Abstract:
The present disclosure relates to a touch panel, the touch panel includes a substrate, a strengthening layer and a touch-control module. The substrate includes a first surface and a second surface opposite to the first surface. The strengthening layer is located on the first surface. The touch-control module is located on the second surface. The strengthening layer is a functional coating layer directly coated on the first surface; a strengthening layer surface, spaced from the substrate, is directly exposed to an application environment; and the strengthening layer surface, spaced from the substrate, is exposed to be in directly contact with touch objects. A human-computer interaction device using the above-described touch panel is also provided.
Abstract:
A touch panel includes a first sub-panel and a second sub-panel. One of the first sub-panel and the second sub-panel comprises a first carbon nanotube (CNT) film. Each of the first sub-panel and the second sub-panel defines a touch sensing region and a first side region connecting a first side of the touch sensing region. The first side region of the first sub-panel covers the first side region of the second sub-panel such that the touch sensing region of the first sub-panel and the touch sensing region of the second sub-panel are joined via the first side region of the first sub-panel.
Abstract:
A method for making a touch panel is provided. A number of first transparent conductive layers are formed on an insulative substrate. Each of the first transparent conductive layers is resistance anisotropy. A number of first electrodes and a first conductive trace are formed corresponding to each first transparent conductive layer. A number of adhesive layers are formed on the insulative substrate with each to cover one of the first transparent conductive layers. A carbon nanotube layer is formed on the number of adhesive layers. The carbon nanotube layer is patterned to obtain a number of second transparent conductive layers spaced from each other and with each corresponding to one first transparent conductive layer. A number of second electrode and a second conductive trace are formed corresponding to each second transparent conductive layer.
Abstract:
A touch-sensitive display device includes a protective module, a reflective display module, and a light guide touch module located between the protective module and the reflective display module. The light guide touch module includes a light guide module and a touch module attached on the light guide module. The light guide module includes a light guide plate. The touch module includes at least one carbon nanotube layer. The at least one carbon nanotube layer is directly located on a surface of the light guide plate.
Abstract:
An electronic device includes a base and a keyboard. The base includes a working surface and defines a receiving space. The keyboard includes a top side and a bottom side opposite to the top side. A plurality of key is mounted on the top side. A function module is mounted on the bottom side. The keyboard can be alternatively mounted in the receiving space in a first direction or in a second direction. The plurality of keys is accessible from the working surface when the keyboard is mounted in the receiving space in a first direction, and the function module is accessible from the working space when the keyboard is mounted in the receiving space in a second direction.
Abstract:
A touch panel includes a first sub-panel and a second sub-panel. Each of the first sub-panel and the second sub-panel comprises a carbon nanotube (CNT) film and defines a touch sensing region and a first side region connecting a first side of the touch sensing region. The first side region is bent towards the touch sensing region and an intersection angle is formed between the side region and the touch sensing region. The first side region of the first sub-panel is attached to the first side region of the second sub-panel such that the touch sensing region of the first sub-panel and the touch sensing region of the second sub-panel are located in a same plane and joined together.
Abstract:
A method for making a liquid crystal display module is provided. In the method, a first polarizing layer is provided. A free-standing transparent conductive layer is disposed on a surface of the first polarizing layer. At least two driving-sensing electrodes are disposed on a surface of the transparent conductive layer and spaced from the first polarizing layer. The at least two driving-sensing electrodes are spaced from each other and electrically connected with the transparent conductive layer. The first polarizing layer, the at least two driving-sensing electrodes, and the transparent conductive layer cooperatively form a polarizer. The polarizer is fixed to a liquid crystal module to form the liquid crystal display module.
Abstract:
A method for making a touch panel is provided. A number of first transparent conductive layers are formed on an insulative substrate. Each of the first transparent conductive layers is resistance anisotropy. An adhesive layer is formed on the insulative substrate to cover only part of the first transparent conductive layers. A carbon nanotube layer is formed on the adhesive layer. The carbon nanotube layer is patterned to obtain a number of second transparent conductive layers spaced from each other and with each corresponding to one first transparent conductive layer. A number of first electrodes, a first conductive trace, a number of second electrodes, and a second conductive trace are formed contemporaneously.
Abstract:
A touch panel includes an insulative substrate, a first adhesive layer, a first transparent conductive layer, a second adhesive layer, a second transparent conductive layer, a number of first electrodes, a first conductive trace, a number of second electrode, and a second conductive trace. The insulative substrate, the first adhesive layer, the first transparent conductive layer, the second adhesive layer, and the second transparent conductive layer are stacked with each other in that order. The first transparent conductive layer and the second transparent conductive layer are electrically insulated from each other only by the second adhesive layer. A method for making the touch panel is also related.
Abstract:
A method for making a touch panel is provided. A number of first transparent conductive layers are formed on an insulative substrate. Each of the first transparent conductive layers is resistance anisotropy. A number of first electrodes and a first conductive trace are formed corresponding to each first transparent conductive layer. An adhesive layer is formed on the insulative substrate to cover the first transparent conductive layers. A carbon nanotube layer is formed on the adhesive layer. The carbon nanotube layer is patterned to obtain a number of second transparent conductive layers spaced from each other and with each corresponding to one first transparent conductive layer. A number of second electrode and a second conductive trace are formed corresponding to each second transparent conductive layer.