Abstract:
A plasma display panel. The plasma display panel includes a first substrate made of a transparent material, a second substrate opposite to the first substrate, a first partition wall being located between the first substrate and the second substrate, defining discharge cells together with the first and second substrates, and being made of a dielectric material, upper discharge electrodes being located in the first partition wall and surrounding the discharge cells, lower discharge electrodes being located in the first partition wall to surround the discharge cells and separated from the upper discharge electrodes by a predetermined gap, protrusive electrodes being located in the first partition wall between the upper discharge electrodes and the lower discharge electrodes, connected to one of the upper discharge electrodes and the lower discharge electrodes, and separated from the other discharge electrodes by a predetermined gap, and a phosphor layer arranged in the discharge cells.
Abstract:
A method of driving a PDP including, in a sustain discharge period, alternately applying a first sustain pulse and a second sustain pulse to a first electrode and a second electrode, respectively, and applying a pulse to a third electrode. The first sustain pulse and the second sustain pulse rise to a first voltage and fall to a tenth voltage, and a period in which a voltage of the first sustain pulse varies temporally overlaps a period in which a voltage of the second sustain pulse varies. The pulse applied to the third electrode is applied during the overlapping period.
Abstract:
A plasma display panel with reinforcing electrodes arranged at both ends of discharge cells along a direction address electrodes are formed and coupled to display electrodes. The reinforcing electrodes may comprise carbon-based material such as carbon nanotubes or graphite, and they may be stacked in two or more layers and covered with a dielectric layer and a protective layer. The dielectric layer may be interposed between the reinforcing electrodes and the display electrodes. The dielectric layer may expose the reinforcing electrodes so that the protective layer covers the reinforcing electrodes. A portion of the protective layer corresponding to the reinforcing electrodes has a surface roughness of about 300 nm to about 700 nm.
Abstract:
The present invention provides a plasma display panel (PDP) with a structure that can reduce an outer reflection of an external light source and increase the reflection of visible rays emitted from the phosphor, remarkably increase the aperture ratio of the front panel, and remarkably reduce occurrence of a permanent residual image. The PDP includes: a transparent front panel; a rear panel disposed in parallel with the front panel; a plurality of opaque upper barrier ribs disposed between the front panel and the rear panel to define a plurality of discharge cells, and formed of a dielectric material; a lower discharge electrode and an upper discharge electrode disposed within the plurality of opaque upper barrier ribs so as to enclose the discharge cells; a plurality of lower barrier ribs disposed between the plurality of opaque upper barrier ribs and the rear panel; a phosphor layer disposed within a space defined by the plurality of lower barrier ribs; and a discharge gas disposed inside the discharge cells.
Abstract:
A Plasma Display Panel (PDP) capable of reducing an address discharge voltage between address electrodes and Y electrodes, suppressing an address discharge delay, and improving brightness includes: a first substrate, a second substrate spaced apart from the first substrate and facing the first substrate, barrier ribs arranged between the first and second substrates and defining discharge cells where a discharge occurs, discharge electrode pairs including X electrodes and Y electrodes extending across the discharge cells, floating electrodes arranged closer to the Y electrodes than to the X electrodes, address electrodes extending across the discharge cells and intersecting the discharge electrode pairs within the discharge cells, and phosphor layers arranged within the discharge cells. Portions of the address electrodes facing the Y electrodes are wider than portions of the address electrodes facing the X electrodes, or distances between the Y electrodes and the portions of the address electrodes facing the Y electrodes are shorter than distances between the X electrodes and the portions of the address electrodes facing the X electrodes.
Abstract:
A plasma display panel. The plasma display panel includes a first substrate made of a transparent material, a second substrate opposite to the first substrate, a first partition wall being located between the first substrate and the second substrate, defining discharge cells together with the first and second substrates, and being made of a dielectric material, upper discharge electrodes being located in the first partition wall and surrounding the discharge cells, lower discharge electrodes being located in the first partition wall to surround the discharge cells and separated from the upper discharge electrodes by a predetermined gap, protrusive electrodes being located in the first partition wall between the upper discharge electrodes and the lower discharge electrodes, connected to one of the upper discharge electrodes and the lower discharge electrodes, and separated from the other discharge electrodes by a predetermined gap, and a phosphor layer arranged in the discharge cells.
Abstract:
A plasma display panel, which enables low voltage addressing and reduces deterioration of the fluorescent layers, thereby achieving excellent luminance, includes: a front substrate having sustaining electrodes arranged at predetermined intervals; a front dielectric layer adapted to bury the sustaining electrodes; a rear substrate facing the front substrate and including address electrodes arranged orthogonal to the sustaining electrodes; a rear dielectric layer adapted to bury the address electrodes; barrier walls adapted to define stripe-shaped discharge spaces arranged between the front substrate and rear substrate, the stripe-shaped discharge spaces being parallel to and alternating with the address electrodes; fluorescent layers arranged within the discharge spaces; and at least one floating electrode respectively arranged within the barrier walls in a longitudinal direction of the barrier walls. Alternatively, first and second barrier walls can be adapted to define discharge spaces arranged between the front substrate and rear substrate, the first barrier walls arranged parallel to and alternating with the address electrodes, and the second barrier walls arranged perpendicular to the first barrier walls and at least one floating electrode respectively arranged within the first and second barrier walls and in a longitudinal direction of the first and second barrier walls.
Abstract:
A Plasma Display Panel (PDP) capable of reducing an address discharge voltage between address electrodes and Y electrodes, suppressing an address discharge delay, and improving brightness includes: a first substrate, a second substrate spaced apart from the first substrate and facing the first substrate, barrier ribs arranged between the first and second substrates and defining discharge cells where a discharge occurs, discharge electrode pairs including X electrodes and Y electrodes extending across the discharge cells, floating electrodes arranged closer to the Y electrodes than to the X electrodes, address electrodes extending across the discharge cells and intersecting the discharge electrode pairs within the discharge cells, and phosphor layers arranged within the discharge cells. Portions of the address electrodes facing the Y electrodes are wider than portions of the address electrodes facing the X electrodes, or distances between the Y electrodes and the portions of the address electrodes facing the Y electrodes are shorter than distances between the X electrodes and the portions of the address electrodes facing the X electrodes.
Abstract:
A plasma display panel, which enables low voltage addressing and reduces deterioration of the fluorescent layers, thereby achieving excellent luminance, includes: a front substrate having sustaining electrodes arranged at predetermined intervals; a front dielectric layer adapted to bury the sustaining electrodes; a rear substrate facing the front substrate and including address electrodes arranged orthogonal to the sustaining electrodes; a rear dielectric layer adapted to bury the address electrodes; barrier walls adapted to define stripe-shaped discharge spaces arranged between the front substrate and rear substrate, the stripe-shaped discharge spaces being parallel to and alternating with the address electrodes; fluorescent layers arranged within the discharge spaces; and at least one floating electrode respectively arranged within the barrier walls in a longitudinal direction of the barrier walls. Alternatively, first and second barrier walls can be adapted to define discharge spaces arranged between the front substrate and rear substrate, the first barrier walls arranged parallel to and alternating with the address electrodes, and the second barrier walls arranged perpendicular to the first barrier walls and at least one floating electrode respectively arranged within the first and second barrier walls and in a longitudinal direction of the first and second barrier walls.
Abstract:
The present invention provides a plasma display panel (PDP) with a structure that can reduce an outer reflection of an external light source and increase the reflection of visible rays emitted from the phosphor, remarkably increase the aperture ratio of the front panel, and remarkably reduce occurrence of a permanent residual image. The PDP includes: a transparent front panel; a rear panel disposed in parallel with the front panel; a plurality of opaque upper barrier ribs disposed between the front panel and the rear panel to define a plurality of discharge cells, and formed of a dielectric material; a lower discharge electrode and an upper discharge electrode disposed within the plurality of opaque upper barrier ribs so as to enclose the discharge cells; a plurality of lower barrier ribs disposed between the plurality of opaque upper barrier ribs and the rear panel; a phosphor layer disposed within a space defined by the plurality of lower barrier ribs; and a discharge gas disposed inside the discharge cells.