Abstract:
An AC-type plasma display panel and a method for driving the AC-type plasma display panel are provided which are capable of reducing discharge leak (crosstalk) between cells being adjacent to each other and of increasing operating range. The AC-type plasma display panel has two insulating substrates both facing each other. On one insulating substrate is formed a plurality of scanning electrodes and a plurality of sustaining electrodes. On another insulating substrate is formed a plurality of data electrodes. Each of the scanning electrodes is made up of each of bus electrodes and each of main discharge electrodes. Each of the main discharge electrodes has a wide electrode portion arranged on a side of a discharge-space-side between the scanning electrode and the sustaining electrode being adjacent to each other, and a narrow electrode portion arranged on a side of a non-discharge-space between two of the scanning electrodes being adjacent to each other or two of sustaining electrodes being adjacent to each other.
Abstract:
A display apparatus which sequentially applies a scanning pulse to one row electrode of the row electrode pair while applying a pixel data pulse corresponding to the pixel data to the column electrodes one display line by one display line, simultaneously with the scanning pulse, to selectively produce an address discharge in the second discharge cell in the address period, applies a sustain pulse to the row electrode pairs in the sustain period, and produces a reset discharge in the same discharge current direction as the address discharge between one row electrode of the row electrode pair and the column electrode in the second discharge cell immediately before the address period of at least the first sub-field of the one-field display period, and a method of driving the display panel.
Abstract:
A projecting electrode of each of row electrodes constituting a row electrode pair faces a discharge cell and has a resistance value between 0.05 to 1.0 times inductance of a discharge space during discharge peak current occurring in the discharge cell by discharge that is produced between the row electrodes of the row electrode pair.
Abstract:
A plasma display panel includes designed to improve optical efficiently and to reduce misdischarging between discharge cells. The address electrodes have varying widths so that they are narrow in discharge cells and are relatively wide outside of discharge cells. Discharge gas filling the discharge cells have an elevated Xe content, preferably 10 to 30%. Other variations further include having striped and matrix patterned barrier ribs, forming the discharge sustain electrodes in tabs extending in pairs into the middle of the discharge cells, and varying the width of address electrodes at various locations outside of the discharge cells.
Abstract:
The present invention relates to a plasma display panel in which the time necessary for addressing is shortened, and a method and apparatus for driving the PDP. A plasma display panel according to a first embodiment of the present invention includes an upper substrate in which scan electrodes and sustain electrodes are formed, and a lower substrate in which an address electrode, a horizontal diaphragm and a vertical diaphragm are formed, wherein the horizontal diaphragms and the vertical diaphragms intersect one another to form a plurality of discharge cells, and the discharge cell includes a main discharge cell on which phosphors are coated, and a sub discharge cell on which magnesium oxide is coated. According to the first embodiment of the present invention, first horizontal diaphragms and second horizontal diaphragms are provided to form main discharge cells and sub discharge cells. A priming discharge is generated and an address discharge is generated within the sub discharge cells on which magnesium oxide is coated. An address discharge occurs rapidly.
Abstract:
An front plate structure for a plasma display panel is described. In accordance with the present invention, a protruding space pad structure is formed on the dielectric layer or protective layer of the front plate. The space pad is used to form the height difference on the surface of the front plate, about 3 μm to 15 μm. The height difference forms gas channels between the front plate and the discharge region to improve the performance of the vacuuming and refilling gas steps.
Abstract:
A plasma display device having a front substrate and a rear substrate is provided. The front substrate is constituted from a transparent first insulating substrate, and a plurality of stripe-shaped first electrodes including at least one discharge electrode and extending parallel to each other. The rear substrate is constituted from a second insulating substrate, a plurality of second electrodes extending parallel to each other, and a plurality of ribs forming a plurality of discharge spaces therebetween. The discharge electrode includes a transparent electrode, a black-colored first conductive layer, and a second conductive layer. The second conductive layer has a lower resistivity than the first conductive layer and is made with widths smaller than those of the first conductive layer and extends to the edge of the first insulating substrate.
Abstract:
A partition is formed by the process including a step for providing a sheet-like partition material that covers a display area and outside thereof on the surface of the substrate, a step for providing a mask for patterning that covers the display area and the outside thereof, so that a pattern of the portion arranged outside of the display area of the mask is a grid-like pattern, a step for patterning the partition material covered partially with the mask by a sandblasting process, and a step for baking the partition material after the patterning.
Abstract:
A separation wall transfer mold adaptive to form separation walls on a substrate, includes a main body. A separation wall concave section has concaves for separation walls and is formed in a surface of the main body for a material of the separation walls to be spewed into the separation wall concave section when the separation wall transfer mold is pressed to a substrate. A spew preventing concave section is formed in the surface of the main body for an excess portion of the material to be spewed in the spew preventing concave section.
Abstract:
An improved barrier structure of a PDP(Plasma Display Panel) is disclosed. The PDPincludes a pair of substrates opposed to each other at a prescribed interval, a plurality of address electrodes arranged on one of the substrates, a plurality of sustaining electrodes arranged on the other substrate, the sustaining electrodes intersecting the address electrodes, barriers dividing discharge cells while maintaining the prescribed interval between the substrates, and R(Red), G(Green) and B(Blue) fluorescent layers formed between the barriers in order, wherein the barriers are arranged parallel to one another between the address electrodes; a pair or pairs of the barriers corresponding to two fluorescent layers of the R, G and B fluorescent layers are in the form of a stripe and a pair of the barriers corresponding to the other fluorescent layer include bridges extending in a longitudinal direction of the sustaining electrodes as a discharge cell unit.