Abstract:
The present disclosure relates to a touch screen, a manufacturing method thereof and a display device. The touch screen comprises: a glass substrate, a touch functional layer on the glass substrate, a white ink frame on the touch functional layer, and a black ink layer partially covering the white ink frame. The black ink layer has an extension portion extending away from the white ink frame along the touch functional layer. The extension portion has a via hole for electrically connecting to the touch functional layer. In this case, by adding a black ink layer on the white ink frame and fabricating a via hole structure in the extension portion of the black ink layer, an electrical connection with the touch functional layer is achieved.
Abstract:
The present invention provides a touch glove and smart wearable system, wherein a contact area, at least one touch area, a control module and a signal transmission module are disposed on the glove body; when the touch area is touched by the contact area, a control signal is generated and transmitted to a corresponding smart device, controlling it to perform a corresponding operation. Thus, control over the smart device may be achieved by only making one part of the touch glove touch another part without directly contacting the smart device, which is especially convenient when the smart device is inconvenient to be directly contacted; meanwhile operations over a plurality of smart devices may be integrated into the touch glove, control over each smart device may be achieved by only moving fingers instead of moving the smart device and the arms, and even blind operation may be achieved without using eyes.
Abstract:
The present disclosure provides a touch panel and a display device. The touch panel includes a conductive layer which includes first electrode layers parallel arranged in columns in a Y-axis direction and second electrode layers parallel arranged in rows in an X-axis direction. Each first electrode layer includes first pattern electrodes sequentially connected, and each second electrode layer includes second pattern electrodes sequentially connected. Each first pattern electrode is of a hexagonal shape. The second pattern electrodes are arranged at a region between two adjacent columns of the first electrode layers. A projection of a connection end between two adjacent second pattern electrodes in an identical row onto a plane parallel to the conductive layer partially overlaps a projection of a connection end between two adjacent first pattern electrodes in an identical column which are arranged adjacent to the two adjacent second pattern electrodes in an identical row.
Abstract:
The present disclosure provides a touch panel, its manufacturing method and a touch display panel. A bridging point member of a bridging line, through which sensing electrodes in the touch panel are electrically connected to each other, is provided with at least one via-hole, so as to provide the bridging point member with a hollowed-out pattern.
Abstract:
Provided is a display panel. The display panel includes: a substrate, comprising a first display region and a second display region, wherein the first display region at least partially surrounds the second display region; a plurality of transparent conductive wires, disposed in the first display region and the second display region; wherein the first pixel circuit and the first light-emitting element are disposed in the first display region; a plurality of second pixels, the second pixel comprising a second pixel circuit and a second light-emitting element, wherein the second pixel circuit is disposed in the first display region, the second light-emitting element is disposed in the second display region.
Abstract:
A display panel includes a display area (110) and a non-display area (120), wherein the non-display area (120) includes a first non-display area; a signal line layer (200) is arranged on a side of a base substrate (100); a touch layer (300) is arranged on a side of the signal line layer (200) away from the base substrate (100), and includes a plurality of touch lines (310), wherein, in at least part of the touch lines (310) in the first non-display area, a first touch line (311) and a second touch line (312) belonging to the same touch line (310) respectively have a first center line O1 and a second center line O2, and in a direction perpendicular to the extension of the touch line (310), the first center line O1 and the second center line O2 are not aligned.
Abstract:
A display substrate includes a pixel defining layer, a plurality of light emitting devices, a first isolation portion, and a light adjustment layer. The pixel defining layer has a plurality of openings. A portion of a light emitting device is located in an opening. The light emitting device includes a first light-emitting layer and a cathode that are disposed sequentially. The first isolation portion is disposed on the pixel defining layer and located between two adjacent openings, and the first isolation portion separates first light-emitting layers and cathodes of light emitting devices located in the two adjacent openings. The light adjusting layer covers the pixel defining layer, the plurality of light emitting devices, and the first isolation portion. A refractive index of the light adjustment layer is different from that of the first isolation portion.
Abstract:
Disclosed is a method for manufacturing a display panel. The method includes: providing a display back plate, wherein the display back plate is provided with a light emitting side; attaching a protective film on the light emitting side of the display back plate, wherein the protective film comprises a transparent adhesive layer disposed on the display back plate and a heavy release film disposed on a side, distal from the display back plate, of the transparent adhesive layer; treating the transparent adhesive layer; and removing the heavy release film, and attaching a functional layer on a side, distal from the display back plate, of the transparent adhesive layer.
Abstract:
A flexible touch screen and a manufacturing method which comprises forming patterns of a first and second touch electrode and a first and second connection line on a flexible substrate. The second touch electrode and the first touch electrode forming a capacitive touch structure. The method further comprises forming a pattern of a first and second wiring of a flexible circuit board located on the flexible substrate. The first touch electrode being electrically connected to the first wiring of the flexible circuit board via the first connection line, and the second touch electrode being electrically connected to the second wiring of the flexible circuit board via the second connection line.
Abstract:
The present application provides a touch module and a touch screen. The touch module includes a first metal grid layer and a second metal grid layer. First touch electrodes are disposed in the first metal grid layer and arranged along a first direction, and each of the first touch electrodes extends along a second direction which intersects the first direction. Second touch electrodes are disposed in the second metal grid layer and arranged along the second direction, and each of the second touch electrodes extends along the first direction. The touch module further includes a first dummy electrode and a second dummy electrode, where the first dummy electrode is coupled to a part of the second touch electrode in parallel and the second dummy electrode is coupled to a part of the first touch electrode in parallel.