The present application relates to a display field, and in particular, to a display device.
The organic light emitting display has many advantages, such as self-emission, low driving voltage, high luminous efficiency, short response time, high clarity and contrast, about 180 degrees of viewing angle, wide operating temperature range, flexible display and large-area full-color display, etc., and is recognized as the most promising display device in the industry.
With the maturity of the flexible organic light emitting diode display device technology, the flexible organic light emitting diode display device may be mass produced and provides a reliable basis for the production of a folding screen. In the process of manufacturing the foldable organic light emitting diode display device, in order to make the product thin and light and to facilitate bending, the thickness of various films is reduced as much as possible, but the thinning of the film may result in a reduction in impact resistance of the product, and the product will be liable to be damaged.
Therefore, after the production of the organic light emitting diode display device is completed, a series of display panel reliability tests are usually performed, and a falling sphere test is usually used to test the impact resistance of the screen. A display defect such as a black spot, a bright spot, a color spot, or a failure to display full color occurs when the display panel is hit by a falling sphere, and is mainly a damage caused when the display panel is subject to a frontal impact.
Therefore, there is an urgent need for a technical solution capable of solving a problem of low impact resistance of the organic light emitting diode display device.
Embodiments of the present application provide a display device, which can solve a technical problem of low impact resistance of an organic light emitting diode display device.
An embodiment of the present application provides a display device including:
Optionally, in some embodiments of the present application, a filling amount of the elastic particles in the buffer groove is less than 95%.
Optionally, in some embodiments of the present application, the display device has a display area, the display area includes a light shielding area and a plurality of sub-pixel areas. The light shielding area divides the display area into the plurality of sub-pixel areas, and both the buffer groove and the plurality of elastic particles are disposed corresponding to the light shielding area.
Optionally, in some embodiments of the present application, the driving circuit layer includes a light shielding electrode, a buffer layer, an active layer, a gate insulating layer, a gate, an interlayer dielectric layer, a source, a drain and an interlayer insulating layer, the light shielding electrode is disposed on the substrate, the buffer layer covers the substrate and the light shielding electrode, the active layer is disposed on the buffer layer and corresponds to the light shielding electrode, the gate insulating layer is disposed on the active layer, the gate is disposed on the gate insulating layer, the interlayer dielectric layer covers the buffer layer, the active layer and the gate, the source and the drain are spaced apart from each other on the interlayer dielectric layer, the source is electrically connected to one end of the active layer, the drain is electrically connected to another end of the active layer, and the interlayer insulating layer covers the interlayer dielectric layer, the source and the drain.
Optionally, in some embodiments of the present application, the light emitting device layer includes a first electrode, a pixel defining layer, a light emitting function layer, and a second electrode, the first electrode is provided on the driving circuit layer;
Optionally, in some embodiments of the present application, the display device further includes a first force-bearing layer disposed on the pixel defining layer, the first force-bearing layer is spaced apart from the second electrode, and the first force-bearing layer covers the elastic particles in the first buffer groove.
Optionally, in some embodiments of the present application, the display device further includes an encapsulation layer, the encapsulation layer covers the light emitting device layer and the first force-bearing layer, and the encapsulation layer is located on a side of the color filter unit near the light emitting device layer.
Optionally, in some embodiments of the present application, the encapsulation layer includes a first inorganic layer, an organic layer, and a second inorganic layer, the first inorganic layer covers the light emitting device layer and the first force-bearing layer, the organic layer covers the first inorganic layer, and the second inorganic layer covers the organic layer.
Optionally, in some embodiments of the present application, the first force-bearing layer includes a plurality of first lines extending in a first direction and a plurality of second lines extending in a second direction, the first lines intersect the second lines, and the first buffer groove is disposed corresponding to intersections between the first lines and the second lines.
Optionally, in some embodiments of the present application, the driving circuit layer includes a first touch electrode, and the first buffer groove exposes the first touch electrode;
Optionally, in some embodiments of the present application, the driving circuit layer further includes an interlayer insulating layer covering the first touch electrode;
Optionally, in some embodiments of the present application, the interlayer insulating layer includes a first insulating layer and a second insulating layer, the first insulating layer covers the first touch electrode, the second insulating layer covers the first insulating layer, each of the first insulating layer and the second insulating layer is provided with the second buffer groove, the second buffer groove of the first insulating layer communicates with the second buffer groove of the second insulating layer, and the second buffer groove of the second insulating layer communicates with the first buffer groove.
Optionally, in some embodiments of the present application, the color filter unit includes a package cover plate and a light shielding layer, the light shielding layer is disposed on a side of the package cover plate near the light emitting device layer, the buffer groove includes a third buffer groove disposed on the light shielding layer, and the plurality of elastic particles are disposed in the third buffer groove.
Optionally, in some embodiments of the present application, the light shielding layer includes a first light shielding strip extending in a first direction and a second light shielding strip extending in a second direction, the first light shielding strip intersects the second light shielding strip, and each of the first light shielding strip and the second light shielding strip is provided with the third buffer groove.
Optionally, in some embodiments of the present application, a plurality of first light shielding strips and a plurality of second light shielding strips are combined to form a plurality of grooves, and a corresponding color filter is provided in each of the plurality of grooves.
Optionally, in some embodiments of the present application, the display device further includes a second force-bearing layer disposed on a side of the light shielding layer near the light emitting device layer, the second force-bearing layer covers the elastic particles in the third buffer groove.
Optionally, in some embodiments of the present application, a material of the second force-bearing layer is a polymer gel, and the polymer gel fills gaps between the adjacent elastic particles in the third buffer groove.
Optionally, in some embodiments of the present application, the display device further includes a second touch electrode disposed between the package cover plate and the light shielding layer, and the third buffer groove exposes the second touch electrode;
Optionally, in some embodiments of the present application, the elastic particles are selected from at least one of silver nanoparticles, zinc oxide particles, tin oxide particles, titanium dioxide particles, gold particles, aluminum particles, or carbon nanotube particles.
Optionally, in some embodiments of the present application, a particle size of the elastic particles ranges from 5 nanometers to 100 nanometers.
An embodiment of the present application provides a display device, a buffer groove is provided in at least one of a light emitting device layer or a color filter unit, and a plurality of elastic particles are filled in the buffer groove. When the display device is subject to an impact, the plurality of elastic particles in the buffer groove are compressed and deformed after being pressed, so as to play a role of buffering and effectively improve the impact resistance of the display device.
In order to more clearly explain the technical solutions in the embodiments of the present application, the drawings required for describing the embodiments will be described below. It is apparent that the drawings in the description below are merely some embodiments of the present application, and those skilled in the art may derive other drawings from these drawings without creative efforts.
Technical solutions in embodiments of the present application will be clearly and completely described below in conjunction with drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the protection scope of the present application. In addition, it should be understood that the specific implementations described here are only used to illustrate and explain the present disclosure, and are not used to limit the present disclosure. In the present disclosure, unless otherwise stated, directional words used such as “upper” and “lower” generally refer to the upper and lower directions of the device in actual use or working state, and specifically refer to the drawing directions in the drawings; and “inner” and “outer” refer to the outline of the device.
Embodiments of the present application provide a display device. Detailed description will be given below. It should be noted that the order of description of the following embodiments is not intended to limit the preferred order of the embodiments.
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In the display device according to an embodiment of the present application, a buffer groove 500 is provided in at least one of the light emitting device layer 300 or the color filter unit 400, and a plurality of elastic particles 600 are filled in the buffer groove 500. When the display device is subject to an impact, the plurality of elastic particles 600 in the buffer groove 500 are compressed and deformed after being pressed, so as to play a role of buffering and effectively improve the impact resistance of the display device. When the impact force is exhausted, the plurality of elastic particles 600 in the buffer groove 500 return to the initial state.
Specifically, in the display device according to an embodiment of the present application, when the buffer groove 500 is fully filled with a plurality of elastic particles 600, since the space for compressing and deforming the elastic particles 600 is small, the buffering function of the elastic particles 600 may be greatly weakened. In order to ensure the buffering function of the elastic particles 600 by providing the sufficient space for compressing and deforming the elastic particles 600, the filling amount of the elastic particles 600 in the buffer groove 500 is less than 95%, that is, in the natural state, the volume occupied by the elastic particles 600 in the buffer groove 500 is less than 95% of the volume of the buffer groove 500. In this embodiment, the filling amount of the elastic particles 600 in the buffer groove 500 may be 94%, 90%, 85%, 80%, 75%, 70%, 65%, or 60%, etc., and the filling amount of the elastic particles 600 in the buffer groove 500 may be appropriately adjusted according to the actual selection and specific requirements.
Specifically, in the display device according to an embodiment of the present application, the display device has a display area AA, the display area AA includes a light shielding area BM and a plurality of sub-pixel areas SP, the light shielding area BM divides the display area AA into a plurality of sub-pixel areas SP, and the plurality of sub-pixel areas SP are arranged at intervals. Specifically, the plurality of sub-pixel areas SP may be arranged in an array. The buffer groove 500 and the plurality of elastic particles 600 filled in the buffer groove 500 are disposed corresponding to the light shielding area BM. In this configuration, the elastic particles 600 do not block normal light emitting of the display device.
Specifically, in the display device according to an embodiment of the present application, the light emitting device layer 300 includes a first electrode 310, a pixel defining layer 320, a light emitting function layer 330, and a second electrode 340, and the first electrode 310 is provided on the driving circuit layer 200. The pixel defining layer 320 covers the first electrode 310 and the driving circuit layer 200, the pixel defining layer 320 is defined with a pixel opening 321, the pixel opening 321 is defined corresponding to the sub-pixel area SP of the display area AA, and the pixel opening 321 exposes the first electrode 310; the light emitting function layer 330 is provided on the first electrode 310 in the pixel opening 321, and the second electrode 340 covers the light emitting function layer 330 and the pixel defining layer 320. In this configuration, by providing a voltage difference between the first electrode 310 and the second electrode 340, the light emitting function layer 330 may be actively caused to emit light, thereby realizing a display function.
Specifically, the light emitting device layer 300 includes a plurality of first electrodes 310, the first electrodes 310 are in one-to-one correspondence with the sub-pixel regions SP, the pixel defining layer 320 is provided with a plurality of pixel openings 321, each of the pixel openings 321 correspondingly expose one first electrode 310, a corresponding light emitting function layer 330 is deposited on the first electrode 310 in each pixel opening 321, and the second electrode 340 is disposed on the light emitting function layer 330 in each pixel opening 321. In this way, each first electrode 310 and its corresponding light emitting function layer 330 and the second electrode 340 together form an OLED device. In this embodiment, each second electrode 340 may correspond to one, two or more sub-pixel regions SPs, which are not particularly limited herein.
Specifically, the first electrode 310 and the second electrode 340 have opposite polarities, for example, when the first electrode 310 is an anode, the second electrode 340 is a cathode; when the first electrode 310 is a cathode, the second electrode 340 is an anode.
Specifically, the light emitting function layer 330 includes a hole injection layer, a hole transport layer, a light emitting layer, an ion transport layer, and an ion injection layer, which are stacked in this order from the anode toward the cathode, and the specific structure of the light-emitting function layer 330 may be appropriately modified according to the actual conditions and the specific requirements. For example, the light-emitting function layer 330 includes a hole injection transport layer, a light emitting layer, and an ion injection transport layer, which are stacked in this order from the anode toward the cathode, and it is not uniquely defined herein.
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Specifically, the first direction X and the second direction Y are disposed perpendicular to each other. Of course, the first direction X and the second direction Y may be disposed at other angles according to the actual conditions and the specific requirements, so long as the intersection between the first direction X and the second direction Y is ensured, which is not uniquely defined herein.
Specifically, the first force-bearing layer 350 includes a plurality of first lines 351 and a plurality of second lines 352, the plurality of first lines 351 are sequentially arranged at intervals along the second direction Y, and the plurality of second lines 352 are sequentially arranged at intervals along the first direction X, so that the first force-bearing layer 350 is in a mesh. In this embodiment, the second electrode 340 is spaced apart from the first line 351, the second electrode 340 is spaced apart from the second line 352, the plurality of first lines 351 and the plurality of second lines 352 are combined to form a plurality of first mesh holes 353, and each of the second electrodes 340 is located in a corresponding first mesh hole 353.
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Specifically, the drain 272 is also electrically connected to the light shielding electrode 210. With this structure, the impedance of the lines may be reduced, the voltage drop of lines in the display device may be reduced, thereby improving the brightness uniformity of the display device and reducing the power consumption of the display device.
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It should be noted that the meaning of “arranging on the same layer” means that it is completed by one process, and the meaning of “arranging on the same layer” will not be repeatedly explained below.
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Specifically, the light shielding layer 420 encloses a plurality of grooves 421 on the package substrate 100, and each groove 421 is filled with a color filter 430. The color filter 430 may include a red color filter 430, a green color filter 430, and a blue color filter 430. In this configuration, the light emitted by the light emitting function layer 330 is emitted after passing through the color filter 430, and thus the contrast of the display device may be improved. In this embodiment, the light shielding layer 420 includes the plurality of first light shielding strips 422 and the plurality of second light shielding strips 423, the plurality of first light shielding strips 422 are sequentially arranged at intervals along the second direction Y, and the plurality of second light shielding strips 423 are sequentially arranged at intervals along the first direction X, so that the plurality of first light shielding strips 422 and the plurality of second light shielding strips 423 are combined to form a plurality of grooves 421, each of which is provided with a corresponding color filter 430.
Specifically, when the material of the second force-bearing layer 440 is a polymer gel, as shown in
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Specifically, the display device further includes an encapsulation layer 460 and a bonding adhesive 470. The encapsulation layer 460 covers the light emitting device layer 300 and the first force-bearing layer 350. The encapsulation layer 460 and the bonding adhesive 470 are located on the side of the color filter unit 400 near the light emitting device layer 300. The bonding adhesive 470 is disposed on the side of the encapsulation layer 460 near the light shielding layer 420. The bonding adhesive 470 adheres the light shielding layer 420, the color filter 430, and the second force-bearing layer 440 to the encapsulation layer 460. In this embodiment, the encapsulation layer 460 includes a first inorganic layer 461, an organic layer 462, and a second inorganic layer 463, the first inorganic layer 461 covers the light emitting device layer 300 and the first force-bearing layer 350, the organic layer 462 covers the first inorganic layer 461, and the second inorganic layer 463 covers the organic layer 462.
Specifically, in the display device according to the embodiment of the present application, the elastic particles 600 are selected from at least one of silver nanoparticles, zinc oxide particles, tin oxide particles, titanium dioxide particles, gold particles, aluminum particles, or carbon nanotube particles. Of course, the material of the elastic particles 600 may be appropriately changed according to actual conditions and specific requirements. In this embodiment, the surface of the elastic particles 600 is modified with hydrophobic and/or oleophobic functional groups, for example, the surface of the elastic particles 600 is modified with fluorine ion functional groups, and in this way, the elastic particles 600 are not easily eroded by the moisture, and the reliability of the display device may be improved.
Specifically, the particle size of the elastic particles 600 ranges from 5 nanometers to 100 nanometers, for example, the particle size of the elastic particles 600 is 5 nanometers, 10 nanometers, 20 nanometers, 30 nanometers, 40 nanometers, 50 nanometers, 60 nanometers, 70 nanometers, 80 nanometers, 90 nanometers, or 100 nanometers, and the particle size of the elastic particles 600 may be appropriately modified according to the actual selection and specific requirements.
The display device provided in the embodiments of the present application is described in detail above. The principles and implementations of the present application are described in detail here with specific examples. The above description of the embodiments is merely intended to help understand the method and core ideas of the present application. At the same time, a person skilled in the art may make changes in the specific embodiments and application scope according to the idea of the present application. In conclusion, the content of the present specification should not be construed as a limitation to the present application.
Number | Date | Country | Kind |
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202210198235.0 | Mar 2022 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2022/080456 | 3/11/2022 | WO |