Abstract:
A discharge display device wherein a gas-tight space defined by two plates and a sealing member is divided into a plurality of discharge chambers by partition walls formed on one of the two plates, and height adjusting layers are interposed between end faces of the respective partition walls and an inner surface of the other plate. Each height adjusting layer is formed from a material which has a softening point not lower than that of the sealing member and which is softened at a sealing temperature at which the two plates are bonded together by the sealing member. The height adjusting layers, which assure gas-tight separation of the discharge chambers, may replace upper end portions of the partition walls. Alternatively, the partition walls may be entirely formed from the above-indicated material. Also disclosed is a process of fabricating such a discharge display device, wherein height adjusting layers are softened at the sealing temperature when the two plates are bonded together with the melting of the sealing member.
Abstract:
A planer discharge type plasma display panel has an internal configuration to suppress an increase in power consumption and also to provide high brightness in the sense of visual sensation. A pair of row electrodes X,Y parallel to each other are formed on a front glass substrate in the display section, and transparent electrodes with a discharging gap formed in a portion thereof and bus electrodes are formed on a portion of the substrate, and a dielectric layer is further formed to cover the electrodes. The dielectric layer is formed so that a film thickness of the bus electrode is made larger as compared to that of the dielectric layer in a light emitting region between the opposing bus electrodes, namely by providing a protruding section thereon. The area of the protruding section is made small in a central portion of the PDP, and is gradually made larger in a direction from the central portion to the peripheral section thereof.
Abstract:
An AC plasma display includes a plurality of parallel column electrodes (14); a plurality of parallel row electrodes (21) disposed from, and perpendicular to, the column electrodes (14); a dielectric layer (17) for forming a wall charge is made of a low dielectric constant glass having a low melting point includes sodium oxide and boron oxide and covers the column electrodes (14); and an electrode protective layer (16) made from an inorganic material, for example silicon dioxide, prevents diffusion of sodium from the dielectric layer (17) to the column electrode (14). The dielectric layer (17) is made of a glass having a low dielectric constant of 8 or less to reduce pixel capacitance thereby reducing the electrical power consumption of the display.
Abstract:
Disclosed is a plasma display panel including a porous metal plate in which a plurality of holes for display cells are formed at positions corresponding to intersections at which a first linear electrode group and a second linear electrode group cross each other with a predetermined interval therebetween, and a front glass plate, wherein openings of the holes of the porous metal plate on the front surface side are larger than openings on the rear surface side, the openings on the rear surface are covered with a molten material of an inorganic dielectric containing glass and are thereby air-tightly sealed. This plasma display panel is light in weight and thin and can be easily assembled.
Abstract:
In a gas discharge display element according to the present invention, two pairs of electrodes are arranged in a discharge space of a display cell and one of the electrode pairs which forms a first discharge space between the first electrodes is driven such that discharge having a memory function and capable of being memory-driven is produced during a time in which light emission of the display cell is sustained. The other electrode pair is driven with a voltage pulse having duration smaller than that of the driving voltage pulse for the first electrode pair such that discharge a is obtained in the other space defined between the electrodes of the other electrode pair using the discharge in the first space as a seed discharge. The duration of the drive pulse for the second electrode pair preferably terminates before the discharge current is reduced due to the formation of a wall charge.
Abstract:
A plasma display includes discharge gas spaces, first and second insulating substrates, stripe row electrodes, an insulating layer, a protective layer, stripe column electrodes, another insulating layer, phosphors, and ribs. The discharge gas spaces constitute a plurality of pixels. The first and second insulating substrates are arranged parallel to each other so as to sandwich the discharge gas spaces. The row electrodes are arranged on a surface of the first insulating substrate which opposes the discharge gas spaces. The first insulating layer is stacked on the stripe row electrodes. The protective layer is stacked on the insulating layer. The column electrodes are arranged on a surface of the second insulating substrate, which opposes the discharge gas spaces, in a direction perpendicular to the row electrodes. The second insulating layer is stacked on the column electrodes. The phosphors are stacked on the insulating layer at positions corresponding to the pixels, respectively. The ribs are arranged on the row electrodes so as to define the pixels. A method of driving the plasma display is also disclosed.
Abstract:
A plasma display panel includes a front panel and a rear panel disposed opposing each other. The front panel includes a display electrode composed of a scan electrode and a sustain electrode extending in a row direction. A rear panel includes address electrode extending in a column direction and intersecting the display electrode. A lattice form of barrier ribs of row direction barrier ribs and column direction barrier ribs, which have the same height, forming a plurality of individually divided discharge cells is provided in a part in which the display electrode and the address electrode intersect each other. The row direction barrier ribs of the barrier ribs are provided with communication portions communicating discharge cells in non-parallel to the column direction.
Abstract:
A plasma display panel comprising first and second substrates positioned substantially parallel to each other, facing each other and separated from each other by a predetermined distance is disclosed. A plurality of address electrodes are formed on the first substrate. A first dielectric layer covers the plurality of address electrodes on the first substrate. A plurality of barrier ribs having predetermined heights are mounted on the first dielectric layer, creating discharge spaces between the first and second substrates. Phosphor layers are formed within the discharge spaces. A plurality of discharge sustain electrodes are formed on the surface of the second substrate facing the first substrate and are positioned perpendicular to the address electrodes on the first substrate. A second dielectric layer is formed on the second substrate covering the discharge sustain electrodes. A protection layer comprising MgO and Ca, Al, Fe and Si dopants covers the second dielectric layer.
Abstract:
A plasma display panel including a transparent front substrate, a rear substrate disposed parallel to the front substrate, a barrier wall disposed between the front substrate and the rear substrate and defining light-emitting cells, address electrodes on the rear substrate and covered by a first dielectric layer, sustain electrode pairs extending in a direction orthogonal to a direction in which the address electrodes extend and covered by a second dielectric layer, red, green and blue phosphor layers coated on sides of the barrier wall and a surface of the first dielectric layer, and red, green and blue phosphor films formed on the second dielectric layer at regions corresponding to regions where the red, green and blue phosphor layers are formed.
Abstract:
A front and back glass substrates are placed on either side of a discharge spaces. A plurality of sustain electrode pairs extend in a row direction and are regularly arranged in a column direction on the front glass substrate. A dielectric layer covering the sustain electrode pairs is formed on the front glass substrate. A plurality of address electrodes initiating a discharge in conjunction with the sustain electrodes in each discharge cell formed in the discharge space extend in the column direction and are regularly arranged in the row direction. A first metallic partition wall unit defining the discharge cells is formed on the front glass substrate. A second metallic partition wall unit defining the discharge cells adjoined to the first partition wall unit is formed on the back glass substrate.