IP Library › Granted Patent US 11,283,052
Granted Patent B2
US 11,283,052 · App. 16/326,463 · Granted Mar 22, 2022

Display panel and method for manufacturing the same being capable of improving relected light

Inventors: Can Wang (Beijing, CN); Xiaochuan Chen (Beijing, CN); Minghua Xuan (Beijing, CN); Can Zhang (Beijing, CN); Ming Yang (Beijing, CN); Han Yue (Beijing, CN)
Assignee: BOE TECHNOLOGY GROUP CO., LTD.
H01L51/5281H01L51/56H01L27/322H01L27/3211H01L27/3244H01L2227/323
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Quick Facts
Patent No.
US 11,283,052
App. No.
16/326,463
Granted
Mar 22, 2022
Kind
B2
Abstract

A display panel and a method for manufacturing the display panel are provided. The display substrate includes a plurality of sub-pixels; an anti-reflection layer provided on a light-exiting side of the display panel at positions respectively corresponding to the sub-pixels; a dielectric layer provided between the sub-pixels and the anti-reflection layer; the anti-reflection layer has a thickness enabling a first light and a second light to be not in-phase; the first light is a portion of ambient light reflected by a surface of the anti-reflection layer away from the sub-pixel; the second light is a portion of the ambient light sequentially refracted by and passing through the surface of the anti-reflection layer away from the sub-pixel, entering the anti-reflection layer, reflected by an interface between the anti-reflection layer and the dielectric layer, refracted by the surface of the anti-reflection layer away from the sub-pixel and entering environment.

Claims (52)

1. A display panel, comprising:

a plurality of sub-pixels;

an anti-reflection layer provided on a light-exiting side of the display panel at positions respectively corresponding to the sub-pixels;

a dielectric layer provided between the sub-pixels and the anti-reflection layer;

wherein the anti-reflection layer has a thickness enabling a first light and a second light to be not in-phase;

the first light is a portion of ambient light reflected by a surface of the anti-reflection layer away from the sub-pixels;

the second light is a portion of the ambient light sequentially refracted by and passing through the surface of the anti-reflection layer away from the sub-pixels, entering the anti-reflection layer, reflected by an interface between the anti-reflection layer and the dielectric layer, and refracted by the surface of the anti-reflection layer away from the sub-pixels and entering environment, and wherein

the anti-reflection layer or the dielectric layer is filled with auxillary particles, and

a wavelength of light transmitted by the sub-pixels is positively correlated with diameters of the auxillary particles.

2. The display panel according to claim 1 , wherein the anti-reflection layer has a refractive index smaller than a refractive index of the dielectric layer but greater than a refractive index of the environment.

3. The display panel according to claim 2 , wherein the refractive index n of the anti-reflection layer is calculated according to the following equation:

n 2 =n 1* n 2, where

n1 is the refractive index of the environment;

n2 is the refractive index of the dielectric layer.

4. The display panel according to claim 2 , wherein a thickness d of the anti-reflection layer is calculated according to the following equation:

nd =(2 k+ 1)λ/4, ( k= 1,2,3,4 . . . )

where n is the refractive index of the anti-reflection layer, and λ is a wavelength of light emitted by the sub-pixels.

5. The display panel according to claim 1 , wherein the dielectric layer is glass.

6. The display panel according to claim 1 , wherein the anti-reflection layer is made of a material including at least one of SiO 2 , MgF 2 and an organic resin having a refractive index less than 1.5.

7. The display panel according to claim 1 , wherein a coating layer having a color consistent with a color of corresponding one of the sub-pixels is provided at a position corresponding to the corresponding one of the sub-pixels on the light-exiting side of the display panel.

8. The display panel according to claim 7 , wherein the coating layer is provided on a surface of the anti-reflection layer away from the dielectric layer.

9. The display panel according to claim 1 , wherein the auxiliary particles include at least one kind of Ag particles, Au particles and Si particles.

10. The display panel according to claim 1 , further comprising: a substrate made of a monocrystalline silicon material and an active driving circuit formed on the substrate, wherein

the sub-pixels are OLED light-emitting sub-pixels; and

the active driving circuit is configured to drive the OLED light emitting sub-pixels to operate.

11. A method for manufacturing a display panel, comprising steps of:

providing a dielectric layer and an anti-reflection layer at positions on a light-exiting side of the display panel respectively corresponding to sub-pixels, the dielectric layer being provided between the sub-pixels and the anti-reflection layer;

wherein the anti-reflection layer has a thickness enabling a first light and a second light to be not in-phase;

the first light is a portion of ambient light reflected by a surface of the anti-reflection layer away from the sub-pixel;

the second light is a portion of the ambient light sequentially refracted by and passing through the surface of the anti-reflection layer away from the sub-pixel, entering the anti-reflection layer, reflected by an interface between the anti-reflection layer and the dielectric layer, and refracted by the surface of the anti-reflection layer away from the sub-pixel and entering environment.

12. The method for manufacturing the display panel according to claim 11 , wherein the anti-reflection layer has a refractive index smaller than a refractive index of the dielectric layer but greater than a refractive index of the environment.

13. The method for manufacturing the display panel according to claim 12 , wherein the refractive index n of the anti-reflection layer is calculated according to the following equation:

n 2 =n 1* n 2, where

n1 is the refractive index of the environment;

n2 is the refractive index of the dielectric layer.

14. The method for manufacturing the display panel according to claim 12 , wherein a thickness d of the anti-reflection layer is calculated according to the following equation:

nd =(2 k+ 1)λ/4, ( k= 1,2,3,4 . . . )

where n is the refractive index of the anti-reflection layer; and λ is a wavelength of light emitted by the sub-pixels.

15. The method for manufacturing the display panel according to claim 13 , wherein a thickness d of the anti-reflection layer is calculated according to the following equation:

nd =(2 k+ 1)λ/4, ( k= 1,2,3,4 . . . )

where n is the refractive index of the anti-reflection layer; and λ is a wavelength of light emitted by the sub-pixels.

16. The method for manufacturing the display panel according to claim 11 , further including a step of:

providing a coating layer having a color consistent with a color of corresponding one of the sub-pixels, at a position corresponding to the corresponding one of the sub-pixels on the light-exiting side of the display panel.

17. The method for manufacturing the display panel according to claim 11 , the coating layer is provided on a surface of the anti-reflection layer away from the sub-pixel.

18. The method for manufacturing the display panel according to claim 11 , further including a step of:

filling auxiliary particles into the anti-reflection layer or the dielectric layer, wherein

a wavelength of light emitted by the sub-pixels is positively correlated with diameters of the auxiliary particles.

19. The method for manufacturing the display panel according to claim 11 , further including steps of:

providing a substrate formed of a monocrystalline silicon material;

forming an active driving circuit on the substrate by using a CMOS process;

forming the sub-pixels on the active driving circuit, wherein

the sub-pixels being OLED sub-pixels, and the active driving circuit being capable of driving the sub-pixels to operate.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 20, 2019
From: WANG, CAN; CHEN, XIAOCHUAN; XUAN, MINGHUA; ZHANG, CAN; YANG, MING; YUE, HAN
To: BOE TECHNOLOGY GROUP CO., LTD.
Reel/Frame 048384/0001 →
Priority Claims (1)
CN 201710576534.2 · Jul 14, 2017 · national
Continuity (1)
Related Publication 20210296619A1 · Sep 23, 2021