first capacitor electrode C1. For example, in some embodiments, the reset voltage line VNT is provided in the same layer as the second capacitor electrode C2.
[0059] For example, the pixel driving circuit may be formed as a structure such as 2T1C (two thin film transistors and one storage capacitor), 6T1C (six thin film transistors and one storage capacitor), etc., thereby including a plurality of thin film transistors, which have a stack structure similar to or the same as the thin film transistor shown in FIG. 2, where only the thin film transistor directly connected to the light-emitting device is shown in FIG. 2, which may be a driving thin film transistor, a light-emitting control thin film transistor, etc.
[0060] However, in the embodiments of the present disclosure, "provided in the same layer" refers to two or more functional layers (or structural layers) being in the same layer in the hierarchical structure of the display substrate and being formed of the same material, i.e., in the manufacturing process, the two or more functional layers (or structural layers) may be formed of the same material layer and may form the required patterns and structures by the same patterning process.
[0061] 2, the display panel may further include structures such as a buffer layer 103 provided on the base substrate 101, a first gate insulating layer 1024 provided on the active layer 1021, a second gate insulating layer 1025 provided on the gate 1022 and the first capacitor electrode C1, an interlayer insulating layer 1026 provided on the second capacitor electrode CE2, and a passivation layer 1027 provided on the source 1023 and the drain 1024. For example, the plurality of transparent portions 1020 include a transparent insulating material, which includes the transparent insulating material of insulating layers such as the first gate insulating layer 1024, the second gate insulating layer 1025, the interlayer insulating layer 1026, and the passivation layer 1027.
[0062] 2 , the display substrate may further include a planarization layer 109 disposed on a side of the driving circuit layer 102 away from the base substrate 101, and a pixel definition layer 108 disposed on a side of the planarization layer 109 away from the base substrate 101. The pixel definition layer 108 includes a plurality of subpixel openings 1081, and the light emitting devices EM include a first electrode layer 104, a light emitting material layer 105, and a second electrode layer 106 stacked in this order in a direction away from the base substrate 101, the first electrode layer 104 being disposed on a side of the planarization layer 109 away from the base substrate 101, the pixel definition layer 108 being disposed on a side of the first electrode layer 104 away from the base substrate 101, and the plurality of subpixel openings 1081 exposing the first electrode layers 104 of the light emitting devices EM of the plurality of subpixels, respectively. For example, the planarization layer 109 includes a plurality of vias VA, and the first electrode layers 104 of the light emitting devices EM of the plurality of sub-pixels are electrically connected to the pixel driving circuits of the plurality of sub-pixels by the plurality of vias VA, respectively.
[0063] For example, in some embodiments, as shown in FIGS. 1 and 2 , the first electrode layer 104 includes a main body portion 1041 and a connecting portion 1042, the connecting portion 1042 being configured to be electrically connected to a pixel driving circuit, for example, by a via VA in the planarization layer 109, and at least a portion of the main body portion 1041 being exposed by the sub-pixel opening 1081.
[0064] For example, Figure 4 shows a planar layout of multiple vias VA in the planarization layer 109, and in combination with Figures 1 and 4, it can be seen that the three vias VA corresponding to at least three adjacent subpixels located in the same row are not on the same straight line, that is, the positions of the three vias VA corresponding to at least three adjacent subpixels are offset from each other, so that one straight line cannot pass through the three vias VA corresponding to at least three adjacent subpixels.
[0065] 4, the vias VA corresponding to the subpixels located in the same row include a first via VA1, a second via VA2, and a third via VA3, and the first straight line ST1 passes through the first via VA1 and the second via VA2 but does not pass through the third via VA3. For example, the extension direction of the first straight line ST1 is parallel to the extension direction of the first signal line S1 and the second signal line S2, and is shown as the horizontal direction in the drawing.
[0066] For example, as shown in Figures 1 and 4, the orthogonal projections of at least some of the multiple vias VA on the base substrate 101 are located within the orthogonal projections of the multiple first regions RG on the base substrate 101, i.e., the orthogonal projections of the multiple vias VA on the base substrate 101 have overlapping portions with the orthogonal projections of the multiple first regions RG on the base substrate 101, or the orthogonal projections of the multiple vias VA on the base substrate 101 are located within the orthogonal projections of the multiple first regions RG on the base substrate 101.
[0067] In the embodiment of the present disclosure, the multiple vias VA in the planarization layer 109 are designed so that they are not on the same straight line, thereby forming one large light-transmitting area while avoiding the wiring of the pixel driving circuit, and forming a light-transmitting portion 1020 with a sufficient area.
[0068] For example, in some embodiments, the subpixels may include a red subpixel, a green subpixel, and a blue subpixel, with one blue subpixel, one red subpixel, and two green subpixels forming one repeating unit, and the subpixels may be arranged in multiple rows and multiple columns. For example, as shown in Figure 4, four vias VA1-VA4 corresponding to one adjacent blue subpixel, one red subpixel, and two green subpixels in the same row are not collinear. For example, in Figure 4, the red subpixel corresponds to via VA1, the two green subpixels correspond to vias VA2 and VA4, and the blue subpixel corresponds to via VA3.
[0069] For example, in some embodiments, the three vias corresponding to three adjacent green subpixels located in the same row are not on the same line. For example, Figure 4 shows two vias VA2 and VA4 corresponding to two adjacent green subpixels located in the same row and belonging to the same repeating unit, and the position of via VA5 corresponding to the green subpixel to the right of via VA4 in the figure is indicated by a dashed box. In this case, the three vias VA2, VA4, and VA5 corresponding to three adjacent green subpixels located in the same row are not on the same line.
[0070] For example, as shown in FIG. 4, multiple vias corresponding to multiple subpixels located in the same column are on the same straight line, i.e., one straight line can pass through multiple vias VA corresponding to multiple subpixels located in the same column. As shown in FIG. 4, a second straight line ST2 passes through multiple vias VA corresponding to multiple subpixels located in the same column in order. For example, the extension direction of the second straight line ST2 is parallel to the extension direction of the third signal line S3 and the fourth signal line S4, which is shown as a vertical direction in the figure. This allows multiple subpixels to be aligned in the column direction.
[0071] For example, in some embodiments, as shown in FIG. 2 , the display substrate may further include structures such as spacers 107 disposed on the pixel definition layer 108 and an encapsulation layer EN disposed on the light-emitting device EM of each sub-pixel. For example, the encapsulation layer EN may include multiple sub-encapsulation layers to improve its encapsulation effect. For example, the encapsulation layer EN may be a composite encapsulation layer including a first inorganic encapsulation layer 110, a second organic encapsulation layer 111, and a third inorganic encapsulation layer 112. For example, the first inorganic encapsulation layer 110 and the second inorganic encapsulation layer 112 may be formed of inorganic materials such as silicon nitride, silicon oxide, or silicon oxynitride, and the first organic encapsulation layer 111 may be formed of an organic material such as polyimide (PI) or epoxy resin. The composite encapsulation layer can provide multiple protection for the functional structures in the display panel and achieve a better encapsulation effect.
[0072] For example, Fig. 5 shows another partial cross-sectional schematic view of a display substrate according to at least one embodiment of the present disclosure. In this embodiment, as shown in Fig. 5, the display substrate further includes a connection electrode 1043, which is disposed on the planarization layer 109 closer to the base substrate 101, and a connection portion 1042 of the first electrode layer 104 of the light-emitting device EM is electrically connected to the pixel driving circuit through the connection electrode 1043. At this time, the connection portion 1042 of the first electrode layer 104 is connected to the connection electrode 1043 through a via VA in the planarization layer 109, and the connection electrode 1043 is connected to the source 1023 of the thin-film transistor TFT through a via in another planarization layer 1091.
[0073] For example, as shown in Figure 1, the orthogonal projections on the base substrate 10 of at least some of the multiple connection electrodes 1043 (Figure 12A shows a schematic plan view of the multiple connection electrodes 1043) are located within the orthogonal projections on the base substrate 10 of the multiple first regions RG, i.e., the orthogonal projections on the base substrate 10 of the multiple connection electrodes 1043 overlap with the orthogonal projections on the base substrate 10 of the multiple first regions RG, or the orthogonal projections on the base substrate 10 of the multiple connection electrodes 1043 are each located within the orthogonal projections on the base substrate 10 of the multiple first regions RG; refer to Figure 1.
[0074] For example, as shown in FIG. 1, the first signal line S1, the second signal line S2, the third signal line S2, the fourth signal line S4 and the plurality of connecting electrodes 1043 collectively define the plurality of transparent portions 1020, i.e., the area surrounded by the first signal line S1, the second signal line S2, the third signal line S2, the fourth signal line S4 and the plurality of connecting electrodes 1043 is the plurality of transparent portions 1020.
[0075] In this embodiment, the vias VA in the planarization layer 109 have the same arrangement as in Figure 4, and will not be described in detail here. For other structures of the display substrate shown in Figure 5, please refer to the display substrates shown in Figures 1 to 3, and will not be described in detail here.
[0076] For example, in embodiments of the present disclosure, the base substrate 101 may include a flexible insulating material such as polyimide (PI) or a rigid insulating material such as a glass substrate. For example, in some examples, the base substrate 101 may have a laminated structure in which multiple flexible layers and multiple barrier layers are alternately provided. In this case, the flexible layers may include polyimide, and the barrier layers may include inorganic insulating materials such as silicon oxide, silicon nitride, or silicon oxynitride. For example, the buffer layer 103 may include inorganic materials such as silicon nitride, silicon oxide, and silicon oxynitride. The active layer 1021 can be made of materials such as polysilicon and metal oxides, the first gate insulating layer 1024 and the second gate insulating layer 1025 can be made of inorganic insulating materials such as silicon oxide, silicon nitride, or silicon oxynitride, the gate 1022 and the first capacitor electrode C1 can be made of metal materials such as copper, aluminum, titanium, and cobalt, and can be formed as a single layer structure or a multilayer structure, for example, multilayer structures such as titanium / aluminum / titanium and molybdenum / aluminum / molybdenum, and the second capacitor electrode C2 can be made of metal or alloy materials such as copper, aluminum, titanium, and cobalt, and can be formed as an interlayer structure. The insulating layer 1026 can be made of an inorganic insulating material such as silicon oxide, silicon nitride, or silicon oxynitride. The passivation layer 1027 can be made of an inorganic insulating material such as silicon oxide, silicon nitride, or silicon oxynitride. The source / drain regions 1023 and 1024 can be made of a metal material such as copper, aluminum, titanium, or cobalt, and can be formed as a single layer or a multilayer structure, such as a multilayer structure of titanium / aluminum / titanium or molybdenum / aluminum / molybdenum. The first electrode layer 104 is, for example, an anode layer, and can include a metal oxide such as ITO or IZO, or a metal such as Ag, Al, or Mo, or an alloy thereof. The material of the light-emitting material layer 105 can be an organic light-emitting material. For example, a light-emitting material that can emit light of a specific color (e.g., red, blue, or green) can be selected according to needs.The second electrode layer 106 is, for example, a cathode layer and includes a metal such as Mg, Ca, Li, or Al or an alloy thereof, a metal oxide such as IZO or ZTO, or a conductive organic material such as PEDOT / PSS (poly 3,4-ethylenedioxythiophene / polystyrene sulfonate). The planarization layer 109 (and planarization layer 1091), pixel definition layer 108, and spacer 107 can be made of an organic insulating material such as polyimide. The embodiments of the present disclosure do not particularly limit the materials of each functional layer.
[0077] 6 shows another partial schematic plan view of a display substrate according to at least one embodiment of the present disclosure. In this embodiment, as shown in FIG. 6, the second light-transmitting opening 1132 and the light-transmitting portion 1020 corresponding to each other have a circular planar shape and a polygonal planar shape in a direction parallel to the surface of the base substrate 101. The second light-transmitting opening 1132 has a smaller planar size than the light-transmitting portion 1020.
[0078] 6, for example, in the corresponding second light-transmitting opening 1132 and light-transmitting portion 1020, the orthogonal projection of the second light-transmitting opening 1132 on the base substrate 101 is located inside the orthogonal projection of the light-transmitting portion 1020 on the base substrate 101. In this case, the second light-transmitting opening 1132 may be a pinhole-type light-transmitting opening, and the photosensitive element located on the non-display side of the display substrate may be, for example, an image sensor, which can perform fingerprint recognition based on the principle of pinhole imaging.
[0079] 6 , one second light-transmitting opening 1132 is provided for every two subpixels, thereby meeting the needs of pinhole imaging. In some examples, the distance D between two adjacent second light-transmitting openings 1132 among the plurality of second light-transmitting openings 1132 is 50 μm-60 μm, such as 52 μm, 55 μm, or 58 μm. For example, the distance D between two adjacent second light-transmitting openings 1132 located in the same row or the distance D between two adjacent second light-transmitting openings 1132 located in the same column are both 50 μm-60 μm.
[0080] For example, for other structures of the display substrate shown in FIG. 6, please refer to the description of the display substrate in FIGS. 1 to 3, and detailed description will not be given here.
[0081] 3 and 6, at least one (e.g., each) of the plurality of first light-transmitting openings 1311 has an arcuate edge. For example, in some examples, the planar shape of at least one (e.g., each) of the plurality of first light-transmitting openings 1131 in a direction parallel to the plate surface of the base substrate 101 is an ellipse (or mango shape), a semi-ellipse, a circle, a semi-circle, a track shape, a semi-track shape, or a modified shape thereof.
[0082] In the embodiment of the present disclosure, the first light-transmitting opening 1131 with an arc-shaped edge can reduce or even eliminate the phenomenon of color separation of the display substrate caused by diffraction of external light at the edge of the first light-transmitting opening 1131 in the black matrix layer 113, thereby further improving the display effect of the display substrate. In the embodiment of the present disclosure, the color separation phenomenon refers to a phenomenon in which color separation (e.g., red, green, and blue) occurs in reflected light under external light (e.g., under a point light source or a line light source) when the display substrate is in an off state.
[0083] However, in the embodiment of the present disclosure, the track shape is a shape similar to a track formed by a rectangle and two arcs on opposite sides of the rectangle, and the track shape has two parallel opposite straight sides and two arcs. The mango shape may be considered as a modified ellipse, and has two arc edges opposite to each other, as shown in Figure 6.
[0084] 3 and 6, the subpixel openings 1081 and the first light-transmitting openings 1131 have a one-to-one correspondence and overlap with each other in a direction perpendicular to the surface of the base substrate 101, and for each corresponding subpixel opening 1081 and each corresponding first light-transmitting opening 1131, the planar shape of the subpixel opening 1081 and the planar shape of the first light-transmitting opening 1131 are the same in a direction parallel to the surface of the base substrate 101, and both are shown as oval (or mango) shapes in the drawings. For example, in some examples, the planar shape of the body portion 1041 of the first electrode layer 104 of the light-emitting device EM is the same as the planar shapes of the subpixel opening 1081 and the first light-transmitting opening 1131.
[0085] 3 and 6 , the orthogonal projection of the sub-pixel opening 1081 on the base substrate 101 is located within the orthogonal projection of the first light-transmitting opening 1131 on the base substrate 101, i.e., the planar size of the sub-pixel opening 1081 is smaller than the planar size of the first light-transmitting opening 1131. For example, the orthogonal projection of the first light-transmitting opening 1131 on the base substrate 101 is located within the orthogonal projection of the body portion 1041 on the base substrate 101, i.e., the planar size of the first light-transmitting opening 1131 is smaller than the planar size of the body portion 1041. As a result, the display substrate according to the embodiment of the present disclosure can reduce or even eliminate the color separation phenomenon of the display substrate, and can also save energy consumption and resources.
[0086] 2, in some embodiments, the display substrate may further include a color film layer 114, which includes a plurality of color film patterns 1141, which are respectively disposed in the plurality of first light-transmitting openings 1131. This allows the light emitted by the light-emitting device EM of the sub-pixel to pass through the color film patterns 1141, thereby improving the purity of the emitted light.
[0087] 14 shows a partial schematic plan view of the black matrix layer and the color film layer of the display substrate, and also shows a schematic plan view of a plurality of first light-transmitting openings 1131, a plurality of second light-transmitting openings 1132, and a plurality of color film patterns 1141. As shown in FIG. 14, in a direction perpendicular to the surface of the base substrate 101, the plurality of color film patterns 1141 include a first color film pattern 1141A at least partially overlapping with the light-emitting device of a first sub-pixel (e.g., a red sub-pixel) and a second color film pattern 1141B at least partially overlapping with the light-emitting device of a second sub-pixel (e.g., a green sub-pixel). In a direction parallel to the surface of the base substrate 101, the planar shape of the first color film pattern 1141A is different from the planar shape of the second color film pattern 1141B, and the area of the first color film pattern 1141A is larger than the area of the second color film pattern 1141B.
[0088] 14, the first color film pattern 1141A has a substantially rectangular planar shape, e.g., a notched rectangle, and the second color film pattern 1141B has a substantially semi-elliptical planar shape. For example, the areas of the first color film pattern 1141A and the second color film pattern 1141B are larger than the areas of the first light-transmitting openings 1131 that they cover, thereby fully achieving the filtering effect.
[0089] For example, in some instances, the ratio of the area of the first color film pattern 1141A to the area of the second color film pattern 1141B is in the range of (1-1.5):1, such as 1.2:1 or 1.4:1.
[0090] 14, the plurality of color film patterns 1141 further includes a third color film pattern 1141C that at least partially overlaps the light-emitting device of a third sub-pixel (e.g., a blue sub-pixel) in a direction perpendicular to the surface of the base substrate 101. In a direction parallel to the surface of the base substrate 101, the planar shape of the third color film pattern 1141C is different from the planar shapes of the first color film pattern 1141A and the second color film pattern 1141B, and the area of the third color film pattern 1141C is larger than the area of the first color film pattern 1141A and the area of the second color film pattern 1141B. For example, the planar shape of the third color film pattern 1141C is irregular, thereby fully realizing a filtering effect.
[0091] For example, in some embodiments, the range of the ratio of the area of the first color film pattern 1141A to the area of the second color film pattern 1141B to the area of the third color film pattern 1141C is (1-1.5):1:(1-1.6), such as 1.2:1:1.1 or 1.4:1:1.3.
[0092] 14, the plurality of color film patterns 1141 further includes a fourth color film pattern 1141D that at least partially overlaps with the light-emitting device of a fourth sub-pixel (e.g., a green sub-pixel) in a direction perpendicular to the surface of the base substrate 101. In a direction parallel to the surface of the base substrate 101, the planar shape of the fourth color film pattern 1141D is substantially the same as the planar shape of the second color film pattern 1141B, and the area of the fourth color film pattern 1141D is substantially equal to the area of the second color film pattern 1141D.
[0093] For example, the planar shape of the fourth color film pattern 1141D is approximately semi-elliptical, and its area is approximately equal to the area of the second color film pattern 1141D, and for example, the difference between the area of the fourth color film pattern 1141D and the area of the second color film pattern 1141D is less than 10% of the area of the second color film pattern 1141D.
[0094] In the embodiment of the present disclosure, the black matrix layer 113 can absorb light incident on the display substrate, reduce the reflectance of external light by the display substrate, and improve the display effect of the display substrate, and by coating the color film layer 114 on the black matrix layer 113, the color film layer 114 can perform secondary absorption of light incident on the display substrate, thereby further reducing the reflectance of external light by the display substrate and improving the display effect of the display substrate. Tests were conducted on the multiple color film patterns 1141 shown in Figure 14, and it was found that when the multiple color film patterns 1141 have the shape and size distribution shown in Figure 14, the multiple color film patterns 1141 can fully achieve the filtering and light reflecting effects, and the display effect of the display substrate is improved.
[0095] For example, in some embodiments, the fourth color film pattern 1141D and the fourth translucent opening 1132D partially overlap in the direction perpendicular to the plate surface of the base substrate 101, as shown in FIG.
[0096] For example, in some examples, as shown in FIG. 14, the horizontal size 1141A~1 of the first color film pattern 1141A corresponding to the first subpixel P1 is 27 μm to 33 μm, such as 28 μm, 29 μm, or 30 μm, and the vertical size 1141A~2 is 30 μm to 35 μm, such as 32 μm, 33 μm, or 34 μm. The horizontal size 1141B~1 of the second color film pattern 1141B corresponding to the second subpixel P2 is 20 μm to 25 μm, such as 21 μm, 22 μm, or 23 μm, and the vertical size 1141B~2 is 23 μm to 28 μm, such as 25 μm, 26 μm, or 27 μm. or 27 μm, the horizontal size 1141C~1 of the third color film pattern 1141C corresponding to the third subpixel P3 is 32 μm to 38 μm, for example, 34 μm, 35 μm, or 36 μm, and the vertical size 1141C~2 is 35 μm to 45 μm, for example, 38 μm, 40 μm, or 42 μm, the horizontal size 1141D~1 of the fourth color film pattern 1141D corresponding to the fourth subpixel P4 is 20 μm to 25 μm, for example, 21 μm, 22 μm, or 23 μm, and the vertical size 1141D~2 is 23 μm to 28 μm, for example, 25 μm, 26 μm, or 27 μm.
[0097] For example, the minimum distance between the edges of the plurality of color film patterns 1141 and the edges of the plurality of second light-transmitting openings 1132 is 1 μm-5 μm. For example, as shown in FIG. 3 , for at least some adjacent color film patterns 1141 and second light-transmitting openings 1132, there is a gap between the color film pattern 1141 and the second light-transmitting opening 1132, and the minimum distance between the edge of the color film pattern 1141 and the edge of the second light-transmitting opening 1132 is 1 μm-5 μm, thereby preventing the color film pattern 1141 from filtering light passing through the second light-transmitting opening 1132.
[0098] 14 and 6, for one color film pattern 1141 and one subpixel opening 1081 corresponding to the same subpixel, the planar shape of the color film pattern 1141 is different from the planar shape of the subpixel opening 1081. For example, at least some edges of the plurality of second light-transmitting openings 1132 are parallel to at least some edges of the adjacent color film pattern 1141. For example, for the portion shown in the dashed line frame in FIG. 14, some edges of the second light-transmitting opening 1132 are parallel to some edges of the adjacent color film pattern 1141.
[0099] 2, the display substrate may further include a protective cover plate 115 disposed on the black matrix layer 113 and the color film layer 114 to protect the structure of the display substrate. For example, the protective cover plate 115 may be a glass cover plate, which may be bonded to the display substrate by an optically transparent adhesive (not shown).
[0100] The structure and circuit layout of each functional layer of the display substrate according to the embodiment of the present disclosure will be described in detail below by taking a specific example, in which the sub-pixel uses a 7T1C pixel driving circuit to drive the light emitting device EM.
[0101] For example, Figure 7A shows a circuit diagram of a 7T1C pixel circuit, which includes a driving circuit 122, a data writing circuit 126, a compensation circuit 128, a memory circuit 127, a first light-emitting control circuit 123, a second light-emitting control circuit 124, and a reset circuit 129.
[0102] For example, the driving circuit 122 includes a control terminal 131, a first terminal 132 and a second terminal 133, and is configured to control the driving current flowing through the light-emitting device EM, wherein the control terminal 131 of the driving circuit 122 is connected to a first node N1, the first terminal 132 of the driving circuit 122 is connected to a second node N2, and the second terminal 133 of the driving circuit 122 is connected to a third node N3.
[0103] For example, the data write circuit 126 includes a control terminal, a first terminal and a second terminal, where the control terminal is configured to receive a first scan signal, the first terminal is configured to receive a data signal, and the second terminal is connected to the first terminal 132 (second node N2) of the drive circuit 122 and configured to write the data signal to the first terminal 132 of the drive circuit 122 in response to the first scan signal Ga1. For example, the first terminal of the data write circuit 126 is connected to the data line 12 to receive the data signal, and the control terminal is connected to the scan line 11 to receive the first scan signal Ga1.
[0104] For example, in the data writing phase, the data writing circuit 126 can be turned on in response to the first scanning signal Ga1, thereby writing a data signal to the first terminal 132 (second node N2) of the driving circuit 122 and storing the data signal in the memory circuit 127, thereby, for example, in the light emitting phase, generating a driving current that drives the light emitting device EM to emit light in accordance with the data signal.
[0105] For example, the compensation circuit 128 includes a control terminal, a first terminal and a second terminal, the control terminal is configured to receive a second scanning signal Ga2, the first terminal and the second terminal are electrically connected to the control terminal 131 and the second terminal 133 of the driving circuit 122, respectively, and the compensation circuit is configured to perform threshold compensation for the driving circuit 120 in response to the second scanning signal.
[0106] For example, the memory circuit 127 is electrically connected to the control terminal 131 and the first voltage terminal VDD of the driving circuit 122 and is configured to store the data signal written by the data write circuit 126. For example, in the data write and compensation stage, the compensation circuit 128 can be turned on in response to the second scanning signal Ga2, thereby storing the data signal written by the data write circuit 126 in the memory circuit 127. For example, at the same time in the data write and compensation stage, the compensation circuit 128 can electrically connect the control terminal 131 and the second terminal 133 of the driving circuit 122, thereby storing information related to the threshold voltage of the driving circuit 122 in association with the memory circuit, so that, for example, in the light-emitting stage, the driving circuit 122 can be controlled using the stored data signal and threshold voltage, thereby compensating the output of the driving circuit 122.
[0107] For example, the first light-emitting control circuit 123 is connected to the first terminal 132 (second node N2) of the driving circuit 122 and the first voltage terminal VDD, and is configured to apply the first power supply voltage of the first voltage terminal VDD to the first terminal 132 of the driving circuit 122 in response to the first light-emitting control signal. For example, as shown in FIG. 7A , the first light-emitting control circuit 123 is connected to the first light-emitting control terminal EM1, the first voltage terminal VDD, and the second node N2.
[0108] For example, the second light-emitting control circuit 124 is connected to the second light-emitting control terminal EM2, the first terminal 510 of the light-emitting device EM, and the second terminal 132 of the drive circuit 122, and is configured to apply a drive current to the light-emitting device EM in response to a second light-emitting control signal.
[0109] For example, in the light-emitting stage, the second light-emitting control circuit 123 is turned on in response to the second light-emitting control signal provided by the second light-emitting control terminal EM2, so that the driving circuit 122 can apply a driving current to the light-emitting device EM via the second light-emitting control circuit 123 to make it emit light; in the non-light-emitting stage, the second light-emitting control circuit 123 is turned off in response to the second light-emitting control signal, so that the current does not flow through the light-emitting device EM to make it emit light, and the contrast of the corresponding display device can be improved.
[0110] Also for example, in the initialization stage, the second light-emitting control circuit 124 can be turned on in response to the second light-emitting control signal, thereby performing a reset operation on the drive circuit 122 and the light-emitting device EM in combination with the reset circuit.
[0111] For example, the second light-emitting control signal EM2 may be the same as or different from the first light-emitting control signal EM1, for example, they may be connected to the same or different signal output terminals.
[0112] For example, the reset circuit 129 is connected to the reset voltage terminal Vinit and the first terminal 134 (fourth node N4) of the light emitting device EM and is configured to apply a reset voltage to the first terminal 134 of the light emitting device EM in response to a reset signal. In other examples, as shown in FIG. 7A , the reset signal may also be applied to the control terminal 131 of the driving circuit, i.e., the first node N1. For example, the reset signal may be the second scanning signal, or may be another signal synchronized with the second scanning signal, and the embodiments of the present disclosure are not limited thereto. For example, as shown in FIG. 7A , the reset circuit 129 is connected to the first terminal 134 of the light emitting device EM, the reset voltage terminal Vinit, and the reset control terminal Rst (reset control line), respectively. For example, in the initialization stage, the reset circuit 129 may be turned on in response to the reset signal, thereby applying a reset voltage to the first terminal 134 and the first node N1 of the light emitting device EM, thereby performing a reset operation on the driving circuit 122, the compensation circuit 128, and the light emitting device EM and eliminating the influence of the previous light emitting stage.
[0113] For example, the light emitting device EM includes a first terminal 134 and a second terminal 135, where the first terminal 134 of the light emitting device EM is configured to receive a driving current from the second terminal 133 of the driving circuit 122, and the second terminal 135 of the light emitting device EM is configured to be connected to the second voltage terminal VSS. For example, in one example, as shown in FIG. 7A , the first terminal 134 of the light emitting device EM may be connected to the third node N3 by the second light emitting circuit 124. The embodiments of the present disclosure include, but are not limited to, this scenario. For example, the light emitting device EM may be an OLED of various types, such as top-emission, bottom-emission, and dual-emission, and may emit red light, green light, blue light, or white light, with the first electrode layer and the second electrode layer of the OLED functioning as the first terminal 134 and the second terminal 135 of the light emitting device, respectively. The embodiments of the present disclosure do not limit the specific structure of the light emitting device.
[0114] However, in the description of the embodiments of the present disclosure, the first node N1, the second node N2, the third node N3, and the fourth node N4 do not necessarily represent components that actually exist, but rather represent junctions where related circuits in a circuit diagram connect.
[0115] In the description of the embodiments of the present disclosure, the symbol Vd can not only refer to a data signal terminal but also to the level of the data signal, similarly, the symbols Ga1 and Ga2 can not only refer to a first scanning signal and a second scanning signal but also to a first scanning signal terminal and a second scanning signal terminal, Rst can not only refer to a reset control terminal but also to a reset signal, the symbol Vinit can not only refer to a reset voltage terminal but also to a reset voltage, the symbol VDD can not only refer to a first voltage terminal but also to a first power supply voltage, and the symbol VSS can not only refer to a second voltage terminal but also to a second power supply voltage. The following embodiments are similar and will not be described in detail.
[0116] Figure 7B is a circuit diagram of a specific example of the pixel circuit shown in Figure 7A. As shown in Figure 7B, the pixel circuit includes first to seventh transistors T1, T2, T3, T4, T5, T6, and T7, and a storage capacitor Cst. For example, the first transistor T1 is used as a driving transistor, and the remaining second to seventh transistors are used as switching transistors.
[0117] 7B, the driving circuit 122 may be realized as a first transistor T1. The gate of the first transistor T1 is connected to a first node N1 as a control terminal 131 of the driving circuit 122, the first pole of the first transistor T1 is connected to a second node N2 as a first terminal 132 of the driving circuit 122, and the second pole of the first transistor T1 is connected to a third node N3 as a second terminal 133 of the driving circuit 122.
[0118] 7B, the data write circuit 126 may be implemented as a second transistor T2. The gate of the second transistor T2 is connected to the first scan line (first scan signal terminal Ga1) to receive the first scan signal, the first electrode of the second transistor T2 is connected to the data line (data signal terminal Vd) to receive the data signal, and the second electrode of the second transistor T2 is connected to the first terminal 132 (second node N2) of the driving circuit 122. For example, the second transistor T2 is a P-type transistor, and the active layer is, for example, a thin film transistor doped with polysilicon at low temperature.
[0119] 7B, the compensation circuit 128 may be realized as a third transistor T3. The gate of the third transistor T3 is connected to the second scan line (second scan signal terminal Ga2) and configured to receive the second scan signal, the first pole of the third transistor T3 is connected to the control terminal 131 (first node N1) of the driving circuit 122, and the second pole of the third transistor T3 is connected to the second terminal 133 (third node N3) of the driving circuit 122.
[0120] For example, as shown in FIG. 7B, the memory circuit 127 may be realized as a memory capacitor Cst, which includes a first capacitor electrode C1 and a second capacitor electrode C2, where the first capacitor electrode C1 is connected to a first voltage terminal VDD and the second capacitor electrode C2 is connected to a control terminal 131 of the drive circuit 122.
[0121] 7B, the first light-emitting control circuit 123 may be realized as a fourth transistor T4. The gate of the fourth transistor T4 is connected to the first light-emitting control line (first light-emitting control terminal EM1) to receive the first light-emitting control signal, the first electrode of the fourth transistor T4 is connected to the first voltage terminal VDD to receive the first power supply voltage, and the second electrode of the fourth transistor T4 is connected to the first terminal 132 (second node N2) of the drive circuit 122.
[0122] For example, the light emitting device EM may be specifically realized as a light emitting diode (OLED), with its first electrode layer (here, anode) connected to the fourth node N4 and configured to receive a driving current from the second terminal 133 of the driving circuit 122 by the second light emitting control circuit 124, and its second electrode layer (here, cathode) connected to the second voltage terminal VSS and configured to receive a second power supply voltage. For example, the second voltage terminal may be grounded, i.e., VSS may be 0V.
[0123] For example, the second light-emitting control circuit 124 may be realized as a fifth transistor T5. The gate of the fifth transistor T5 is connected to the second light-emitting control line (second light-emitting control terminal EM2) to receive the second light-emitting control signal, the first electrode of the fifth transistor T5 is connected to the second terminal 133 (third node N3) of the driving circuit 122, and the second electrode of the fifth transistor T5 is connected to the first terminal 134 (fourth node N4) of the light-emitting device EM.
[0124] For example, the reset circuit 129 may include a first reset circuit and a second reset circuit, where the first reset circuit is configured to apply a first reset voltage Vini1 to the first node N1 in response to a first reset signal Rst1, and the second reset circuit is configured to apply a second reset voltage Vini2 to the fourth node N4 in response to a second reset signal Rst2. For example, as shown in FIG. 7B , the first reset circuit is implemented as a sixth transistor T6, and the second reset circuit is implemented as a seventh transistor T7. A gate of the sixth transistor T6 is connected to a first reset control terminal Rst1 to receive the first reset signal Rst1, a first electrode of the sixth transistor T6 is connected to a first reset voltage terminal Vinit1 to receive the first reset voltage Vinit1, and a second electrode of the sixth transistor T6 is connected to the first node N1. The gate of the seventh transistor T7 is connected to the second reset control terminal Rst2 and configured to receive the second reset signal Rst2, the first electrode of the seventh transistor T7 is connected to the second reset voltage terminal Vinit2 and configured to receive the second reset voltage Vinit2, and the second electrode of the seventh transistor T7 is connected to the fourth node N4.
[0125] The transistors used in the embodiments of the present disclosure may be thin film transistors, field effect transistors, or other switching devices with the same characteristics, and the embodiments of the present disclosure will be described using thin film transistors as an example. The source and drain of the transistor used here may be symmetrical in structure, and therefore, the source and drain may have the same structure. In the embodiments of the present disclosure, in order to distinguish between the two poles excluding the gate of the transistor, one is directly described as the first pole and the other as the second pole.
[0126] 1, the first signal line S1 is an emission control line EMT, which is used to transmit the first emission control signal EM1 and the second emission control signal EM2, and the second signal line S2 is a reset voltage line VNT, which is used to transmit the first reset voltage Vinit1 and the second reset voltage Vini2. For example, the reset voltage line VNT further includes a reset control line RST on the side away from the emission control line EMT, which is used to transmit the first reset signal Rst1 and the second reset signal Rst2.
[0127] The layout design of the pixel driving circuit will be described in detail below.
[0128] For example, FIG. 8 shows a schematic diagram of a semiconductor layer of the display substrate, which is used to form the active layers of thin film transistors T1-T7 of the pixel driving circuits of multiple subpixels. FIG. 8 shows pixel driving circuits for two rows of subpixels. The following description will take the pixel driving circuits of four directly adjacent subpixels (i.e., the first subpixel 100a, the second subpixel 100b, the third subpixel 100c, and the fourth subpixel 100d) as an example. The dashed frames in the figure indicate the areas where the pixel driving circuits of each subpixel are located. The embodiments of the present disclosure are not limited to this layout.
[0129] For example, a first gate insulating layer may be further provided on the semiconductor layer, and although not shown, see the first gate insulating layer 1024 in FIG.
[0130] For example, FIG. 9A shows a schematic diagram of a first gate metal layer of a display substrate, where the first gate metal layer is disposed on a first gate insulating layer, and FIG. 9B shows a schematic diagram of the first gate metal layer of a display substrate and a semiconductor layer stacked together.
[0131] 9A and 9B, the first gate metal layer includes a plurality of emission control lines EMT, a plurality of reset control lines RST, a plurality of scan lines GATE, and a plurality of first capacitor electrodes C1 of storage capacitors Cst, for example, portions of the emission control lines EMT, the reset control lines RST, the scan lines GATE, and the first capacitor electrodes C1 of storage capacitors Cst that overlap with the active layers of the thin film transistors T1-T7 form the gates of the thin film transistors T1-T7. The plurality of emission control lines EMT, the plurality of reset control lines RST, and the plurality of scan lines GATE are electrically connected to the plurality of rows of sub-pixels in a one-to-one correspondence, respectively, to provide corresponding electrical signals.
[0132] For example, a second gate insulating layer is further provided on the first gate metal layer, and although not shown, see the second gate insulating layer 1025 in FIG.
[0133] FIG. 10A shows a schematic diagram of the second gate metal layer of the display substrate, which is disposed on the second gate insulating layer, and FIG. 10B shows a schematic diagram of the second gate metal layer of the display substrate and the first gate metal layer stacked with a semiconductor layer.
[0134] 10A and 10B, the second gate metal layer includes a second capacitor electrode C2 of a storage capacitor Cst and a plurality of reset voltage lines VNT. The second capacitor electrode C2 of the storage capacitor Cst at least partially overlaps with the first capacitor electrode C1 to form a capacitor. The plurality of reset voltage lines VNT are electrically connected to a plurality of rows of subpixels in a one-to-one correspondence to provide corresponding electrical signals.
[0135] For example, an interlayer insulating layer is further provided on the second gate metal layer, and although not shown, see the interlayer insulating layer 1026 in FIG.
[0136] Figure 11A shows a schematic diagram of the first source / drain metal layer of the display substrate, which is provided on an interlayer insulating layer, and Figure 11B shows a schematic diagram of the first source / drain metal layer of the display substrate stacked with the second gate metal layer, the first gate metal layer, and the semiconductor layer.
[0137] 11A and 11B, the first source-drain metal layer includes a plurality of first power supply lines VDD1. For example, the plurality of first power supply lines VDD1 are electrically connected to a plurality of columns of sub-pixels in a one-to-one correspondence to provide a first power supply voltage. For example, the first source-drain metal layer further includes a plurality of data lines DT. The plurality of data lines DT are electrically connected to a plurality of columns of sub-pixels in a one-to-one correspondence to provide data signals. For example, the first source-drain metal layer further includes a plurality of connection electrodes CL, which may be used to connect the second capacitor electrode C2 and the first electrode of the third transistor T3, or to connect the first electrode of the sixth transistor T6 and the reset voltage line VNT, or to connect the second electrode of the fifth transistor T5 and the first electrode layer of the light emitting device, etc.
[0138] For example, a passivation layer and a planarization layer may be further provided on the first source / drain metal layer, and although not shown, see the passivation layer 1027 and the planarization layer 1091 in FIG.
[0139] Figure 12A shows a schematic diagram of the second source / drain metal layer of the display substrate, which is provided on a planarization layer 1091, and Figure 12B shows a schematic diagram of the second source / drain metal layer of the display substrate, the first source / drain metal layer, the second gate metal layer, the first gate metal layer and a semiconductor layer stacked together.
[0140] 12A and 12B, the second source-drain metal layer includes a second power line VDD2, which has a lattice pattern and is electrically connected to the first power line VDD1, thereby reducing the resistance in the power line and thereby reducing the voltage drop in the power line and contributing to uniformly transmitting the first power voltage to each sub-pixel of the display substrate. For example, the second source-drain metal layer may further include a connection electrode 1043 used to connect the first electrode layer of the light emitting device and the first electrode of the first transistor T1.
[0141] For example, another planarization layer is further provided on the second source / drain metal layer, and although not shown, refer to the planarization layer 109 in FIG. 5, and there are a plurality of vias VA in the planarization layer 109.
[0142] FIG. 13A shows a schematic diagram of the first electrode material layer of the display substrate, which is disposed on a passivation layer 109, and FIG. 13B shows a schematic diagram of the first electrode material layer of the display substrate, which is stacked with a second source / drain metal layer, a first source / drain metal layer, a second gate metal layer, a first gate metal layer and a semiconductor layer.
[0143] 13A and 13B, the first electrode material layer includes first electrode layers of light emitting devices EM of multiple sub-pixels, and the first electrode layers of the light emitting devices EM of the multiple sub-pixels are respectively connected to the connection electrode 1043 by multiple vias VA in the planarization layer 109. For example, a light emitting material layer of the light emitting device EM is provided on the first electrode layer, and a second electrode layer is provided on the light emitting material layer.
[0144] For example, other functional layers such as an encapsulation layer, a black matrix layer, etc. may be further formed above the light emitting device EM, which will not be described in detail herein.
[0145] At least one embodiment of the present disclosure further provides a display device, and FIG. 15 shows a schematic cross-sectional view of the display device. As shown in FIG. 15, the display device includes a display substrate according to an embodiment of the present disclosure, and the display substrate in FIG. 2 is shown in the figure as an example.
[0146] For example, in some embodiments, the display device further includes a textured touch surface S and an image sensor array 30, e.g., the surface of the protective cover plate 115 is implemented as the textured touch surface S. The image sensor array is disposed on a side of the drive circuit layer 102 away from the light emitting device layer and includes a plurality of image sensors 31 (one is illustrated as an example), configured to receive light emitted from the plurality of light emitting devices EM in the light emitting device layer and reflected by a pattern (e.g., a fingerprint, a palm print, etc.) on the textured touch surface S through the second light-transmitting openings 1132 to reach the plurality of image sensors 31 for pattern collection.
[0147] 15 , the driving circuit layer includes a plurality of light-transmitting portions 1020, and one second light-transmitting opening 1132 corresponds to one light-transmitting portion 1020. In this case, the plurality of image sensors 31 are configured to receive light, which is emitted from the plurality of light-emitting devices EM in the light-emitting device layer and reflected by the pattern on the patterned touch surface S, and passes through the plurality of second light-transmitting openings 1132 in the black matrix layer 113 and the plurality of light-transmitting portions 1020 in the driving circuit layer to reach the plurality of image sensors 31 for pattern collection. Therefore, the plurality of second light-transmitting openings 1132 and the plurality of light-transmitting portions 1020 allow the plurality of image sensors 31 to fully receive the light reflected by the pattern, thereby improving the speed and accuracy of pattern recognition.
[0148] The display device according to the embodiment of the present disclosure may further have other structures, the details of which can be referred to the related art and will not be described in detail here.
[0149] A few more points need to be explained:
[0150] (1) The drawings of the embodiments of the present disclosure only relate to the structures related to the embodiments of the present disclosure, and other structures may refer to the general design.
[0151] (2) For clarity, in the figures illustrating the embodiments of the present disclosure, the thicknesses of layers or regions have been exaggerated or reduced, i.e., the figures are not drawn to actual scale. It should be understood that when an element, e.g., a layer, film, region, or substrate, is described as being located "on" or "under" another element, the element may be located "directly" "on" or "under" the other element, or intermediate elements may be present.
[0152] (3) Unless inconsistent, the embodiments and features of the embodiments of the present disclosure may be combined with one another to obtain new embodiments.
[0153] Although specific embodiments of the present disclosure have been described above, the scope of protection of the present disclosure is not limited thereto, and should be in accordance with the scope of protection of the claims.
Claims
1. A display substrate having a plurality of sub-pixels arranged in a plurality of rows and a plurality of columns, the display substrate including: a base substrate; a driving circuit layer provided on the base substrate; a light-emitting device layer provided on a side of the driving circuit layer away from the base substrate; and a black matrix layer provided on a side of the light-emitting device layer away from the base substrate; each of the plurality of sub-pixels includes a pixel driving circuit provided in the driving circuit layer and a light-emitting device provided in the light-emitting device layer, the pixel driving circuit being configured to drive the light-emitting device; the driving circuit layer includes first signal lines and second signal lines that are provided parallel to each other and periodically arranged, the first signal lines and the second signal lines being configured to provide different electrical signals to the plurality of sub-pixels; the black matrix layer includes a plurality of first light-transmitting openings and a plurality of second light-transmitting openings, the plurality of first light-transmitting openings respectively exposing the light-emitting devices of the plurality of sub-pixels, and the plurality of second light-transmitting openings respectively being disposed between the plurality of first light-transmitting openings; a display substrate, wherein orthogonal projections of the plurality of second light-transmitting openings on the base substrate are each located between an orthogonal projection of one first signal line on the base substrate and an orthogonal projection of one second signal line that is closest to the one first signal line on the base substrate.
2. The display substrate of claim 1 , wherein the first signal line is a light-emitting control signal line, and the second signal line is a reset voltage line.
3. the plurality of sub-pixels in the plurality of rows and the plurality of columns include at least one first sub-pixel row and at least one second sub-pixel row adjacent to the at least one first sub-pixel row and located below the at least one first sub-pixel row, the pixel driving circuits of the first sub-pixels in the at least one row share one light emission control signal line and one reset voltage line, and the pixel driving circuits of the second sub-pixels in the at least one row share one light emission control signal line and one reset voltage line; 3. The display substrate according to claim 2, wherein a orthogonal projection, on the base substrate, of a second light-transmitting opening of one row is included between a light-emission control signal line shared by pixel driving circuits of the at least one row of first sub-pixels and a reset voltage line shared by pixel driving circuits of the at least one row of second sub-pixels.
4. the driving circuit layer includes third signal lines and fourth signal lines that are provided parallel to each other and periodically arranged, the third signal lines and the fourth signal lines crossing the first signal lines and the second signal lines, respectively, and configured to provide different electrical signals to the plurality of sub-pixels; 4. The display substrate according to claim 1, wherein orthogonal projections of the plurality of second light-transmitting openings on the base substrate are each located between orthogonal projections of one third signal line on the base substrate and orthogonal projections of one fourth signal line adjacent to the one third signal line on the base substrate.
5. The display substrate of claim 4 , wherein the third signal line is a first power supply line and the fourth signal line is a data line.
6. the first signal line, the second signal line, the third signal line, and the fourth signal line define a plurality of first regions; The display substrate according to claim 4 , wherein orthogonal projections of the second light-transmitting openings on the base substrate are located within orthogonal projections of the first regions on the base substrate, respectively.
7. the pixel driving circuit includes a thin film transistor and a storage capacitor, the thin film transistor includes a gate provided on the base substrate, the storage capacitor includes a first capacitor electrode and a second capacitor electrode provided on the base substrate, the second capacitor electrode is provided on a side of the first capacitor electrode away from the base substrate, 4. The display substrate according to claim 2, wherein the light-emission control signal line is provided in the same layer as the gate and the first capacitor electrode.
8. The display substrate according to claim 7 , wherein the reset voltage line is provided in the same layer as the second capacitor electrode.
9. a planarization layer provided on a side of the driving circuit layer away from the base substrate; and a pixel definition layer located on the side of the planarization layer away from the base substrate, the pixel definition layer including a plurality of sub-pixel openings; the light-emitting devices include a first electrode layer, a light-emitting material layer, and a second electrode layer stacked in this order in a direction away from the base substrate, the first electrode layer being provided on a side of the planarization layer away from the base substrate, the pixel definition layer being provided on a side of the first electrode layer away from the base substrate, and the plurality of sub-pixel openings exposing the first electrode layers of the light-emitting devices of the plurality of sub-pixels, respectively; the planarization layer includes a plurality of vias, and the first electrode layers of the light-emitting devices of the plurality of sub-pixels are electrically connected to the pixel driving circuits of the plurality of sub-pixels through the plurality of vias, respectively; 4. The display substrate of claim 1, wherein a plurality of vias corresponding to a plurality of subpixels located in the same row include a first via, a second via, and a third via, and a first straight line passes through the first via and the second via but does not pass through the third via.
10. The display substrate of claim 9 , wherein orthogonal projections of at least some of the plurality of vias on the base substrate are located within orthogonal projections of a plurality of first regions on the base substrate, respectively.
11. the first electrode layers of the light-emitting devices of the subpixels are electrically connected to the plurality of connection electrodes by the plurality of vias, and the plurality of connection electrodes are electrically connected to pixel driving circuits of the subpixels; The display substrate according to claim 9 , wherein orthogonal projections of at least some of the plurality of connection electrodes on the base substrate are located within orthogonal projections of a plurality of first regions on the base substrate.
12. the plurality of sub-pixels include red, green and blue sub-pixels, one blue sub-pixel, one red sub-pixel and two green sub-pixels being one repeating unit, the plurality of sub-pixels constituting a plurality of repeating units arranged in a plurality of rows and a plurality of columns; The display substrate of claim 9 , wherein four vias corresponding to one blue subpixel, one red subpixel, and two green subpixels adjacent to each other and located in the same row are not on the same straight line.
13. 10. The display substrate of claim 9, wherein three vias corresponding to three adjacent green sub-pixels located in the same row are not on the same straight line.
14. The display substrate of claim 9 , wherein the second straight line passes through a plurality of vias corresponding to a plurality of sub-pixels located in the same column in order.
15. the drive circuit layer includes a plurality of light-transmitting portions, the plurality of light-transmitting portions being light-transmitting in a direction perpendicular to a surface of the base substrate; 5. The display substrate according to claim 4, wherein at least some of the second light-transmitting openings correspond one-to-one to at least some of the light-transmitting portions and are configured to transmit light that forms a predetermined angle range with the surface of the base substrate.
16. The display substrate of claim 15 , wherein the first signal line, the second signal line, the third signal line, the fourth signal line, and a plurality of connection electrodes collectively define a plurality of light-transmitting portions.
17. 16. The display substrate of claim 15, wherein the planar shapes of the corresponding second light-transmitting openings and light-transmitting portions are at least partially the same in a direction parallel to the surface of the base substrate, and the planar size of the second light-transmitting openings is smaller than the planar size of the light-transmitting portions.
18. The display substrate of claim 17 , wherein one second light-transmitting opening is provided corresponding to each of the plurality of sub-pixels.
19. 16. The display substrate of claim 15, wherein the corresponding second light-transmitting opening and light-transmitting portion have a circular planar shape and a polygonal planar shape in a direction parallel to the surface of the base substrate, and the planar size of the second light-transmitting opening is smaller than the planar size of the light-transmitting portion.
20. The display substrate of claim 19 , wherein one second light-transmitting opening is provided corresponding to every two sub-pixels among the plurality of sub-pixels.
21. 21. The display substrate of claim 20, wherein the distance between two adjacent second light-transmitting openings among the plurality of second light-transmitting openings is 50 μm to 60 μm.
22. 16. The display substrate of claim 15, wherein, in a corresponding second light-transmitting opening and light-transmitting portion, a direct projection of the second light-transmitting opening on the base substrate is located inside a direct projection of the light-transmitting portion on the base substrate.
23. The display substrate of claim 1 , wherein at least one of the plurality of first light-transmitting openings has an arcuate edge.
24. 24. The display substrate of claim 23, wherein a planar shape of at least one of the plurality of first light-transmitting openings in a direction parallel to a surface of the base substrate is elliptical, semi-elliptical, circular, semi-circular, track-shaped, or semi-track-shaped.
25. the plurality of sub-pixel openings and the plurality of first light-transmitting openings correspond to each other one-to-one and overlap with each other in a direction perpendicular to a surface of the base substrate; 10. The display substrate of claim 9, wherein, for one corresponding subpixel opening and one corresponding first light-transmitting opening, the planar shape of the subpixel opening and the planar shape of the first light-transmitting opening are the same in a direction parallel to the surface of the base substrate.
26. 26. The display substrate of claim 25, wherein an orthogonal projection of the sub-pixel opening on the base substrate is located within an orthogonal projection of the first light-transmitting opening on the base substrate.
27. 4. The display substrate of claim 1, further comprising a color film layer, the color film layer comprising a plurality of color film patterns, the plurality of color film patterns being respectively disposed in the plurality of first light-transmitting openings.
28. A display device comprising a display substrate according to any one of claims 1 to 27.
29. further comprising a textured touch surface and an image sensor array; 29. The display device of claim 28, wherein the image sensor array is disposed on a side of the drive circuit layer away from the light emitting device layer and includes a plurality of image sensors configured to receive light emitted from a plurality of light emitting devices in the light emitting device layer, reflected by a pattern on the patterned touch surface, and passing through the second light-transmitting opening to reach the plurality of image sensors for pattern collection.
30. A display substrate having a plurality of sub-pixels arranged in a plurality of rows and a plurality of columns, the display substrate including: a base substrate; a driving circuit layer provided on the base substrate; a light-emitting device layer provided on a side of the driving circuit layer away from the base substrate; and a black matrix layer provided on a side of the light-emitting device layer away from the base substrate; each of the plurality of sub-pixels includes a pixel driving circuit provided in the driving circuit layer and a light-emitting device provided in the light-emitting device layer, the pixel driving circuit being configured to drive the light-emitting device; the driving circuit layer includes first signal lines and second signal lines that are provided parallel to each other and periodically arranged, the first signal lines and the second signal lines being configured to provide different electrical signals to the plurality of sub-pixels; the black matrix layer includes a plurality of first light-transmitting openings and a plurality of second light-transmitting openings, the plurality of first light-transmitting openings respectively exposing the light-emitting devices of the plurality of sub-pixels, and the plurality of second light-transmitting openings respectively being disposed between the plurality of first light-transmitting openings; orthogonal projections of the second light-transmitting openings on the base substrate are each located between an orthogonal projection of one first signal line on the base substrate and an orthogonal projection of one second signal line on the base substrate that is closest to the one first signal line; the display substrate further includes a planarization layer provided on a side of the driving circuit layer away from the base substrate, and a pixel definition layer located on a side of the planarization layer away from the base substrate, the pixel definition layer including a plurality of sub-pixel openings; the light-emitting devices include a first electrode layer, a light-emitting material layer, and a second electrode layer stacked in this order in a direction away from the base substrate, the first electrode layer being provided on a side of the planarization layer away from the base substrate, the pixel definition layer being provided on a side of the first electrode layer away from the base substrate, and the plurality of sub-pixel openings exposing the first electrode layers of the light-emitting devices of the plurality of sub-pixels, respectively; the planarization layer includes a plurality of vias, and the first electrode layers of the light-emitting devices of the plurality of sub-pixels are electrically connected to the pixel driving circuits of the plurality of sub-pixels through the plurality of vias, respectively; a plurality of vias corresponding to a plurality of subpixels located in the same row include a first via, a second via, and a third via, and a first straight line passes through the first via and the second via but does not pass through the third via.
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