Abstract:
A substrate and a display device are provided. The substrate includes a base and a signal line arranged on the base. The signal line includes at least two main film layers and a first additional film layer arranged between every two adjacent main film layers, wherein an electrical conductivity of the main film layer is larger than that of the first additional film layer; and a crystallinity of the main film layer is lower than that of the first additional film layer.
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, 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 are a driving backplane, a preparation method for the same, and a display device. The driving backplane includes a driving structure layer arranged on a base and a supporting structure arranged on a side of the driving structure layer away from the base. The driving structure layer includes a first conductive layer and a second conductive layer which are stacked. There is no overlapping region between an orthographic projection of the supporting structure on the base and an orthographic projection of at least one of the first conductive layer and the second conductive layer on the base.
Abstract:
A touch panel, a manufacturing method thereof, and a display device are provided, and relates to the field of display technology. The touch panel includes a display area and a non-display area. The touch panel further includes: a base substrate; a metal bezel disposed above the base substrate and located in the non-display area; a transparent protective layer disposed above the metal bezel; and a touch function layer disposed above the transparent protective layer; wherein a side where the base substrate is located is a display side of the touch panel.
Abstract:
Embodiments of the present disclosure relate to an electrically conductive particle and a manufacturing method thereof as well as an electrically conductive adhesive comprising the electrically conductive particle and a manufacturing method thereof. The electrically conductive particle comprises: a core microsphere; an electrically conductive macromolecular layer encapsulating the core microsphere; and a 3D graphene layer and a metal layer encapsulating the electrically conductive macromolecular layer.
Abstract:
Embodiments of the present disclosure provide an electromagnetic capacitive touch screen. According to one embodiment, the electromagnetic capacitive touch screen comprises: a display module, a capacitive module that comprises a plurality of capacitive induction units, and an electromagnetic module that comprises a plurality of electromagnetic induction units comprising a plurality of electromagnetic induction lines, wherein the capacitive module and the electromagnetic module are located on the same layer.
Abstract:
The present invention provides a touch substrate comprising a plurality of capacitive touch driving electrodes extending in a row direction, a plurality of capacitive touch sensing electrodes extending in a column direction, a plurality of first pressure sensitive electrodes extending in the row direction and a plurality of second pressure sensitive electrodes extending in the column direction, the capacitive touch driving electrode and the capacitive touch sensing electrode are insulated from each other, the first pressure sensitive electrode is insulated from the capacitive touch sensing electrode and the capacitive touch driving electrode, the second pressure sensitive electrode is insulated from the capacitive touch sensing electrode and the capacitive touch driving electrode, when the touch substrate is touched, a voltage corresponding to a pressure at a touch position is generated between the first pressure sensitive electrode and the second pressure sensitive electrode corresponding to the touch position.
Abstract:
The present invention provides a touch substrate, a manufacturing method thereof, and a display device. In the touch substrate of the present invention, first leads of a first-layer structure are connected with first patterns in a second-layer structure via first via holes, second leads of the first-layer structure are connected with second patterns in the second-layer structure via second via holes, and the first patterns and the second patterns produce mutual capacitance. Each first pattern comprises a plurality of branches radiating from the center to the circumference, each second pattern surrounds one first pattern in a mutually separated manner, and when the touch substrate is used for flexible display, the second patterns can cover the whole bent surface, so that when a user touches any place of the touch substrate, the touch substrate can quickly respond and blind spots cannot be formed.
Abstract:
The present disclosure provides a display substrate, including: a base substrate including a display area and a bonding area; a first metal conductive layer pattern on the base substrate; a first passivation layer on the first metal conductive layer pattern; a second metal conductive layer pattern on the first passivation layer; a second passivation layer on the second metal conductive layer pattern; a first blackening layer pattern is disposed between the first metal conductive layer pattern and the first passivation layer, an orthographic projection of which on the base substrate is located in that of the first metal conductive layer pattern on the base substrate; and/or a second blackening layer pattern is disposed between the second metal conductive layer pattern and the second passivation layer, an orthographic projection of which on the base substrate is located in that of the second metal conductive layer pattern on the base substrate.