Abstract:
A glass composition for a plasma display panel (PDP) and its fabrication. method are disclosed. The composition, comprising a ZnO—B2O3 group and alkaline earth metal oxide, is environment-friendly, has a high discharge efficiency and is used as various PDP dielectric materials. The fabrication method allows to compose the low melting point unleaded non-alkali glass composition at a low cost.
Abstract translation:一种用于等离子体显示面板(PDP)的玻璃组合物及其制造方法。 公开了方法。 包含ZnO-B 2 O 3 N 3基团和碱土金属氧化物的组合物是环境友好的,具有高放电效率并且用作各种PDP介电材料 。 该制造方法能够以低成本构成低熔点无铅无碱玻璃组合物。
Abstract:
The present invention relates to a plasma display apparatus. The plasma display apparatus includes an upper substrate, first and second electrodes formed on the upper substrate, a lower substrate disposed opposite to the upper substrate, a third electrode formed on the lower substrate, and a barrier rib formed on the lower substrate, for partitioning a discharge cell. At least one of the first and second electrodes is formed of one layer. The barrier rib is formed using a photosensitive material. The photosensitive material includes an inorganic component containing glass particle, and an organic component containing a photosensitive compound. In accordance with the plasma display apparatus of the present invention, since transparent electrodes made of ITO are removed, the manufacturing cost of a plasma display panel can be saved. Furthermore, the protruding electrodes are projected from the scan electrode or the sustain electrode line to the center of the discharge cell or in an opposite direction to that of the center of the discharge cell. It is therefore possible to lower a firing voltage and can increase discharge diffusion efficiency within a discharge cell.
Abstract:
The present invention discloses a plasma display panel and method for manufacturing the same wherein the quality of an image can be improved by preventing an erroneous discharge. A plasma display panel having a number of discharge cells according to an embodiment of the present invention includes barrier ribs by which a discharge space is defined between an upper substrate and a lower substrate; and an oxide film of a low dielectric constant formed on each of the barrier ribs. A method for manufacturing a plasma display panel according to an embodiment of the present invention includes the steps of: forming barrier ribs on a lower substrate so that a discharge space is defined by the barrier ribs between an upper substrate and a lower substrate; and forming an oxide film of a low dielectric constant on each of the barrier ribs. According to a PDP and method for manufacturing the same of the present invention, since an erroneous discharge does not occur, the quality of an image of a plasma display panel is improved.
Abstract:
A plasma display panel includes first and second substrates having a predetermined gap therebetween. Barriers are disposed between the first and second substrates to partition discharge cells and fluorescent layers are formed in the discharge cells. Address electrodes corresponding to the discharge cells extend in a first direction, and pairs of first and second electrodes extend in a second direction to cross the first direction. The address electrodes are on one of the substrates to correspond to the discharge cells. A dielectric layer covers the first and second electrodes, wherein the dielectric layer is colored with a first color, the barriers are colored with a second color having a subtractive mixture relation with the first color, and wherein the fluorescent layers include first fluorescent layers on the barriers and the discharge cells, and second fluorescent layers on the first fluorescent layers in the second color.
Abstract:
An exemplary PDP according to an embodiment of the present invention includes first and second substrates, an address electrode, first and second barrier ribs, first and second electrodes, and a phosphor layer. The first and second substrates face each other, the address electrode is formed on the first substrate and extends in a first direction, and the first barrier rib is formed on the first substrate and partitions a plurality of first discharge cells. The first and second electrodes extend along the second direction and are disposed in the first discharge cells. The second barrier rib is formed on the second substrate and partitions second discharge cells that correspond to the first discharge cells. The phosphor layer is formed in the discharge cells on the second substrate.
Abstract:
A plasma display panel, a method of manufacturing an electrode burying dielectric wall of a plasma display panel, and a method of manufacturing an electrode burying dielectric wall of the plasma display panel. The plasma display panel comprises a front substrate, a rear substrate separated from the front substrate in a vertical direction, front discharge electrodes and rear discharge electrodes disposed between the front substrate separated from one another by an insulating layer, a high dielectric layer surrounding the front discharge electrodes and the rear discharge electrodes, discharge cells, at least a portion of each discharge cell being surrounded by the high dielectric layer, a phosphor layer disposed in each of the discharge cells, and a discharge gas filled in the discharge cells.
Abstract:
A lower structure of plasma display panel, a method for fabricating the same and a plasma display panel with the same are disclosed, wherein the lower structure of a plasma display panel comprising: an address electrode formed on a lower substrate; a dielectric layer formed on the lower substrate for covering the address electrode; a barrier rib formed on the dielectric layer to form a discharge cell, with a width of a central portion thereof being narrower than each width of its upper and lower ends; and a fluorescent layer formed inside the discharge cell, such that. a discharge space increases to reduce a high temperature erroneous discharge and enhance reliability of the plasma display panel.
Abstract:
Disclosed is a rear plate of a plasma display panel. In the rear plate, barrier ribs are formed through etching after backing, and thus the completed barrier ribs are not deformed. Therefore, each electrode can be exactly located on a central portion between barrier ribs. When a PDP having front and rear plates attached to each other has been completed, optical characteristics of the PDP such as white brightness, color temperature, and contrast, and electric characteristics of the PDP such as voltage margin, power consumption, and electric efficiency, are improved, so that the reliability is improved.
Abstract:
The present invention discloses a plasma display panel and method for manufacturing the same wherein the quality of an image can be improved by preventing an erroneous discharge. A plasma display panel having a number of discharge cells according to an embodiment of the present invention includes barrier ribs by which a discharge space is defined between an upper substrate and a lower substrate; and an oxide film of a low dielectric constant formed on each of the barrier ribs. A method for manufacturing a plasma display panel according to an embodiment of the present invention includes the steps of: forming barrier ribs on a lower substrate so that a discharge space is defined by the barrier ribs between an upper substrate and a lower substrate; and forming an oxide film of a low dielectric constant on each of the barrier ribs. According to a PDP and method for manufacturing the same of the present invention, since an erroneous discharge does not occur, the quality of an image of a plasma display panel is improved.
Abstract:
A plasma display panel includes a front plate, at least one electrode disposed on the front plate, a back plate opposing the front plate, the back plate being spaced apart from the front plate, at least one electrode disposed on the back plate, and a plurality of partition walls disposed between the front plate and the back plate. The partition walls divide a space between the front plate and the back plate into a plurality of display cells. Each of the partition walls has a plurality of projections opposing one of the front plate and the back plate. The projections are arranged such that the projections do not overlap the at least one electrode disposed on the one of the front plate and the back plate.