Abstract:
Embodiments of the present invention provide a preparation method of a patterned film, a display substrate and a display device, avoiding falling off of a film layer occurring in the process of peeling off a photoresist layer. The preparation method of the patterned film comprises: forming a preset film layer on a surface of a preset substrate; covering the preset film layer with an isolation layer; forming a photoresist layer on a surface of the isolation layer and forming a pattern of the isolation layer with a patterning process; then removing the preset film layer which is not covered by the pattern of the isolation layer, peeling off the photoresist layer and removing the remaining, isolation layer to form a pattern of the preset film layer.
Abstract:
Disclosed are a color filter substrate and the manufacturing method thereof. The color filter substrate comprises: a substrate (1); a black matrix (3) and a color pixel layer (4, 5, 6) formed on the substrate (1); and a transparent thermally conductive layer (2) disposed between the substrate (1) and the black matrix (3) and between the substrate (1) and the color pixel layer (4, 5, 6).
Abstract:
The present invention provides a liquid crystal lens panel and a display device. The liquid crystal lens panel comprises a first substrate (10) and a second substrate (20) that are opposite to each other, and a liquid crystal layer (30) provided between the first substrate (10) and the second substrate (20); the first substrate (10) comprises a first structural layer (12) provided on a first base (11) and a first orientation layer (13) provided on the first structural layer (12); the second substrate (20) comprises a second structural layer (22) provided on a second base (21) and a second orientation layer (23) provided on the second structural layer (22); on a plane parallel to the liquid crystal lens panel, at least one of the first orientation layer (13) and the second orientation layer (23) comprises multiple orientation areas, orientation pretilt angles of at least two orientation areas are different.
Abstract:
A rubber fixing apparatus and a coater are provided. The rubber fixing apparatus includes: a storing device, in which a cavity configured to receive at least one rubber and an outlet communicated with the cavity are provided; and a fixing structure provided on the storing device and outside the cavity. The rubber is moved from the cavity through the outlet in a first direction and is fixed to the fixing structure.
Abstract:
An apparatus and a method of preparing electronic ink microcapsules are disclosed. The apparatus of preparing electronic ink microcapsules includes: a first input tube, a second input tube, a UV light source, and an output tube connected to both the first input tube and the second input tube, respectively. The first input tube is a shading tube adapted to input an electrophoresis suspension comprising a mixture of a pre-polymer and a photo-initiator. The second input tube is adapted to input an aqueous solution comprising surfactant. The UV light source is adapted to radiate the mixed liquid in the output tube which is a mixture of the liquids input from the first input tube and the second input tube to prepare the electronic ink microcapsules. The electronic ink microcapsules prepared by using the apparatus and the method of preparing electronic ink microcapsules exhibit advantages including good uniformity, good thermal stability, etc.
Abstract:
A quantum dot color filter, comprising: a base substrate (11); a pixel layer (14) provided on the base substrate (11), comprising a plurality of pixels, wherein each of the pixels comprises a plurality of color sub-pixels (14R, 14G, 14B) of different colors, and at least one of the color sub-pixels (14R, 14G, 14B) is formed of a quantum dot material, and a color of light generated by the quantum dot material after the quantum dot material is excited by incident light (80) is the same as a color of the color sub-pixel (14R, 14G 14B) corresponding to the quantum dot material; an optical filtering layer (12) provided on the base substrate (11), which is disposed to correspond to the color sub-pixel formed of the quantum dot material, and configured to absorb the incident light (80) that fails to excite the quantum dot material but is transmitted through the color sub-pixel (14R, 14G, 14B). The quantum dot color filter has increased transmittance, and improved and enriched brightness and color of a picture. A manufacturing method concerning the quantum dot color filter and a display apparatus are further provided.
Abstract:
Provided is a photosensitive alkali-soluble resin comprising a compound of formula (I), a method of preparing the same, and a color photosensitive resist containing the same, wherein n1, n2, R1, R2 and R3 are defined as herein. The photosensitive alkali-soluble resin is prepared by: copolymerizing ethylene oxide with α-hydroxyalkyl phenyl ketone to obtain the first intermediate product, followed by copolymerizing the first intermediate product with a copolymerization product of glycerin acrylate, styrene, and maleic anhydride to obtain the second intermediate product, and oxidizing the second intermediate product to produce the photosensitive alkali-soluble resin.
Abstract:
An apparatus and a method of preparing electronic ink microcapsules are disclosed. The apparatus of preparing electronic ink microcapsules includes: a first input tube, a second input tube, a UV light source, and an output tube connected to both the first input tube and the second input tube, respectively. The first input tube is a shading tube adapted to input an electrophoresis suspension comprising a mixture of a pre-polymer and a photo-initiator. The second input tube is adapted to input an aqueous solution comprising surfactant. The UV light source is adapted to radiate the mixed liquid in the output tube which is a mixture of the liquids input from the first input tube and the second input tube to prepare the electronic ink microcapsules. The electronic ink microcapsules prepared by using the apparatus and the method of preparing electronic ink microcapsules exhibit advantages including good uniformity, good thermal stability, etc.
Abstract:
The present disclosure provides an array substrate, which includes a first signal line and a second signal line arranged on a substrate as different layers that are insulating and spaced apart from each other, wherein one end of the first signal line includes a first conductive section, one end of the second signal line includes a second conductive section, the first conductive section and the second conductive section are electrically connected through a connecting structure, and wherein orthographic projections of an area where the first conductive section is located and an area where the second conductive section is located overlap at least partially. The array substrate can reduce the possibility of occurrence of circuit break between signal lines and improve the effect of connection between different signal lines.
Abstract:
A method of manufacturing an array substrate includes: forming a first functional layer comprising a plurality of array substrate areas and connection areas between adjacent array substrate areas; forming a plurality of conductive portions within each of the array substrate areas, the plurality of conductive portions extending from a corresponding one of the array substrate areas to a corresponding one of the connection areas and terminals of the plurality of conductive portions being in connection with capacitor lines within the corresponding one of the connection areas such that two capacitor lines between two adjacent array substrate areas face each other and are formed into a first capacitor element; forming a plurality of second functional layers on the first functional layer formed with the plurality of conductive portions and the capacitor lines, for forming a plurality of array substrates; and performing a cutting process at the connection areas between adjacent array substrates and removing the capacitor lines between the adjacent array substrates so as to form a plurality of separate array substrates. The present disclosure further provides an array substrate manufactured by the method.