Abstract:
An electronic paper display device includes an electronic paper display panel, and a functional layer. The electronic paper display panel includes a common electrode layer and a display surface. The functional layer is located on the display surface and includes a carbon nanotube touching functional layer. A distance between the common electrode layer and the carbon nanotube touching functional layer is above 100 microns and equal to or less than 2 millimeters.
Abstract:
A method for making a patterned conductive element includes following steps. A substrate is provided. A patterned adhesive layer is applied on a surface of the substrate. A carbon nanotube layer is placed on a surface of the patterned adhesive layer. The patterned adhesive layer is solidified to obtain a fixed part of the carbon nanotube layer and a non-fixed part of carbon nanotube layer. The non-fixed part of carbon nanotube layer is removed.
Abstract:
A touch panel includes a first electrode plate and a second electrode plate connected to the first electrode plated. The first electrode plate includes a first substrate, and a first conductive layer disposed on the first substrate. The second electrode includes a second substrate, and a second conductive layer disposed on the second substrate. The first or the second conductive layer includes at least one carbon nanotube composite layer.
Abstract:
A liquid crystal display screen includes an upper board, a lower board opposite to the upper board, and a liquid crystal layer located between the upper board and the lower board. The upper board includes a touch panel. The touch panel includes an amount of transparent electrodes. At least one of the transparent electrodes includes a transparent carbon nanotube structure. The lower board includes a thin film transistor panel. The thin film transistor panel includes an amount of thin film transistors. Each of the thin film transistors includes a semiconducting layer. The semiconducting layer includes a semiconducting carbon nanotube structure.
Abstract:
An exemplary light emitting diode (LED) includes an LED chip and a transparent sealant covering the LED chip. The sealant contains transparent filling particles and phosphor particles, wherein the filling particles are adjacent each other. Intervals are defined between the filling particles, and the phosphor particles are located in the intervals.
Abstract:
An organic light emitting diode is provided. The organic light emitting diode includes a substrate, an electrode structure formed on said substrate, an organic layer formed on said electrode structure and a transparent electrode structure having at least one transparent dielectric layer with a relatively higher refraction index and deposited on said organic layer by thermal evaporation.
Abstract:
A TFT array substrate and a process for manufacturing the same are provided. A plurality of TFTs in array are formed on a substrate. A gate insulating layer and a protection layer are sequentially formed to cover a pixel region of the substrate. A plurality of openings each of which has an undercut profile are formed in the gate insulating layer and the protection layer. Then, a transparent conductive layer is formed over the substrate. One of the two parts separated is located in a bottom of the opening and the other is on the protection layer, such that two parts of the transparent conductive layer disconnect and no junction there between occurs. The part of the transparent conductive layer in the bottom of the opening is referred to as a transparent pixel electrode. The part of the transparent conductive layer on the protection layer is connected to a common metal line to form a transparent common electrode. The transparent pixel electrode disconnects to but overlaps the protection layer.
Abstract:
A high performance thin film transistor structure which includes a pixel electrode layer formed after a passivation step such that electrical connections can be made to a source electrode and to overlap a channel length of the transistor. As a result, the effective channel length can be reduced and the occurrence of short-circuiting is also minimized in densely packed devices. The pixel electrode can be formed of a non-transparent metallic material to serve as a light shield such that the thin film transistor can be most suitably used in a liquid crystal display device.
Abstract:
A touch panel comprises: a first conductive plate including a first substrate having a surface, a first conductive layer disposed on the surface of the first substrate and exhibiting an anisotropic resistivity, and at least one conductive first connecting line, the surface of the first substrate having a peripheral edge, a sensing region covered by the first conductive layer, and a marginal region extending from the sensing region to the peripheral edge, the first connecting line being disposed on the marginal region; and a second conductive plate including a second substrate and a second conductive layer disposed on the second substrate, facing the first conductive layer, and exhibiting anisotropic resistivity. An electronic device including the touch panel is also disclosed.
Abstract:
A method for making a liquid crystal display screen is provided. A touch panel including at least one carbon nanotube structure layer is prepared. A first polarizer is applied on a surface of the touch panel. A thin film transistor panel including a number of thin film transistors is prepared. A liquid crystal layer is placed between the first polarizer and the thin film transistors.