Abstract:
A substrate structure for a plasma display panel (PDP), a method of manufacturing a PDP substrate structure of the PDP, and a PDP including the PDP substrate are provided. The PDP substrate structure includes a substrate, an electrode on the substrate and including a first layer and a second layer, the second layer including an aluminum (Al) material, the first layer being between the substrate and the second layer and including a conductive material, the first layer having lower specific resistance than that of the second layer; and a light absorbable layer on the substrate. The light absorbable layer is an oxidization product of the conductive material of the first layer.
Abstract:
Embodiments of the present invention provide a paste for forming a PDP electrode, a method of manufacturing a PDP electrode using the paste, and a PDP including the electrode. The paste includes an aluminum solution containing aluminum particles and a surface treatment agent. The aluminum particles have an average particle size of about 5 μm or less. The surface treatment agent is configured to withstand sintering temperatures of about 550° C. or greater, and remains on the surface of the aluminum particles after sintering. The electrode manufactured from the paste has a specific resistance of about 20 μΩ·cm or less, making it suitable for use as an electrode in a PDP having a reliability of 90% or greater.
Abstract:
Embodiments of the present invention provide a paste for forming a PDP electrode, a method of manufacturing a PDP electrode using the paste, and a PDP including the electrode. The paste includes an aluminum solution containing aluminum particles and a surface treatment agent. The aluminum particles have an average particle size of about 5 μm or less. The surface treatment agent is configured to withstand sintering temperatures of about 550° C. or greater, and remains on the surface of the aluminum particles after sintering. The electrode manufactured from the paste has a specific resistance of about 20 μΩ·cm or less, making it suitable for use as an electrode in a PDP having a reliability of 90% or greater.
Abstract:
Provided is a liquid crystal display including: a first substrate and a second substrate facing each other; a pixel electrode disposed on the first substrate; an opposing electrode disposed on the second substrate; a liquid crystal layer in vertical alignment mode interposed between the first substrate and the second substrate and including a plurality of liquid crystal molecules; and a tilt direction determining member determining tilt directions of the liquid crystal molecules when an electric field is generated in the liquid crystal layer, wherein the liquid crystal layer includes a first area and a second area in each of the first area and the second area, the liquid crystal molecules being aligned to have a pretilt without the electric field in the liquid crystal layer, and a pretilt angle of the liquid crystal molecules in the first area is larger a pretilt angle that of the liquid crystal molecules in the second area.
Abstract:
A liquid crystal display includes a thin film transistor, a liquid crystal capacitor, which is electrically connected to the thin film transistor and includes a liquid crystal layer, and a storage capacitor, which is electrically connected to the thin film transistor in parallel to the liquid crystal capacitor, wherein the liquid crystal layer has a positive dielectric anisotropy and is disposed in a twisted nematic mode, and a capacitance ratio of a capacitance of the storage capacitor to a capacitance of the liquid crystal capacitor is approximately 0.4 or more.
Abstract:
A display device is provided with a display panel displaying variable visual images, a transparent protective unit located at a front side of the display panel, an adhesive layer that is formed between the display panel and the transparent protective unit to adhere the transparent protective unit to the display panel, and a fixing member disposed at a rear side of the display panel and surrounding and fixing side surfaces of the display panel and the adhesive layer.
Abstract:
A liquid crystal display includes a first display panel and a second display panel facing each other; a liquid crystal layer disposed between the first display panel and the second display panel and including pre-tilted liquid crystal molecules and a first compound derived from a reactive mesogen; and an alignment layer positioned between the first display panel and the second display panel, wherein the alignment layer includes a polyimide derived from a composition including a dianhydride-based compound, and a compound represented by the following Chemical Formula 1. In the above Chemical Formula 1, R1 is a substituted or non-substituted C1-C8 alkyl group, R2 is a substituted or non-substituted C8-C30 alkyl group, and A1 is a functional group including a substituted or non-substituted aliphatic ring and a substituted or non-substituted aromatic ring.
Abstract:
A liquid crystal display includes a first display panel and a second display panel facing each other; a liquid crystal layer disposed between the first display panel and the second display panel and including pre-tilted liquid crystal molecules and a first compound derived from a reactive mesogen ; and an alignment layer positioned between the first display panel and the second display panel, wherein the alignment layer includes a polyimide derived from a composition including a dianhydride-based compound, and a compound represented by the following Chemical Formula 1. In the above Chemical Formula 1, R1 is a substituted or non-substituted C1-C8 alkyl group, R2 is a substituted or non-substituted C8-C30 alkyl group, and Al is a functional group including a substituted or non-substituted aliphatic ring and a substituted or non-substituted aromatic ring.
Abstract:
An organic light emitting display includes a display unit divided into a plurality of fields (regions), data and scan drivers, a power supply, and a driving voltage calculator. The display unit has a plurality of cathode electrodes corresponding to the respective fields, and is configured to display an image in response to data and scan signals. The data and scan drivers respectively supply the data and scan signals to the display unit. The power supply has a first output terminal for outputting a first power and a plurality of second output terminals for outputting a plurality of second powers to the plurality of cathode electrodes. The driving voltage calculator calculates the voltage of each of the second powers for a respective one of the cathode electrodes based on a magnitude of a respective one of the data signals.
Abstract:
A liquid crystal display includes a thin film transistor, a liquid crystal capacitor, which is electrically connected to the thin film transistor and includes a liquid crystal layer, and a storage capacitor, which is electrically connected to the thin film transistor in parallel to the liquid crystal capacitor, wherein the liquid crystal layer has a positive dielectric anisotropy and is disposed in a twisted nematic mode, and a capacitance ratio of a capacitance of the storage capacitor to a capacitance of the liquid crystal capacitor is approximately 0.4 or more.