DISPLAY PANEL AND METHOD OF MANUFACTURING SAME
20210408506 ยท 2021-12-30
Assignee
Inventors
Cpc classification
H10K71/00
ELECTRICITY
H10K71/191
ELECTRICITY
International classification
Abstract
A display panel and a method of manufacturing the display panel are provided. The display panel includes an array substrate, a pixel definition layer, and spacers. Each of spacers includes a bottom surface and a top surface. A cross-sectional area of the top surface is less than a cross-sectional area of the bottom surface. A horizontal distance from a center to a side of the spacer gradually increases from the top surface to the bottom surface. Moreover, holes of the mask plate corresponding to positions of the spacers are defined, which ensures accuracy of photolithography and display effect of the display panel.
Claims
1. A display panel, comprising: an array substrate; a pixel definition layer disposed on the array substrate; and a plurality of spacers disposed on the pixel definition layer; wherein each of the spacers comprises a bottom surface and a top surface, a cross-sectional area of the top surface is less than a cross-sectional area of the bottom surface, and a horizontal distance from a center to a side of each of the spacers increases gradually from the top surface to the bottom surface; and the spacers are arranged in a square array on the pixel definition layer, and the spacers are defined with a draft taper.
2. The display panel according to claim 1, wherein a cross-sectional shape of the spacers includes square.
3. The display panel according to claim 1, wherein a cross-sectional shape of the spacers includes circular.
4. The display panel according to claim 1, wherein each of the spacers is disposed on a non-aperture region of a pixel of the display panel.
5. A display panel, comprising: an array substrate; a pixel definition layer disposed on the array substrate; and a plurality of spacers disposed on the pixel definition layer; wherein each of the spacers comprises a bottom surface and a top surface, a cross-sectional area of the top surface is less than a cross-sectional area of the bottom surface, and a horizontal distance from a center to a side of each of the spacers increases gradually from the top surface to the bottom surface.
6. The display panel according to claim 5, wherein a cross-sectional shape of the spacers includes square.
7. The display panel according to claim 5, wherein a cross-sectional shape of the spacers includes circular.
8. The display panel according to claim 5, wherein the spacers are arranged in a square array on the pixel definition layer.
9. A method of manufacturing a display panel, comprising following steps: S100, fabricating a base substrate, an array substrate, and a pixel definition layer of the display panel; S101, fabricating a plurality of spacers on the pixel definition layer; S102, forming a plurality of holes on a mask plate corresponding to positions of the spacers by a fine metal mask plate evaporation technology; and S103, aligning the mask plate with the spacers and performing a vapor deposition process.
10. The method of manufacturing the display panel according to claim 9, wherein the step S100 further comprises forming a plurality of openings in a pixel effective region of the pixel definition layer by a photolithography process.
11. The method of manufacturing the display panel according to claim 9, wherein a cross-sectional shape of the spacers includes circular.
12. The method of manufacturing the display panel according to claim 9, wherein a cross-sectional shape of the spacers includes square.
13. The method of manufacturing the display panel according to claim 9, wherein a side of each of the spacers has a slope.
14. The method of manufacturing the display panel according to claim 9, wherein the holes of the mask plate comprise through holes or blind holes in the step S102.
15. The method of manufacturing the display panel according to claim 14, wherein a diameter of the holes of the mask plate is less than 12um.
16. The method of manufacturing the display panel according to claim 9, wherein the holes of the mask plate corresponding to positions of the spacers comprise through holes and blind holes in the step S102.
17. The method of manufacturing the display panel according to claim 16, wherein a height of the spacers corresponding to the through holes is greater than a height of the spacers corresponding to the blind holes.
18. The method of manufacturing the display panel according to claim 9, wherein after an alignment of the mask plate and the spacers is completed in the step S103, red pixels, blue pixels, and green pixels are vapor-deposited through the mask plate, respectively.
Description
BRIEF DESCRIPTION OF FIGURES
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[0044]
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DETAILED DESCRIPTION OF EMBODIMENTS
[0047] The following descriptions of the embodiments are made with reference to the attached drawings to illustrate specific embodiments that the present disclosure can be implemented.
[0048] In an embodiment of the present disclosure, as shown in
[0049] Specifically, the array substrate layer 101 further includes a buffer layer, a first gate insulating layer, a second gate insulating layer, an inorganic insulating layer, a planarization layer, and a functional layer of the display panel etched in each film layer.
[0050] The spacers 103 are arranged in a square array on the pixel definition layer 102, and can be specifically disposed on a non-aperture region of a pixel to prevent affecting light emitting condition of the pixel.
[0051] Specifically, as shown in
[0052] The top surface 200 can also be concentrated into a vertex, in this case, the spacer is a cone. A cross-sectional shape of the spacer is circular. A cross-sectional area of the top surface 200 is less than a cross-sectional area of the bottom surface 201, and a side of the spacer has a draft taper, that is, a horizontal distance from a center to the side of the spacer increases gradually from the top surface 200 to the bottom surface 201. In this way, when the spacers are matched with a mask plate, the spacers with a slope can easily be matched with holes in the mask plate to improve the process efficiency.
[0053] Preferably, the cross-sectional shape of the spacer can also be square, and a side length of the top surface is less than a side length of the bottom surface. Specifically, in order to ensure the fitting accuracy, the side length of the square top surface is set to 5 um, the side length of the bottom surface is set to 19 um, and a height of the spacer is set to 7 um.
[0054] As shown in
[0055] Compared with
[0056] An embodiment of the present disclosure further provides a method of manufacturing a display panel. As shown in
[0057] S100, fabricating a base substrate, an array substrate, and a pixel definition layer of the display panel.
[0058] First, a conventional OLED manufacturing process is used to fabricate the base substrate of the display panel and the array substrate on the base substrate. After the array substrate is fabricated, the pixel definition layer is deposited. Typical OLED manufacturing processes include a chemical vapor deposition process, a physical vapor deposition process, and a photolithography process. After the above-mentioned film layers are fabricated, it is also necessary to use a pre-made mask plate to fabricate a plurality of pixel openings through a photolithography process on the pixel definition layer, and a plurality of pixel units are subsequently arranged in the pixel openings.
[0059] S101, fabricating a plurality of spacers on the pixel definition layer.
[0060] In the embodiment of the present disclosure, the function of the spacers is to position and fix the mask plate. If the mask plate is not positioned accurately during photolithography, an aperture ratio of the fabricated pixel units is not high, and the display effect is poor during display. When the spacers are set, the cross-sectional shape of the spacers can be circular or square, and each of the spacers has a certain draft taper. In this way, when the spacers are matched with the mask plate, it is easy for the spacers to be inserted inside the holes of the mask plate.
[0061] S102, forming a plurality of holes on a mask plate corresponding to positions of the spacers by a fine metal mask plate evaporation technology.
[0062] The embodiment of the present disclosure further includes a mask plate, and the mask plate is matched with the spacers in the step S101. The holes are formed on the mask plate at positions corresponding to the spacers. The holes include through holes or blind holes, or both types of holes are defined at the same time.
[0063] Specifically, as shown in
[0064] In the meantime, a precision mask plate 505 is also included in the photolithography process. The mask plate 505 includes a plurality of openings 506 and a plurality of second holes 507. The second holes 507 are mainly to fabricate a plurality of aperture regions on the pixel definition layer. A photoresist is coated on the second holes 507 and illuminated to obtain pixel openings on the pixel definition layer.
[0065] In step S101, the first spacer 503 and the second spacer 504 have been fabricated on the display panel. The openings 506 are defined in the mask plate 505 at positions corresponding to the spacers, and the openings 506 can be through holes or blind holes. Moreover, the openings have a certain slope. Preferably, a maximum side length of the bottom of the openings 506 is 12um. In this way, the spacers are conveniently matched and positioned with the openings to ensure photolithographic accuracy.
[0066] Specifically, as shown in
[0067] S103, aligning the mask plate with the spacers and performing a vapor deposition process.
[0068] After the positioning is completed, red pixels, blue pixels, and green pixels are vapor-deposited, respectively.
[0069] Finally, the display panel in the embodiment of the present disclosure is obtained.
[0070] The display panel and the method of manufacturing the display panel according to the embodiments of the present disclosure have been described in detail above. The technical scope of the present invention is not limited to the above description, a person skilled in the art can make various modifications and changes to the above embodiments without departing from the technical idea of the present invention, and such variations and modifications are intended to be within the scope of the invention.