Abstract:
The present disclosure provides an array substrate and a liquid crystal display panel, belonging to the file of display technology. The array substrate includes a base substrate, a first electrode, an insulating dielectric layer and a second electrode stacked in sequence; the second electrode is provided with at least one hollow hole, and the hollow hole is in a shape of convex polygon, circle or ellipse.
Abstract:
This disclosure discloses an alignment device and a method of manufacturing an alignment film, and a display substrate. The alignment device comprises a first exposure chamber that contains a first light box and a light-shielding plate for blocking light emitted from the first light box from irradiating the alignment region of the alignment film. The light emitted from the first light box is used to irradiate a non-alignment region so as to eliminate the alignment film in the non-alignment region.
Abstract:
The present disclosure provides a method for rubbing an alignment layer and a liquid crystal display panel. The method includes: performing a first rubbing on the alignment layer of a liquid crystal display panel in a first rubbing direction; and performing a second rubbing on the alignment layer of the liquid crystal display panel in a second rubbing direction. The second rubbing direction is an arrangement direction of liquid crystal molecules when the liquid crystal molecules are arranged correctly on the alignment layer. The second rubbing direction is different from the first rubbing direction.
Abstract:
The invention discloses a sealant composition used for improving residual image, which comprises a heat-curable and/or UV-curable primary sealant and a both UV-curable and moisture-curable secondary sealant. In the sealant composition of the present invention, a “multi-curable” sealant system is built by introducing a novel dual-curable resin as the secondary sealant into the conventional sealant, wherein the primary sealant can impart sufficient strength to the sealant composition through heat-curing and/or UV-curing, and the secondary sealant can adsorb the water vapor between the glass substrates through UV-curing and moisture-curing. The primary sealant and the secondary sealant are used together for bonding glass substrates, which can avoid the insufficient adhesion of the conventional sealant caused by solvent molecules (e.g. water vapor etc.) during the encapsulation of glass substrates, and ensure high adhesion strength and strong collapse resistance of the sealant.
Abstract:
A display panel and a display apparatus are disclosed. The display panel includes multiple light emitting device groups, multiple light exiting part groups and multiple optical structure units, wherein each light emitting device group includes multiple light emitting devices including first and second light emitting devices, for emitting light of a preset color; each light exiting part groups includes first and second color conversion parts; an orthographic projection of each optical structure unit on the first base substrate covers an orthographic projection of at least one light emitting device group on the first base substrate, each optical structure unit is to direct light emitted by the first and second light emitting devices to the first and second color conversion parts, respectively, the first and second color conversion parts are to convert light of the preset color into light of a first color and light of a second color, respectively.
Abstract:
An array substrate is provided. One of a first electrode layer and a second electrode layer in the array substrate includes at least one slit electrode. The slit electrode is disposed between two adjacent data leads in the array substrate, and includes an electrode connecting portion and a plurality of first strip-shaped sub-electrodes. The electrode connecting portion includes a first connecting section parallel to and adjacent to the data lead, and a distance between two adjacent first strip-shaped sub-electrodes in a direction parallel to an extending direction of the first connecting section gradually increases along a direction going away from the first connecting section.
Abstract:
The present disclosure relates to a frame sealant, a preparation method therefor, and a display mother substrate and a display device using the same. The sealant includes: 20-30 parts by weight of a long-chain acrylate emulsion, 4-8 parts by weight of a photoinitiator, 10-20 parts by weight of a methacrylate, and 46-66 parts by weight of fibers.
Abstract:
The present disclosure provides a method for rubbing an alignment layer on a substrate with a plurality of spacers that are arranged in rows and columns and a liquid crystal display panel. The method includes: determining a first rubbing direction and a second rubbing direction in such a manner that the second rubbing direction is an arrangement direction of liquid crystal molecules when the liquid crystal molecules are arranged correctly on the alignment layer, and an angle between the first rubbing direction and the second rubbing direction is greater than or equal to arctan (b/a), where a represents a row pitch between the spacers and b represents a width of one spacer; performing a first rubbing on the alignment layer in the first rubbing direction; and performing a second rubbing on the alignment layer in the second rubbing direction. The second rubbing direction is different from the first rubbing direction.
Abstract:
A thin film transistor and manufacturing method thereof, an array substrate, a display panel and a display device are provided. The method includes a step of forming an organic semiconductor layer on a hydrophilic structural layer. The step includes forming a lipophilic material layer on an upper surface of the hydrophilic structural layer; patterning the lipophilic material layer to remove the lipophilic material located at regions other than a region for forming the organic semiconductor layer thereon and remain the lipophilic material located at the region for forming the organic semiconductor layer thereon to form a lipophilic layer; and forming the organic semiconductor layer on the lipophilic layer through a wet process by using the lipophilic organic material.