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.
Abstract:
Provided is a plasma display panel having flexibility. The plasma display panel includes a panel assembly that displays images and has flexibility, a plurality of base members that are attached to a surface of the panel assembly and support the panel assembly, and connection members that connect the base members to each other and are installed to be bent in the same direction as the panel assembly is bent. The base members that support the panel assembly having flexibility on a rear surface of the panel assembly can be bent or folded in the same direction as the panel assembly by the connection members.
Abstract:
A plasma display panel (PDP) having increased exhaustion capacity, includes a first substrate, a second substrate spaced apart from the first substrate and having an exhaustion hole, first and second sealing members, and an electrode sheet with at least one exhaustion path, the electrode sheet disposed between the first substrate and the second substrate and having a discharge area and an undischarge area.
Abstract:
A plasma display panel comprising a first substrate and a second substrate with a first dielectric layer formed on a surface of the first substrate and a second dielectric layer formed on a surface of the second substrate. A plurality of barrier ribs are interposed between the first and second substrates to provide a discharge space and a non-discharge space. A protection layer comprising MgO is formed on an area of the second dielectric layer over the discharge space, and an exothermal inhibition layer is formed on an area of the second dielectric layer over the non-discharge space. The protection layer may also be comprised of MgO and an exothermal inhibition material.
Abstract:
Provided is a plasma display panel in which failure of a terminal part structure of discharge electrodes can be prevented. The plasma display panel includes: a pair of panels which are spaced from each other with a predetermined gap therebetween which are opposed to each other; a sheet which is disposed between the pair of panels and includes barrier ribs for defining discharge cells in cooperation with the pair of panels and a dielectric part disposed at an edge of the sheet; discharge electrodes which include discharge parts generating discharge inside the barrier ribs, terminal parts formed in contact with the dielectric part and spaced from each other, and connection parts connecting the discharge parts to the terminal parts; a signal transmission member including wires which are connected to the terminal parts and are spaced from each other, a gap between the wires being smaller than the gap between the terminal parts; phosphor layers which are disposed inside the discharge cells; and discharge gas in the discharge cells. Also provided is a method of making the plasma display panel.
Abstract:
A plasma display panel (PDP) includes: a front substrate; a rear substrate disposed in opposition to the front substrate; first barrier ribs disposed between the front substrate and the rear substrate, defining discharge cells with the front substrate and the rear substrate, and formed of a dielectric material; front discharge electrodes disposed inside the first barrier ribs so as to surround the discharge cells; rear discharge electrodes disposed inside the first barrier ribs so as to surround the discharge cells, and spaced apart from the front discharge electrodes; phosphor layers disposed in the discharge cells; and a discharge gas deposited in the discharge cells. With respect to a longitudinal sectional view of the first barrier ribs, a virtual horizontal axis which extends from a lowermost portion of each of the rear discharge electrodes and is parallel to the front substrate intersects a lateral surface of the first barrier ribs at a certain position. An angle between a tangent line at the intersection of the horizontal axis and a lateral surface of the first barrier ribs, on one hand, and a virtual vertical axis orthogonal to the horizontal axis, on the other hand, ranges from 4° to 17°.
Abstract:
A structure for connecting terminal parts of electrodes of a plasma display panel (PDP) includes a pair of substrates, barrier ribs arranged between the pair of substrates, a dielectric layer arranged between the pair of substrates, discharge electrodes, each having a discharge part arranged inside the barrier ribs, and an exposed part arranged at an end of the discharge part and outside the barrier ribs, terminal electrodes arranged on the dielectric layer, connection parts including conductive paste electrically connecting the exposed parts with the terminal electrodes, blocking partition walls arranged between the connection parts, and signal transmitting members electrically connected with the terminal electrodes.
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:
Embodiments of the present invention offer an improved PDP that offers a lowered discharge initiation voltage as well as improved efficiency of discharge. The PDP may satisfy the equation 180≦(A+B)+P×0.1≦240 in which A is a distance between opposite recessed portion of a pair of a first electrode and a second electrode; it is a distance between opposite projection portions of the pair of the first electrode and the second electrode, and P is a gas pressure of a discharge gas contained in the discharge space. In another embodiment a gas pressure of a gas trapped in a discharge space (e.g., “cell” or “discharge cell”) may be over 450 Torr. Additionally, each opposing end of the first electrode and the second electrode may include a recessed portion and a projection portion such that a gap interposed between the opposing end portions varies in width.
Abstract:
A plasma display panel including a first substrate facing a second substrate, partition walls arranged between the first substrate and the second substrate and defining a plurality of discharge cells, pairs of R, G, B discharge electrodes for generating a discharge in the discharge cells, a fluorescent layer emitting red, green, and blue light arranged inside the discharge cells, and discharge gas in the discharge cells.