Abstract:
The present invention discloses a plasma display panel and a method of fabricating the same. The plasma display panel of the present invention includes a first electrode on the first substrate, a first dielectric layer on the first substrate including the first electrode, a plurality of second electrodes completely buried in the first dielectric layer, a second dielectric layer on the first dielectric layer including the first electrode, a third dielectric layer on the second substrate, a plurality of UV visible photon conversion layers on the third dielectric layer, a plurality of barrier ribs between each of the UV visible photon conversion layers and connecting the first and second substrates, and a discharge chamber between the first and second substrates defined by the barrier ribs, wherein the first dielectric layer includes at least one trench type discharge space exposing a portion of the first electrode to the discharge chamber.
Abstract:
A plasma display includes first and second substrates provided opposing one another. A plurality of first electrodes is formed on a surface of the first substrate facing the second substrate. A first dielectric layer is formed covering the first electrodes. A plurality of main barrier ribs is formed on a surface of the second substrate facing the first substrate, the main barrier ribs defining a plurality of discharge cells. A plurality of electrode barrier ribs is formed on the second substrate between the main barrier ribs. Phosphor layers are formed within the discharge cells, and discharge gas included in the discharge cells, where the main barrier ribs are formed integrally to the second substrate, and a second electrode and a second dielectric layer are formed, in this order, on a distal end of each of the electrode barrier ribs. A method of manufacturing the plasma display includes the processes of integrally forming a plurality of main barrier ribs on a plasma display substrate, the main barrier ribs defining a plurality of discharge cells, forming electrode barrier ribs between the main barrier ribs, forming an electrode on a distal end of each of the electrode barrier ribs, and forming a dielectric layer on each of the electrodes.
Abstract:
A plasma display panel has a pair of insulating substrates (a front substrate and a rear substrate) which face each other. A plurality of surface discharge electrodes, each including a transparent scanning electrode and a transparent maintaining electrode arranged with a surface discharge gap in between, are formed in a matrix form on the front substrate. A plurality of scanning trace electrodes, which are made of metal material, are formed extending horizontally on the scanning electrodes. A plurality of first partition walls are formed vertically extending in stripes between the surface discharge electrodes. A plurality of maintaining trace electrodes, connected to the maintaining electrodes, are formed vertically extending on the first partition walls. The front substrate having the electrodes thus formed thereon is covered with a transparent dielectric layer and a magnesia oxide layer in sequence. Meanwhile, a white dielectric layer, which reflects visible light with high efficiency, is formed on the rear substrate. A plurality of second partition walls are formed vertically extending in stripes on the white dielectric layer. A plurality of phosphor layers are formed between the second partition walls by forming separate stripe coatings of phosphor materials for red, green and blue.
Abstract:
In a planar type plasma discharge display device including first and second electrode groups to display a desired image by plasma discharge produced between the first and second electrode groups, its accuracy may be increased, and its manufacturing may be simplified. A pair of discharge electrode groups comprising a first electrode group and a second electrode group, each formed by arraying a plurality of electrode elements, are arrayed on a common substrate in a two-dimensional fashion. Then, a desired image is displayed by plasma discharge produced between selected electrode elements of the first and second electrode groups. To solve a problem of an ordinary matrix type high-definition display device which is not reliable because an area of a terminal disposed portion is increased by the enormous number of terminals concerning the horizontal direction scanning, a terminal width is reduced or terminals are disposed very close to each other. The display device includes first and second electrode groups. The first electrode group is formed by arraying a plurality of electrode elements X extended in a first direction, and the second electrode group is formed by arraying a plurality of electrode elements Y extended in the direction crossing the first direction. The electrode element Y of the second electrode group forms adjacent four electrode elements into one set, a common terminal is led out from every other electrode elements in each set, and a plasma discharge portion is formed at a portion in which every other electrode elements X of the first electrode groups and corresponding adjacent two electrode elements in each set of the second electrode group cross to each other.
Abstract:
The invention relates to a method of making a plasma display apparatus comprising a plurality of stripe-shaped electrodes arranged in a matrix, a dot-shaped discharge area or pixel area at each solid intersection between said stripe-shaped electrodes and a fluorescent film formed on each of said discharge areas and adapted to emit light when said fluorescent film is excited by ultraviolet rays from the corresponding discharge area.
Abstract:
A planar plasma discharge panel comprises a first group of electrical conductors secured to an electrically non-conducting substrate. A layer of electrically non-conducting dielectric material is secured to said substrate and to said conductors to form an electrically non-conductive surface thereover. A second group of electrical conductors is secured to said surface. The conductors of the second group cross the conductors of the first group at an angle so that the crossover areas of said conductors define discharge points of the plasma display panel. A second layer of electrically non-conductive dielectric material is secured to the first surface layer and to the second group of electrical conductors. An appropriate ionizable gas medium is confined above this second layer of dielectric material. The discharge pattern generated by the device is from point to point on the dielectric surface of the second layer of electrically non-conductive material with the desired electrical fields being generated by the underlying grid of conductors. The gaseous medium is selected for the desired discharge characteristics of the panel. Several embodiments are shown for controlling the discharge so as to improve panel resolution.
Abstract:
A plasma display panel (PDP) includes a first plate, and a second plate disposed to face the first plate via a discharge space and providing barrier ribs. A plurality of first electrodes and a plurality of second electrodes extending in a first direction, and a dielectric layer covering the first electrodes and the second electrodes are provided on the first plate. A plurality of address electrodes extending in a second direction, and a protective layer covering the dielectric layer and the address electrodes and exposing at least a part of the protective layer to the discharge space are provided on the dielectric layer. The address electrodes are made up by including a conductive layer formed by either one of aluminum and an alloy containing aluminum and copper and by not including a layer of a simple substance of copper.
Abstract:
A plasma display panel includes a first and a second plate facing each other via a discharge space. On the first plate, a first and a second bus electrode are provided which extend in a first direction and are disposed at intervals. On the second plate, a plurality of first barrier ribs are provided which extend in a second direction perpendicular to the first direction and are disposed at intervals. On the first plate, a plurality of address electrodes are provided which are disposed at respective positions facing the first barrier ribs. In a cell, a first and a second display electrode are provided which are coupled to the first and the second bus electrode respectively, and facing each other along the second direction. The first and the second display electrode are disposed on both sides of one of the address electrodes adjacently, respectively, along the first direction.
Abstract:
A plasma display panel has a first plate and a second plate facing each other. An image display area of the plasma display panel is made up of cells emitting light by a discharge. A plurality of first electrodes extending in a first direction and disposed at intervals and a first dielectric layer covering the display area of the first electrodes are provided on the first plate. In addition, a plurality of second electrodes extending in a second direction orthogonal to the first direction and disposed at intervals are provided on the first dielectric layer. Further, a seal material is disposed in the shape of a frame, in order to adhere the second plate to the first plate, at a position more inside than an edge part of the first dielectric layer on an outer surround part of the display area on the second plate.
Abstract:
A plasma display panel includes a first and a second plate facing each other via a discharge space. On the first plate, a first and a second bus electrode are provided which extend in a first direction and are disposed at intervals. In a cell, a first and a second display electrode are provided and coupled to the first and the second bus electrode respectively, and facing each other. In addition, on a dielectric layer covering the first and the second bus electrode and the first and the second display electrode, a plurality of address electrodes are provided which are disposed at respective positions facing first barrier ribs. Then, a protective layer is formed directly on the address electrodes and the dielectric layer, covering a surface of the dielectric layer and the address electrodes, and being exposed to the discharge space of the cell.