Abstract:
A Plasma Display Panel (PDP) having an electrode structure capable of implementing a high-density and high-luminance display includes: a first substrate and a second substrate facing each other and adapted to define a space partitioned into a plurality of discharge cells; address electrodes arranged between the first substrate and the second substrate to extend parallel to each other; phosphor layers arranged in the plurality of discharge cells; and first and second electrodes arranged to extend in a direction intersecting the address electrodes between the first and second substrates, and alternately arranged to correspond to boundaries between adjacent discharge cells along a direction in which the address electrodes extend; and third electrodes arranged between the first and second electrodes to pass through internal spaces of the discharge cells; at least one of the first, second, and third electrodes has protrusions protruding in the internal spaces of the discharge cells.
Abstract:
A Plasma Display Panel (PDP) includes: a front substrate; a rear substrate opposite to the front substrate; a dielectric wall arranged between the front and rear substrates to define discharge cells together with the front and rear substrates; pairs of discharge sustaining electrodes separately arranged along respective discharge cells and including a plurality of X electrodes and a plurality of Y electrodes buried in the dielectric wall; address electrodes arranged on the rear substrate and buried in a dielectric layer; and first, second, and third color phosphor layers coated in the discharge cells; wherein sectional areas of the X and Y electrodes vary with discharge distances of the X and Y electrodes with respect to portions of the X and Y electrodes where a discharge starts.
Abstract:
A plasma display panel including a first substrate and a second substrate facing each other, barrier ribs disposed between the first substrate and the second substrate and defining a plurality of discharge cells, pairs of first electrodes disposed at side surfaces of the barrier ribs and opposing each other in each discharge cell, pairs of second electrodes disposed at side surfaces of the barrier ribs and opposing each other in each discharge cell and which extend in a direction to intersect the first electrodes, and a dielectric layer covering the first and the second electrodes. The first electrodes and the second electrodes have at least two discharge units in each discharge cell.
Abstract:
A plasma display panel (PDP) that has a front substrate, a rear substrate arranged opposite to the front substrate, closed-type front barrier ribs arranged between the front substrate and the rear substrate and formed of a dielectric material, the front barrier ribs defining discharge cells together with the front and rear substrates, front and rear discharge electrodes arranged within the front barrier ribs and surrounding the discharge cells and spaced apart from each other, phosphor layers arranged within the discharge cells and a discharge gas injected into discharge cells.
Abstract:
A PDP that can significantly improve light emitting efficiency and light transmission includes a new discharge cell structure and electromagnetic wave shielding electrodes that replace the function of an electromagnetic wave shielding filter includes: a transparent front substrate; a rear substrate arranged in parallel to the front substrate; a plurality of front barrier ribs, formed of a dielectric material, are arranged between the front substrate and the rear substrate to define discharge cells together with the front substrate and the rear substrate; a front discharge electrode and a rear discharge electrode, separated from each other, are arranged in the front barrier rib to surround the discharge cell; more than one electromagnetic wave shielding electrode, arranged in front of and separated from the front discharge electrode, and surrounding the discharge cell; a plurality of rear barrier ribs arranged between the front barrier ribs and the rear substrate; a fluorescent layer arranged in a space defined by the rear barrier rib; and a discharge gas arranged within the discharge cells.
Abstract:
A Plasma Display Panel (PDP) includes: a front panel; a rear panel parallel to and separated from a front panel; a plurality of first barrier ribs of a dielectric, arranged between the front panel and the rear panel, and adapted to define discharge cells together with the front panel and the rear panel; front discharge electrodes and rear discharge electrodes disposed apart to surround each discharge cell within the first barrier ribs, each of the front discharge electrodes and rear discharge electrodes including main line parts and corner parts adapted to connect the adjacent main line parts, wherein inner surfaces of the corner parts facing each discharge cell, are rounded; a phosphor layer arranged in each discharge cell defined by the first barrier ribs; and a discharge gas filling each discharge cell.
Abstract:
A plasma display panel includes a pair of substrates spaced apart from each other and facing each other, a visible light generator arranged between the pair of substrates, and an electrode layer adapted to apply the same potential to a plane arranged between the pair of substrates at a predetermined angle with respect to a direction perpendicular to the pair of substrates.
Abstract:
The invention provides plasma display panel technique that is operated with a low voltage and reduced power consumption, and exhibits high luminous efficiency and high luminance. A barrier plate comprises a metal electrode having a projection that projects partially toward the cell space side between display electrodes formed so that the display electrodes intersect with an address electrode in a plane approximately parallel to the panel plane.
Abstract:
A plasma display panel has row electrode pairs regularly arranged on a front glass substrate, a plurality of column electrodes regularly arranged in a row direction on a back glass substrate and each extending in a column direction to form discharge cells at the intersections with the row electrode pairs in a discharge space, and a partition wall positioned between the front glass substrate and the back glass substrate to define the discharge cells. The partition wall is constituted of a metallic base and a dielectric insulation layer covering the metallic base. An electrode for applying a direct-current potential is connected to the metallic base of the partition wall.
Abstract:
An array of complex shaped top fibers that each include an address electrode, barrier ribs to form a plasma channel and a phosphor coating on the plasma channel create structure in a plasma display panel. The top fiber array is disposed on the plate facing the viewer and the light generated by the phosphors must penetrate through the top fibers to the viewer. The top fibers can be composed of a colored material associated with the color phosphor layer to add color purity and contrast to the plasma panel. The sustain electrodes are placed on the plate facing away from the viewer and can be included in an array of fibers containing wire sustain electrodes. The sustain electrode surface does not need to be transmissive since the generated light is transmitted through the top fiber array. Therefore, the sustain electrodes can be composed of a reflective metal and cover the majority of the surface of the bottom plate. Covering a large percentage of the bottom plate with sustain electrodes causes the maximum spreading of the electric field and generates the highest plasma efficiency. The sustain electrode bottom plate or array can also be reflective to reflect both the UV light generated by the plasma back toward the phosphor layer and the visible light generated by the phosphor layer back toward the viewer.