US 11,703,719 B2
Liquid crystal display panel and method of manufacturing the same, and display device
Feifei Wang, Beijing (CN); Hongming Zhan, Beijing (CN); Xibin Shao, Beijing (CN); Lintao Ji, Beijing (CN); and Bowen Li, Beijing (CN)
Assigned to BEIJING BOE DISPLAY TECHNOLOGY CO., LTD., Beijing (CN); and BOE TECHNOLOGY GROUP CO., LTD., Beijing (CN)
Appl. No. 17/288,364
Filed by BEIJING BOE DISPLAY TECHNOLOGY CO., LTD., Beijing (CN); and BOE TECHNOLOGY GROUP CO., LTD., Beijing (CN)
PCT Filed Jan. 5, 2021, PCT No. PCT/CN2021/070299
§ 371(c)(1), (2) Date Apr. 23, 2021,
PCT Pub. No. WO2021/139646, PCT Pub. Date Jul. 15, 2021.
Claims priority of application No. 202020053145.9 (CN), filed on Jan. 10, 2020; and application No. 202010276034.9 (CN), filed on Apr. 9, 2020.
Prior Publication US 2022/0050338 A1, Feb. 17, 2022
Int. Cl. G02F 1/1337 (2006.01); G02F 1/1333 (2006.01); G02F 1/13363 (2006.01)
CPC G02F 1/133749 (2021.01) [G02F 1/13363 (2013.01); G02F 1/133357 (2021.01)] 7 Claims
OG exemplary drawing
 
1. A liquid crystal display panel, comprising:
a first base substrate and a second base substrate that are arranged opposite to each other;
a liquid crystal layer disposed between the first base substrate and the second base substrate, the liquid crystal layer including a first alignment film and a second alignment film that are arranged opposite to each other, and a second liquid crystal molecular layer located between the first alignment film and the second alignment film; the first alignment film being configured to anchor a part, proximate to the first alignment film, of second liquid crystal molecules in the second liquid crystal molecular layer, so that the part of second liquid crystal molecules proximate to the first alignment film have a first pretilt angle; the second alignment film being configured to anchor a part, proximate to the second alignment film, of the second liquid crystal molecules in the second liquid crystal molecular layer, so that the part of second liquid crystal molecules proximate to the second alignment film have a second pretilt angle; a direction of the first pretilt angle being opposite to a direction of the second pretilt angle; and
an optical compensation layer disposed on a side of the first alignment film or the second alignment film away from the second liquid crystal molecular layer, the optical compensation layer being a +A compensation layer and including a third alignment film and a first liquid crystal molecular layer; the third alignment film being configured to anchor first liquid crystal molecules, proximate to the third alignment film, in the first liquid crystal molecular layer, so that the first liquid crystal molecules proximate to the third alignment film have a third pretilt angle; an extending direction of orthogonal projections of long axes of the first liquid crystal molecules on a plane where the third alignment film is located is parallel to an extending direction of orthogonal projections of long axes of second liquid crystal molecules anchored by the first alignment film and the second alignment film on the plane where the third alignment film is located,
wherein the optical compensation layer is disposed on the side of the first alignment film away from the second liquid crystal molecular layer, the third alignment film is disposed on a side of the first base substrate away from the liquid crystal layer, and a direction of the third pretilt angle is the same as the direction of the first pretilt angle; or the optical compensation layer is disposed on the side of the second alignment film away from the second liquid crystal molecular layer, the third alignment film is disposed on a side of the second base substrate away from the liquid crystal layer, and the direction of the third pretilt angle is the same as the direction of the second pretilt angle;
the first pretilt angle, the second pretilt angle and the third pretilt angle are in a range of 2°±1°;
a sum of an in-plane retardation of the optical compensation layer and an in-plane retardation of the liquid crystal layer is equal to a positive integer multiple of a first wavelength; and the first wavelength is in a range of 535 nm±50 nm; and
the in-plane retardation of the optical compensation layer is in a range of 160 nm to 240 nm, and the in-plane retardation of the liquid crystal layer is in a range of 350 nm±25 nm.