Abstract:
A curved surface LCD panel and a display device are disclosed. The curved surface LCD panel includes an array substrate and an opposite substrate parallel with each other and curved in a same direction, wherein edge zones of the array substrate and the opposite substrate having plural optical retardation zones, each of the optical retardation zones on the array substrate being corresponding to one of the optical retardation zones on the opposite substrate, and two corresponding optical retardation zones constituting a zone group; a LC layer located between the array substrate and the opposite substrate; and an optical compensation film attached at each of the optical retardation zones in at least one zone group; wherein the optical compensation film being perpendicular to an optical axis of the optical retardation zone attached with the optical compensation film and having an equal optical retardation with the optical retardation zone.
Abstract:
The present disclosure provides a display panel, a manufacturing method thereof, and a display device. The display panel includes: a first medium and a first spacer wall between the first substrate and the second substrate, wherein the first sub-panel has filter pixels arranged at intervals, the first spacer wall is black and arranged along spaces between filter pixels, and a dielectric coefficient of the first spacer wall is greater than that of the first medium; and a second sub-panel on a light emergent side of the first sub-panel and including a second medium and a second spacer wall between the third substrate and the fourth substrate, wherein the second sub-panel has display pixels arranged at intervals, the second spacer wall is black and arranged along spaces between display pixels, and a dielectric coefficient of the second spacer wall is greater than that of the second medium.
Abstract:
A display panel, a manufacturing method of the display panel, and a display device including the display panel are provided. The display panel includes an insulating substrate; a first circuit at a first side of the insulating substrate; and a second circuit at a second side of the insulating substrate. The first side and the second side of the insulating substrate are opposite to each other in a first direction perpendicular to a display surface, and the first circuit and the second circuit on opposing sides of the insulating substrate are electrically connected by tapered through hole and tapered pad.
Abstract:
An array substrate includes a base substrate, a pixel circuit, a flexible substrate, a lead structure, a control circuit and a planarization layer. The flexible substrate includes a first substrate portion and a second substrate portion, and the lead structure includes a first lead portion and a second lead portion. The pixel circuit, the first lead portion and the first substrate portion are all arranged on a first side of the base substrate, the control circuit, the second lead portion and the second substrate portion are all arranged on a second side of the base substrate, and the second side is opposite to the first side.
Abstract:
Embodiments of the present disclosure provide a display substrate, a method for manufacturing a display substrate, and a display device. The method for manufacturing the display substrate includes: providing a seed layer on a first carrier substrate and forming a base substrate covering the seed layer; forming a first connection terminal on a side of the base substrate away from the first carrier substrate, the first connection terminal electrically connecting to the seed layer; removing the first carrier substrate to expose the seed layer; and forming a second connection terminal electrically connecting to the seed layer.
Abstract:
A sealant composition includes: a main component; and a high strength fiber with a specific surface area of about 2000 m2/g to about 30000 m2/g, wherein the amount of the high strength fiber is about 0.5% to about 3% based on the weight of the main component. The high strength fiber has a high specific surface area and has active groups such as a hydroxyl group and a carboxyl group on its surface, and allows the fiber resin matrix to form a chemical bond at the interface, thereby improving the reaction ability and bonding strength of the fiber resin matrix, and enhancing the overall strength of the uncured sealant, and mitigating the phenomenon of liquid crystal puncturing.
Abstract:
The present invention relates to the field of displays and discloses a polyimide substrate, which is manufactured by reacting lignin, polyimide and a free radical initiator. Because lignin contains various active groups, for example, hydroxyl, carboxyl and aryl, etc., when it is introduced into the polymer structure of polyimide, the maximum absorption peak of the polymer can be made to redshift from less than or equal to 280 nm to less than or equal to 380 nm, so that a certain absorption and screening action may be laid on the light wave during a subsequent Laser Lift Off process, and the substrate and the liquid crystal may be prevented from being damaged during a Laser Lift Off process of the glass base substrate, thereby guaranteeing the display quality of the flexible display.
Abstract:
A method for manufacturing a display panel, the display panel comprising an array substrate (1) and a color filter substrate which are cell assembled, liquid crystals filled between the array substrate (1) and the color filter substrate, which are adhered to each other by a sealant (2), the method comprising: coating the sealant (2) along peripheries of one side of one substrate among the array substrate (1) and the color filter substrate, the side being opposite to the other substrate; forming a light shielding layer (3) in an area encircled by the sealant (2) on a side of the array substrate (1) away from the color filter substrate; irradiating the array substrate provided with the light shielding layer (3) so as to cure the sealant (2); and removing the light shielding layer (3). The method provided by the embodiments of the present disclosure effectively avoids the phenomenon that liquid crystal molecules in an effective display area (4) are damaged by UV light during cell assembling.
Abstract:
The present invention relates to the field of 3D display technology and provides a polarizer, manufacturing method thereof, and a 3D display device. According to the present invention, a transition layer is provided between an alignment layer and a supporting layer, and there is excellent wettability between the transition layer and the supporting layer as well as the alignment layer. The polarizer comprises a polarizing layer for producing linearly polarized light, a supporting layer located at one side of the polarizing layer, a transition layer arranged on one side of the supporting layer away from the polarizing layer, an alignment layer arranged on one side of the transition layer away from the polarizing layer, and an optical rotation layer arranged on one side of the alignment layer away from the polarizing layer.
Abstract:
The present invention relates to the field of 3D display technology and provides a polarizer, manufacturing method thereof, and a 3D display device. According to the present invention, a transition layer is provided between an alignment layer and a supporting layer, and there is excellent wettability between the transition layer and the supporting layer as well as the alignment layer. The polarizer comprises a polarizing layer for producing linearly polarized light, a supporting layer located at one side of the polarizing layer, a transition layer arranged on one side of the supporting layer away from the polarizing layer, an alignment layer arranged on one side of the transition layer away from the polarizing layer, and an optical rotation layer arranged on one side of the alignment layer away from the polarizing layer.