Abstract:
A surface discharge alternating current plasma display panel has a pair of transparent electrodes supplied with current from metal bus electrodes through connecting portions spaced from each other by slits, a dielectric layer covering the pair of transparent electrodes and the metal bus electrodes and a porous insulating layer covering a part of the dielectric layer over the metal bus electrodes; when surface discharge occurs between the transparent electrodes of the pair, the surface discharge is spread toward the bus electrodes; however, the surface discharge can not exceed the slits; for this reason, the surface discharge is concentrated over the transparent electrodes.
Abstract:
Although it is inevitable that the barrier rib fracture remains on the barrier rib from a pressure applied from opposing glass substrates surface, the present invention aims to assemble the panel display after removing the broken fragments of the barrier rib from the discharge chamber. According to the manufacturing method of the panel display for the present invention, the method includes the step of temporary aligning the two glass substrates face-to-face, the step of decompressing the barrier rib pattern area formed by the alignment of the two glass substrates by isolating the barrier rib pattern area from the normal atmospheric pressure, the step of cleaning at least one of the glass substrates on facing side by detaching one of the glass substrates after the pressure has been returned to the normal atmospheric pressure, and the step of forming the discharge chamber by pasting the two glass substrates together in the similar manner as the temporary alignment.
Abstract:
A radiation sensitive composition comprising (1) a phosphor; (2) an organic polymer binder comprising a combination of at least one alkali-soluble resin and at least one cellulose ether; (3) a photo-crosslinkable compound; and (4) a photo-radical generating agent.
Abstract:
An electrode substrate of an AC type plasma display panel has a major surface with electrically connected display electrodes formed thereon and defining a display portion of the substrate. An insulating layer, of a ZnO-containing glass material containing substantially no lead, is formed on and covers the display portion of the major surface. The display electrodes may be a film of a transparent electrically-conducted material or a multi-layer film combination of a transparent electrically-conducted film of a first width and a metal film of a second, narrower width.
Abstract:
A surface discharge type plasma display panel(PDP) includes a pair of front and rear substrates (11, 21) with a discharge space (30) therebetween and a plurality of pair display electrodes on internal surface of either the front or rear substrate. The display electrodes are extending along each display line L. The PDP further includes a light shielding film (45), having a belt shape extending along the display line direction, formed on either internal or outer surface of the front substrate (11) to overlap each area S2 between the adjacent display lines L and sandwiched between the display electrodes X and Y.
Abstract:
A method for fabrication of a display device is provided which comprises the steps of: forming an aluminum electrode having a predetermined configuration on a substrate; and treating the aluminum electrode with a solution containing an oxidizing agent to form on a surface of the aluminum electrode a compound film containing as a principal component a substance derived from the solution containing the oxidizing agent.
Abstract:
A surface discharge type plasma display panel has a dielectric layer facing to a discharge gas space and a pair of sustaining electrodes embedded in the dielectric layer and disposed apart from each other by a discharge gap on one of the substrates spaced parallel to each other at the discharge gas space. The dielectric layer includes a pair of first thickness portions formed on far ends of the electrodes from the discharge gap respectively which are larger than a second thickness portion on facing near ends of the facing electrodes. The dielectric layer is provided with a depth from its surface to the substrate larger than that on the second thickness portion between adjacent the electrodes. This plasma display panel prevents any useless expansion of the surface discharge over the sustaining electrodes. The discharge current is reduced and the electrical load on the deriving circuit for the surface discharge PDP decreases to save a power consumption and further the emission efficiency of the surface discharge type PDP is improved.
Abstract:
A fluorescent gas-discharge color display panel, in which a fluorescent material is excited by a gas-discharge therein, contains a three-component gas mixture of neon, argon and xenon as the discharge gas. Typically, the argon gas component is in the range of from approximately 5 percent to approximately 80 percent, and that of the xenon gas from a minimum sufficient to maintain the Penning effect up to approximately 10 percent. The argon gas component contributes to the gas mixture producing a pure and high peak of green light spectrum and reduces the orange light spectrum emitted directly by the neon gas discharges. Other characteristics, such as operating voltages, brightness, luminous efficacy, and the panel operating life, are satisfactorily maintained. The improved color purity is advantageous for both single and multiple color display by the excited fluorescent material or materials.
Abstract:
A plasma display panel is provided with front and rear boards each having a plurality of electrode members, respectively. The front and rear boards are spaced apart to define a discharge space filled with an ionizable gas. The front board is equipped with a front glass plate including a fluorescent or phosphorescent element set on its inside surface, and a central plate having a number of holes therethrough. The electrode members of the front board are affixed by a coating to an inside surface of the central plate. The fluorescent or phosphorescent elements are placed at the rear of the electrode members on the central plate.
Abstract:
The present invention relates to alkaline earth aluminate phosphors, to a process for the preparation thereof and to the use thereof as conversion phosphors. The present invention also relates to an emission-converting material comprising at least the conversion phosphor according to the invention, and to the use thereof in light sources, in particular pc-LEDs (phosphor converted light emitting devices). The present invention furthermore relates to light sources, in particular pc-LEDs, and to lighting units which comprise a primary light source and the emission-converting material according to the invention.