Abstract:
A structure and a fabrication method of a flat panel display comprising address lines with mending layers. A first address line and a first mending layer are formed on a substrate. The first mending layer and the first address line are electrically insulated with each other, and the first mending layer is partitioned into different segments by the first address line. A first insulating layer is formed over the substrate to cover at least the first mending layer and the first address line. A second address line is formed on the first insulating layer over the first mending layer and crossing the first address line. A second insulating layer is formed over the substrate to cover at least the second address line. A second mending layer is formed on the second insulating layer over the second address line and crossing the first address line.
Abstract:
A high resolution matrix addressed flat panel display having single field emission microtip redundancy is formed. A dielectric base substrate is provided. Parallel, spaced conductors acting as cathode columns for the display are formed upon the substrate. A layer of insulation is located over the cathode columns. Parallel, spaced conductors acting as gate lines for the display is formed over the layer of insulation at a right angle to the cathode columns. The intersections of the cathode columns and gate lines are the pixels of the display. A plurality of openings at the pixels extend through the insulating layer and gate lines. At each of the pixels are a plurality of field emission microtips connected to and extending up from the cathode conductor columns and into the plurality of openings. There is a circular resistive layer surrounding each of the field emission microtips to obtain emission uniformity by sustaining the cathode to gate voltage.
Abstract:
An organic light emitting device (OLED) is formed by assembling a first substrate and a second substrate. The second substrate includes several sub-pixels. The first substrate includes several transistors electrically connected to each other and, for each subpixel, a first connecting electrode electrically connected to one of the transistors. Each subpixel includes a light-emitting region and a non light-emitting region. A second connecting electrode is formed in the non light-emitting region and electrically connected to the respective first connecting electrode.
Abstract:
An organic light emitting device is formed by assembling a first substrate and a second substrate. The second substrate includes several sub-pixels. The first substrate includes several transistors and, for each subpixel, a first connecting electrode. The transistors are electrically connected to each other, and the first connecting electrode is electrically connected to the respective one of the transistors. Each sub-pixel includes a light-emitting region and a non light-emitting region. A second connecting electrode is formed within the non light-emitting region and projects toward the first substrate. The first and second substrates are electrically connected via the connection of the first and second connecting electrodes.
Abstract:
A semiconductor device, comprising a substrate, a semiconductive layer and a gate electrode is provided. The semiconductive layer having a crystallization promoting material is formed over the substrate. The semiconductive layer has a channel region, a first doped region and a second doped region. The first doped region has a donor and an acceptor, and the second doped region has a dopant which is selected from one of the donor and the acceptor. The second doped region is disposed between the first doped region and the channel region. The gate electrode is insulated from the channel region.
Abstract:
A pixel circuitry of a display device and a display method thereof are provided herein. The pixel circuitry includes a scan switch, a storage element, and a sampling circuitry. The scan switch has a first terminal coupled to a data line and configured to be asserted according to a scan signal. The storage element is coupled to a second terminal of the scan switch and configured to store a pixel voltage from the data line. The sampling circuitry is configured to sample the stored pixel voltage of the storage element and to obtain a reference voltage for the display device according to the sampled signal. By sampling the stored pixel voltage of the storage element, whether the pixel voltages with different polarities are symmetry can be detected for avoiding flickers.
Abstract:
A display device and its method of manufacture. The display device is formed to include a substrate having an upper surface, a recess region having a bottom surface and sidewalls, a light-emitting element and a switch element. The light-emitting element includes a first electrode disposed on the recess region, a light-emitting layer disposed on the first electrode, and a second electrode disposed on the light-emitting layer. The switch element is disposed on the substrate and electrically connected to the light-emitting element. The bottom surface of the recess region is lower than the bottom surface of the active layer.
Abstract:
A driver integrated circuit (IC) for driving a panel having pixels controlled by gate lines and data lines is disclosed, including a power circuit for generating a high level voltage and a low level voltage, a timing controller, a source driving circuit controlled by the timing controller to drive the data lines, a gate driving circuit controlled by the timing controller to selectively enable one of the gate lines for a line period. The gate driving circuit first asserts the selected gate line with the high level voltage in order to activate the corresponding pixels for receiving the driving signals from the corresponding data lines, and the gate driving circuit subsequently asserts the selected gate line with the low level voltage such that the corresponding pixels are still activated for receiving the driving signals. An LCD device utilizing the driver IC is also provided.
Abstract:
A display apparatus has several light emitting elements and several lenses. The light emitting elements generate light of a first and second part of a frame respectively during a first and second period. The lenses pass through by the light from the light emitting elements, and operate to form images of the first and second part of the frame at a first and second location during the first and second period, respectively.
Abstract:
A display device and a method of manufacturing the same are provided. The display device comprises a substrate, a light-emitting element and a switch element. The substrate has a substrate upper surface and a recess region lower than the substrate upper surface. The light-emitting element comprises a first electrode, a light-emitting layer and a second electrode. The first electrode is disposed on the recess region. The light-emitting layer is disposed on the first electrode. The second electrode is disposed on the light-emitting layer. The switch element is disposed on the substrate upper surface and electrically connected to the light-emitting element.