Abstract:
A plasma display panel includes a first substrate and a second substrate disposed opposite to each other and having a plurality of discharge spaces therebetween forming a display region for implementing images. Display electrodes are provided in lateral sides of the discharge spaces and extend in a first direction. Address electrodes extend in a second direction crossing the display electrodes. A dummy cell region and a frit region are provided outside of the display region. The frit region includes a first frit formed on a periphery of the first substrate, a second frit formed on a periphery of the second substrate, a dielectric layer disposed between the first substrate and the second substrate and covering the display electrodes, and electrode terminals drawn out from the display electrodes to an edge of the first substrate and the second substrate.
Abstract:
A plasma display panel includes a first substrate and a second substrate facing each other; barrier ribs forming discharge cells between the first substrate and the second substrate; a phosphor layer formed on the inside of the discharge cell; address electrodes formed on the first substrate in a first direction; a first display electrode and a second display electrode, both formed on the second substrate in a second direction crossing the first direction, the display electrodes having at least a pair of enlarged electrodes corresponding to each discharge cell; a first igniting electrode and a second igniting electrode, each formed protruding toward the center of the discharge cell at one end of the extended electrode, over the barrier ribs and along the barrier ribs, respectively from the first display electrode and the second display electrode; a first dielectric layer, formed on the second substrate covering the first display electrode and the second display electrode, having a first opening formed between the first display electrode and the second display electrode; and a second dielectric layer formed independently covering the first and the second igniting electrodes exposed to the first opening of the first dielectric layer.
Abstract:
A plasma display panel (PDP) including a plurality of cavities within a barrier structure is disclosed. In one embodiment, the PDP includes i) an upper substrate, ii) a lower substrate facing the upper substrate, iii) the barrier structure disposed between the upper substrate and the lower substrate and defining discharge cells, iv) upper discharge electrodes arranged at intervals within the barrier structure and each surrounding at least parts of the discharge cells, v) lower discharge electrodes arranged at intervals within the barrier structure, located under the upper discharge electrode, and each surrounding at least parts of the discharge cells, and vi) phosphor layers disposed over the discharge cells. According to one embodiment of the present invention, ineffective power consumption can be reduced and heat generated in the discharge cells can be effectively dissipated.
Abstract:
A PDP that can significantly improve light emitting efficiency and light transmission includes a new discharge cell structure and electromagnetic wave shielding electrodes that replace the function of an electromagnetic wave shielding filter includes: a transparent front substrate; a rear substrate arranged in parallel to the front substrate; a plurality of front barrier ribs, formed of a dielectric material, are arranged between the front substrate and the rear substrate to define discharge cells together with the front substrate and the rear substrate; a front discharge electrode and a rear discharge electrode, separated from each other, are arranged in the front barrier rib to surround the discharge cell; more than one electromagnetic wave shielding electrode, arranged in front of and separated from the front discharge electrode, and surrounding the discharge cell; a plurality of rear barrier ribs arranged between the front barrier ribs and the rear substrate; a fluorescent layer arranged in a space defined by the rear barrier rib; and a discharge gas arranged within the discharge cells.
Abstract:
A method of driving a plasma display panel during an address period. In order to avoid address discharge failure at the temporal end of an address period, the voltages applied to the scanning electrodes and to the bias electrodes are decreased throughout the address period. By ramping these voltages down towards the end of the address period, mis addressing is less likely to occur. Other modifications to the driving waveforms include altering the amplitude and/or the temporal width of the address pulses and the scanning pulses. Such techniques allow the address period to remain short while preventing failure during the address period.
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. Also, red, green, and blue phosphor layers are formed within each of the discharge cells. Discharge sustain electrodes are formed on the first substrate. The barrier ribs comprise first barrier rib members formed substantially parallel to the direction of the address electrodes, and second barrier rib members obliquely connected to the first barrier rib members and intersecting over the address electrodes. The second barrier rib members are formed to different widths according to discharge cell color such that red, green, and blue discharge cells have different volumes.
Abstract:
A plasma display panel. The plasma display panel includes barrier ribs between a first substrate and a second substrate that divide a space between into a plurality of discharge cells. Address, sustain and scan electrodes are formed within the barrier ribs and encircle ones of the discharge cells. Grooves are formed in one or both of the inner surfaces of the substrates to correspond to the discharge cells. Phosphor material is formed only in the grooves on the substrates and not on the walls of the barrier ribs.
Abstract:
A PDP with an increased aspect ratio and transmittance and that is capable of having barrier ribs securely engaged to substrates is provided. The PDP includes front and rear substrates arranged to face each other. Barrier ribs partition a plurality of discharge cells between the front substrate and the rear substrate. Engagement protrusions are formed on facing surfaces of the barrier ribs along edges of the front and rear substrates. The facing surfaces face the edges of the front and rear substrates. Engagement grooves are formed on facing surfaces of the front and rear substrates which face the barrier ribs. First and second electrodes are formed to extend in a first direction. Address electrodes are formed to extend in a second direction crossing the first and second electrodes. Phosphor layers are formed in each of the discharge cells. The engagement grooves are formed to correspond to the engagement protrusions. The first and second electrodes are formed inside the barrier ribs in a shape surrounding each of the plurality of discharge cells, and are arranged sequentially in a direction substantially perpendicular to the front and rear substrates. The address electrodes are formed inside the barrier ribs in a shape surrounding each of the plurality of discharge cells.
Abstract:
A Plasma Display Panel (PDP) with an improved structure of electrodes that enhances discharge efficiency and luminous efficiency includes: front and rear substrates facing each other; barrier ribs partitioning a plurality of discharge cells in a space between the front and rear substrates; address electrodes extending along a first direction between the front and rear substrates; first and second electrodes extending along a second direction crossing the first direction corresponding to each of the discharge cells, and phosphor layers contained within the discharge cells. The first and second electrodes include metal electrodes extending in the second direction, protrusion electrodes projecting toward a center of each of the discharge cells from the metal electrodes, and fence electrodes surrounding the protrusion electrodes.
Abstract:
A PDP that can significantly improve light emitting efficiency and light transmission includes a new discharge cell structure and electromagnetic wave shielding electrodes that replace the function of an electromagnetic wave shielding filter includes: a transparent front substrate; a rear substrate arranged in parallel to the front substrate; a plurality of front barrier ribs, consisting of a dielectric material, and arranged between the front substrate and the rear substrate to define discharge cells together with the front substrate and the rear substrate; a front discharge electrode and a rear discharge electrode, separated from each other, and arranged in the front barrier rib to surround the discharge cell; at least one electromagnetic wave shielding electrode, arranged in front of and separated from the front discharge electrode, and surrounding the discharge cell; a plurality of rear barrier ribs arranged between the front barrier ribs and the rear substrate; a fluorescent layer arranged in a space defined by the rear barrier ribs; and a discharge gas arranged within the discharge cells.