Abstract:
A plasma display panel has front and back substrates facing each other to form a discharge space in between; a partition wall that is provided between the front and back substrates for partitioning the discharge space into discharge cells, and is formed of a metal base covered with an insulation layer; and an electromagnetic-wave blocking layer provided on a portion of the front substrate facing a non-display zone located around the image display zone so as to cover the portion facing the non-display zone.
Abstract:
Inorganic powder as a plasma display panel material comprises a powdery material containing glass powder. The powdery material has a moisture content adjusted to fall within a range between 0.1 and 2 mass %. The powdery material may include the glass powder alone or may further comprise ceramics powder in addition to the glass powder. The inorganic powder may be used as a paste or a green sheet.
Abstract:
A metal-made partition wall 16 has an external surface covered by an insulation layer 16a, and transverse walls 16A each extending in the row direction to define the partition between discharge cells C adjacent to each other in the column direction between a front glass substrate 1 and a back glass substrate 4 of a plasma display panel. A groove 16Aa formed in at least one of the front-facing face and the back face of the transverse wall 16A.
Abstract:
The present invention provides a plasma display panel and a method for manufacturing barrier ribs for the plasma display panel. The plasma display panel includes first and second substrates that have a predetermined gap therebetween. A plurality of parallel address electrodes are formed on the first substrate. A dielectric layer is formed on the first substrate covering the address electrodes and barrier ribs are formed on the dielectric layer in a lattice pattern. Discharge sustain electrodes are formed on the second substrate which is perpendicular to the address electrodes, and a transparent dielectric layer and a protection layer are formed on the second substrate covering the discharge sustain electrodes. The barrier ribs are, for example, first and second barrier rib members which are formed respectively in the same direction as the address electrodes and the discharge sustain electrodes. Either or both the first barrier rib members or the second barrier rib members are made of a non-transparent material.
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:
The present invention provides a paint for forming an insulating film, which has a good wettability to a surface to be coated with the paint and has no voids or pin-holes after being fired; a plasma display panel including a dielectric layer formed using the paint; and a method of manufacturing the plasma display panel. The paint contains inorganic fine particles, a binder resin, and an organic solvent that has a good wettability to glass such as a glass substrate, ceramic as an Ag electrode, and a metal compound such as an ITO film and forms a contact angle of less than 5null with these inorganic materials. Accordingly, the paint has a good wettability to a glass substrate, an Ag electrode, and an ITO film and the resultant insulating film thus has no voids or pin-holes.
Abstract:
The display panel has a glass backplate (1) a first surface of which is provided with barrier ribs (3) of glass frit. Electrodes (5) are present between the ribs (3). A front member (10) rests on the barrier ribs (3) and is sealed to the backplate (1). The front member (10) has electrodes (11) which extend transversely to the ribs (3). The glass frit of the ribs (3) mainly consists of ZnO, B2O3 and V2O5 and has a minor content of SiO2, PbO and/or CuO, and BaO and are mechanically strong. The glass frit combines a relatively small thermal coefficient of expansion and a relatively low sintering temperature, which makes the frit particularly suitable for use with a backplate (1) of borate glass, particularly an alkali-free borosilicate glass.
Abstract:
A partition member for a gas discharge display panel having a front substrate with at least one main discharge electrode spaced from a back substrate having at least one auxiliary discharge electrode so as to delimit a gap therebetween. The partition member is adapted to extend substantially parallel to and between the front and back substrates for forming a main discharge space on a front substrate side and an auxiliary discharge space on a back substrate side, the partition member being a metal material member. A gas discharge display panel incorporates the partition member and a system is provided for driving the gas discharge display panel. Also, a manufacturing method is provided for the partition member and gas discharge display panel.
Abstract:
A glass composition according to the present invention comprises: phosphorus, vanadium and at least one transition metal selected from a group consisting of tungsten, iron, and manganese, the glass composition not containing substances included in the JIG level A and B lists, a softening point of the glass composition being 550° C. or lower.
Abstract:
A plasma display panel is disclosed. The plasma display panel includes a scan electrode and a sustain electrode positioned parallel to each other on a front substrate, an upper dielectric layer positioned on the scan electrode and the sustain electrode, a rear substrate on which an address electrode is positioned to intersect the scan electrode and the sustain electrode, a lower dielectric layer positioned on the address electrode, and a barrier rib positioned between the front substrate and the rear substrate. The barrier rib includes lead (Pb) equal to or less than 1,000 ppm (parts per million). A discharge gas is filled between the front substrate and the rear substrate and includes helium (He) of 9% to 42%.