Abstract:
The present disclosure provides a touch substrate. A plurality of first electrodes (11) spaced apart by a first predetermined distance along a first direction is formed over a substrate (5), with adjacent first electrodes (11) mutually connected via a connection part (111). A plurality of second electrodes (12) spaced apart by a second predetermined distance along a second direction is formed over the substrate (5), with adjacent second electrodes (12) mutually connected via a bridging element (3). An insulating layer (2) is formed between the bridging element (3) and the connection part (111). The insulating layer (2) is formed by oxidizing a metal element sputtered from a target, which is used to form one or more of the connection part (111) and the bridging element (3), in an ambient with oxygen so as to form a metal oxide layer over one of the connection part (111) and the bridging element (3).
Abstract:
A touch substrate, a method for manufacturing the same and a touch control device are provided. The touch substrate includes a touch region, and a wiring region arranged adjacent to the touch region and covered with a protection structure. The protection structure includes at least two organic layers and at least two inorganic layers arranged alternately one on another.
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:
A method for manufacturing a flexible touch sensor, a flexible touch sensor and a display screen are disclosed. The method comprises forming a flexible film on a substrate; forming a first transparent conductive layer on the flexible film; and patterning the first transparent conductive layer to form a plurality of first electrodes and a plurality of second electrodes intersecting therewith within a display area of the flexible touch sensor. The first transparent conductive layer is composed of multiple layers of first transparent conductive films which are formed by multiple depositions.
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:
A touch screen panel and a manufacturing method thereof and a display device are provided. The manufacturing method for a touch screen includes: forming an auxiliary film layer on a first substrate, wherein the auxiliary film layer includes a catalyst capable of accelerating a formation reaction rate of graphene; patterning the auxiliary film layer to obtain an auxiliary pattern layer having a first pattern; forming a graphene pattern layer on the auxiliary pattern layer, the graphene pattern layer having a second pattern; forming a base film on the graphene pattern layer; and removing the first substrate and the auxiliary pattern layer.
Abstract:
The present invention provides a touch substrate, comprising a plurality of first electrodes extending along a first direction and a plurality of second electrodes extending along a second direction intersecting with the first direction, wherein the first electrode comprises a plurality of first electrode blocks, the second electrode comprises a plurality of second electrode blocks, adjacent two first electrode blocks are connected via at least one electrically conductive connecting piece, adjacent two second electrode blocks are formed integrally; a connecting piece comprises two contact portions and a connecting portion, the insulating layer at least covers each connecting piece and exceeds border of the connecting piece, the first electrode block is electrically connected to the contact portion via a via hole passing through the insulating layer, and a part of the contact portion is not exposed by the via hole.
Abstract:
A touch panel and a touch display device are disclosed. The touch panel includes a base substrate and a touch electrode layer and a transparent thin film photovoltaic cell disposed on the base substrate. The touch electrode layer and the transparent thin film photovoltaic cell are superimposed to each other and disposed on the same side of the base substrate, and a transparent insulating layer is disposed between the touch electrode layer and the transparent thin film photovoltaic cell; or the touch electrode layer and the transparent thin film photovoltaic cell are respectively disposed on either side of the base substrate; and the transparent thin film photovoltaic cell includes an n-doped graphene layer and a p-doped graphene layer. The transparent thin film photovoltaic cell disposed in the touch panel can charge an electronic product so that the service time of the touch panel can be prolonged.
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 invention provides a method for bonding a first panel and a second panel, the first panel and the second panel after bonded forming a display device or a portion of a display device, the surface area of the first panel being larger than the surface area of the second panel, therein, the method includes the following steps: a step of providing removable protecting strip on the periphery of the first panel, making the shape of an area surrounded by the protecting strip correspond to the shape of the second panel; a step of providing colourless transparent liquid glue in the area surrounded by the protecting strip; a step of bonding the first panel and the second panel; a step of curing the colourless transparent liquid glue; and a step of removing the protecting strip. The invention further provides a display device obtained by the above method. The display device or a portion of the display device obtained by the method provided by the invention does not appear the defects such as glue overflow etc.