Abstract:
An exemplary organic light emitting display (200) includes a substrate (20), a first electrode layer (22), an organic layer (23), and a second electrode layer (21). The first electrode layer is disposed at the substrate. The organic layer is disposed at the first electrode layer. The second electrode layer includes a photic layer (210) disposed on the organic layer, an absorbing layer (211) disposed on the photic layer, and a metal layer (212) disposed on the absorbing layer. The absorbing layer is configured to absorb light beams passing through the photic layer. A method for manufacturing the organic light emitting display is also provided.
Abstract:
A method of manufacturing a floating gate is provided. The method includes the steps of forming a tunneling layer on a substrate, and forming a film layer containing a semiconductor component on the tunneling layer. The film layer consists of a semiconductor film or nano-dots.
Abstract:
A method of manufacturing a floating gate is provided. The method includes the steps of forming a tunneling layer on a substrate, and forming a film layer containing a semiconductor component on the tunneling layer. The film layer consists of a semiconductor film or nano-dots.
Abstract:
A method of manufacturing a floating gate is provided. The method includes the steps of forming a tunneling layer on a substrate, and forming a film layer containing a semiconductor component on the tunneling layer. The film layer consists of a semiconductor film or nano-dots.
Abstract:
An exemplary thin film transistor array substrate (200) includes a substrate (210) and a gate electrode (220) formed on the substrate. The gate electrode includes an adhesive layer (226) formed on the substrate, a conductive layer (224) formed on the adhesive layer and a barrier layer (222) formed on the conductive layer, the adhesive layer and the barrier layer both have sandwich structures. A central core of the adhesive layer, the conductive layer, and a central core of the barrier layer are made of a same material.
Abstract:
An exemplary liquid crystal panel includes a first substrate, a second substrate opposite to the first substrate, a light sensor disposed at an inner side of the first substrate, and a black matrix disposed at an inner side of the second substrate. The light sensor includes a light-sensing unit, and the black matrix includes a semi-transparent film corresponding to the light-sensing unit. A liquid crystal display device employing the liquid crystal panel is also provided.
Abstract:
A bio-sample image pickup device includes a light source module, a carrier, an image pickup unit, a first filter set, and a second filter set. The carrier carries the light source module and the bio-sample, and moves between a first position and a second position. The first filter set between the light source module and the image pickup unit for filtering the light emitted by the light source module, and the image pickup unit picks up the image of the bio-sample through the first filter set in the first position. The second filter set in the second position filters the light emitted by the light source module for allowing an operator to see the bio-sample in the second position through the second filter.
Abstract:
An exemplary frame assembly (20) includes a first frame (21), a second frame (22), a third frame (23) accommodating at least part of the first frame and at least part of the second frame. The first, second and third frames cooperatively define an accommodating space of the frame assembly, and the positions of the first frame and the second frame relative to each other are adjustable such that the accommodating space has a desired size.
Abstract:
An exemplary TFT substrate includes a substrate, signal lines, a common electrode, and a pixel electrode. The signal lines are arranged on the substrate along two perpendicular directions. One of each two signal lines perpendicular to each other includes a plurality of segments. Every two adjacent segments are arranged on two opposite sides of the other signal line of the two signal lines. The TFT substrate further includes a connection line. The connection line interconnects the two adjacent segments. The common electrode is arranged in a same layer as the connection line, and overlaps the segmented signal line along a direction perpendicular to the substrate.
Abstract:
A circuitry testing method, comprising: providing a circuit board needing testing; applying a potential (160) to the circuit board needing testing so that the circuit board works and operating elements of the circuit board needing testing emit infrared rays; testing an intensity of radiation of the infrared rays using an infrared sensor (110); converting the radiation intensity to RGB (red, green, blue) data signals in order to form a diagnostic infrared image, using a processor (130); providing a standard infrared image; comparing the diagnostic infrared image with the standard infrared image; and determining whether the circuit board is defective according to the comparison.