Abstract:
A method of driving a plasma display panel (PDP), and a PDP are disclosed. The PDP includes discharge cells, each cell formed in a region where an address electrode crosses pairs of inner and outer sustain electrodes. The method of driving the PDP includes driving the inner sustain electrodes, so as to substantially prevent cross talk between neighboring discharge cells.
Abstract:
A plasma display panel provides increased brightness over an entire screen while simultaneously reducing power consumption. The plasma display panel includes a rear substrate, a plurality of address electrodes disposed parallel to each other on the rear substrate, a first dielectric layer covering the address electrodes, light emitting cells defined by a barrier rib formed on the first dielectric layer and covered with fluorescent substance, a front substrate, a plurality of sustain electrode pairs, each of which includes a scan electrode and a data electrode and disposed on the front substrate and intersecting the address electrodes, and a second dielectric layer covering the sustain electrode pairs. The parts of the address electrodes which intersect the address electrodes are defined as discharging portions, and areas of subsequent discharging portions are larger than areas of preceding discharging portions.
Abstract:
A Plasma Display Panel (PDP) displays images of high image quality by sufficiently exhausting an impurity gas and charging a discharge gas and by preventing cross talk from occuring between discharge cells. The PDP includes a transparent front substrate and a rear substrate facing the front substrate; a plurality of barrier ribs, arranged between the front and rear substrates, and oriented in a direction to define a plurality of discharge cells in which a discharge occurs; a plurality of electrodes adapted to receive electrical potentials to generate electric fields in the discharge cells; a phosphor layer arranged in the discharge cells; and a discharge gas contained within the discharge cells.
Abstract:
The present invention relates to a plasma display panel including a first substrate having a plurality of address electrodes and a dielectric layer, a second substrate, which is opposed to the first substrate, having a plurality of display electrodes, a dielectric layer, and a protection layer, barrier ribs formed on the first substrate to partition a plurality of discharge cells between the first substrate and the second substrate, a red, a green, and a blue phosphor layer formed inside of each discharge cell partitioned by the barrier ribs, and a layer for decreasing reflective brightness, which is formed on the upper-end surface of the barrier ribs, and comprises calcium magnesium silicate based blue phosphor.
Abstract:
A plasma display panel including a first substrate and a second substrate opposing each other, partition walls disposed between the first substrate and the second substrate and defining a plurality of discharge cells, pairs of first electrodes disposed at first side surfaces of the partition walls and opposing each other in the respective discharge cells, pairs of second electrodes disposed at second side surfaces of the partition walls and opposing each other in the respective discharge cells and extending in a direction intersecting the first electrodes, and a dielectric layer formed at the first side surfaces and the second side surfaces of the partition walls covering the first and the second electrodes. A convex portion of the dielectric layer covers at least one electrode.
Abstract:
A plasma display panel includes a first substrate and a second substrate arranged to oppose one another with a predetermined gap therebetween. Address electrodes are arranged on the first substrate, and barrier ribs are arranged between the first and second substrates to independently define discharge cells. Phosphor layers are arranged in the discharge cells. Sustain electrodes are arranged on the second substrate along a direction perpendicular to the address electrodes. Each of the discharge cells includes first and second sides arranged along the direction of the address electrodes, and third and fourth sides arranged along the direction of the sustain electrodes. The first and second sides are convexly arranged in a direction away from each other, and the third and fourth sides are concavely arranged.
Abstract:
A plasma display panel includes opposing first and second substrates provided with a predetermined gap therebetween. Address electrodes are formed on the first substrate. Barrier ribs are mounted in the gap between the first and second substrates to define discharge cells. Phosphor layers are formed within each discharge cell. Sustain electrodes are formed on the second substrate along a direction perpendicular to the address electrodes. The sustain electrodes include scan electrodes and common electrodes. One scan electrode is formed for each row of the discharge cells formed along the direction perpendicular to the address electrodes, and two common electrodes are formed for each such row of the discharge cells. Furthermore, each common electrode is shared among adjacent rows of the discharge cells. The common electrodes are mounted corresponding to non-discharge regions.
Abstract:
A display panel with an improved electrode structure including a cross region in which a plurality of first electrodes and a plurality of second electrodes are arranged to cross each other. A display cell is formed at each cross region. The display panel has an electrode structure in which a first electrode protrusion is formed in the direction of the arrangement of the second electrode and adjacent first electrode protrusions have different arrangements at adjacent cross regions.
Abstract:
A plasma display panel. A first substrate and a second substrate are provided opposing one another with a predetermined gap therebetween. Address electrodes are formed on the second substrate. Barrier ribs are mounted between the first substrate and the second substrate, the barrier ribs defining a plurality of discharge cells and a plurality of non-discharge regions. Phosphor layers are formed within each of the discharge cells. Discharge sustain electrodes are formed on the first substrate. The non-discharge regions are formed in areas encompassed by discharge cell abscissas that pass through centers of adjacent discharge cells and discharge cell ordinates that pass through centers of adjacent discharge cells, the non-discharge regions having a width that is at least as large as a width of an end of barrier ribs. Also, a transverse barrier rib is formed extending between each pair of adjacent rows of discharge cells.
Abstract:
A plasma display panel with first and second substrates facing each other, and address electrodes formed on the second substrate. A partition wall is disposed between the first and the second substrates to separately partition a plurality of discharge cells. A phosphor layer is formed within each discharge cell. Discharge sustain electrodes are formed on the first substrate. A thickness of the phosphor layer is designed so that the resulting internal space has a shape corresponding to the diffusion shape of the plasma discharge generated within the discharge cell to optimize brightness of the image and to maximize light emission efficiency.