Abstract:
In a plasma display device, a single frame is divided into a plurality of subfields each having a luminance weight value, and a plurality of video signals, each corresponding to the plurality of discharge cells, are converted into a plurality of subfield data indicating whether or not light emission is performed in each of the plurality of subfields. The converted subfield data is changed based on relative light emission rates of the discharge cells so that light emission of the discharge cells is in correspondence.
Abstract:
The provided is a plasma display panel (PDP) for inducing initial discharge as short-gap discharge to prevent an increase of a discharge firing voltage, suppressing the short-gap discharge after the initial discharge, and inducing full discharge as long-gap discharge to improve luminous efficiency. The PDP includes a first substrate, a second substrate, a barrier rib, a phosphor layer, address electrodes, first and second electrodes, a dielectric layer, and a protective layer. The first and second electrodes extend in the second direction, and form a first discharge gap therebetween. The dielectric layer is formed on the second substrate while covering the first and second electrodes. The protective layer covers the dielectric layer. The protective layer includes a first secondary electron emission portion and a second secondary electron emission portion. The first secondary electron emission portion is formed to correspond to an outer remote part of the first and second electrodes and has a first secondary electron emission coefficient. The second secondary electron emission portion is formed to correspond to an outer close part of one of the first and second electrodes, and has a second secondary electron emission that is smaller than the first secondary electron emission coefficient.
Abstract:
A plasma display panel has red R, green G, and blue B subpixels arranged in a triangular configuration. The plasma display panel includes a first substrate and a second substrate separated from each other by a predetermined distance. Barrier ribs form a discharge space between the first substrate and the second substrate so that subpixels forming a pixel are arranged in a triangular configuration. Address electrodes may be formed on the first substrate and display electrodes may be formed on a surface of the second substrate to cross the address electrodes. A phosphor layer may be formed in the discharge space. An aspect ratio of the pixel is a horizontal pitch of the pixel divided by a vertical pitch of the pixel, and the aspect ratio of the pixel is in a range of about 0.8 to about 1.0.
Abstract:
A Plasma Display Panel (PDP) having improved transformation efficiency includes: a first substrate, a second substrate facing the first substrate, discharge cells partitioned between the first substrate and the second substrate, first electrodes extending in a first direction between the first substrate and the second substrate, second electrodes extending in a second direction crossing the first direction between the first substrate and the second substrate and protruding in a direction away from the second substrate, third electrodes extending in the second direction between the first substrate and the second substrate and protruding in a direction away from the second substrate, and phosphor layers arranged within the discharge cells, the discharge cells including a first portion having the second and third electrodes arranged therein and a second portion devoid of second and third electrodes therein. A phosphor layer formed within the second portion has a height, measured in a direction perpendicular to the first substrate, greater than a distance between the first substrate and the second and third electrodes.
Abstract:
A Plasma Display Panel (PDP) capable of reducing the number of address electrodes for each pixel, includes: a first substrate; a second substrate facing the first substrate; a plurality of discharge cells partitioned between the first and second substrates; address electrodes formed along a first direction between the first and second substrates; and display electrodes formed along a second direction crossing the first direction and separated from the address electrodes between the first and second substrates. At least two discharge cells among the plurality of discharge cells included in a respective pixel correspond to and are driven by the same address electrode, and the number of pixels that are arranged in a row along the second direction and enable a resolution of Rh×Rv is at least Rh/1.25, Rv being the number of pixels arranged along the first direction and Rh being the number of pixels arranged along the second direction.
Abstract:
A plasma display panel may employ an effective picture area including entire display areas exclusively, so that the color balance is obtained even in edge portions of the effective picture area. In addition, if the non-display area is provided within the effective picture area, an external light absorber is provided in the non-display area, so that the reflection brightness of the external light incident into the non-display area is reduced, thereby improving the bright room contrast of the plasma display panel.
Abstract:
A Plasma Display Panel (PDP) includes a dielectric layer having a plurality of dielectric-layer perforated holes arranged in a matrix; and upper and lower electrode layers having electrode-layer perforated holes connected to the dielectric-layer perforated holes and arranged on both surfaces of the dielectric layer; the upper electrode layer includes a plurality of first electrodes extending in a first direction, the plurality of first electrodes surrounding a group of electrode-layer perforated holes arranged in the first direction; and the lower electrode layer includes a plurality of second electrodes extending in a second direction different from the first direction, the plurality of second electrodes surrounding a group of electrode-layer perforated holes arranged in the second direction. Individual electrodes surrounding the electrode-layer perforated holes protrude from the dielectric layer toward the centers of the perforated holes such that a facing discharge is generated between the upper and lower individual electrodes, resulting in a PDP having stable characteristics and high efficiency and having a simple structure.
Abstract:
A display apparatus may include a first substrate defined by a pixel region and a transmitting region adjacent to the pixel region, the pixel region emitting light in a first direction and the transmitting region transmitting external light; a second substrate that faces the first substrate and seals pixels defined on the first substrate; an optical filter arranged on a first side of the display apparatus through which light is emitted, the optical filter being configured to transmit circularly polarized light that rotates in a predetermined direction; and an optical reflectance conversion device arranged on a second side of the display apparatus, opposite the first side, the optical reflectance conversion device being configured to change a reflectance of the external light according to modes of operation of the display apparatus.
Abstract:
A plasma display device embodying a touch panel function utilizing infrared rays that are generated when displaying an image and that are emitted in a uniform distribution manner in a display area. The plasma display device includes: a plasma display panel (PDP) for displaying an image; a chassis base attached to and supporting the PDP; an infrared ray sensor at a front surface or a rear surface of the PDP for detecting a change in amount of infrared rays emitted from the PDP; and a controller for receiving a detection signal and determining a position of the change in amount of infrared rays, the position of the change in amount of infrared rays defining a touch position.
Abstract:
A Plasma Display Panel (PDP) includes a dielectric layer having a plurality of dielectric-layer perforated holes arranged in a matrix; and upper and lower electrode layers having electrode-layer perforated holes connected to the dielectric-layer perforated holes and arranged on both surfaces of the dielectric layer; the upper electrode layer includes a plurality of first electrodes extending in a first direction, the plurality of first electrodes surrounding a group of electrode-layer perforated holes arranged in the first direction; and the lower electrode layer includes a plurality of second electrodes extending in a second direction different from the first direction, the plurality of second electrodes surrounding a group of electrode-layer perforated holes arranged in the second direction. Individual electrodes surrounding the electrode-layer perforated holes protrude from the dielectric layer toward the centers of the perforated holes such that a facing discharge is generated between the upper and lower individual electrodes, resulting in a PDP having stable characteristics and high efficiency and having a simple structure.