Abstract:
A plasma display panel is disclosed. The plasma display panel includes first barrier ribs partitioning a plurality of sub pixels, and second barrier ribs partitioning neighboring unit pixels wherein the plurality of sub pixels form one unit pixel. A width of each of the second barrier ribs partitioning the unit pixels is wider than that of each of the first barrier ribs partitioning the plurality of sub pixels. A sub pixel located at the center of the plurality of sub pixels is a blue sub pixel.
Abstract:
A plasma display panel is constructed with a substrate, a plurality of discharge electrodes that are located on the substrate and include a pair of sustain discharge electrodes that generate sustain discharge and address electrodes crossing the sustain discharge electrodes, a plurality of barrier ribs that are located on the substrate to define a plurality of discharge cells and have volume enlargement portions; and phosphor layers formed in the discharge cells.
Abstract:
A plasma display panel includes a pair of substrates forming a discharge space therebetween, barrier ribs in a row direction and a column direction that divide the discharge space to form discharge cells in a matrix pattern, and phosphor layers of three colors of red, green and blue formed inside the discharge cells to provide different colors through repetitive patterns. The phosphor layers have the same color in the discharge cells in the column direction. The width of barrier ribs that divide discharge cells having a red phosphor layer whose luminosity factor is the smallest is made wider than that of barrier ribs that divide discharge cells of the other colors so that the height of the barrier ribs is made lower.
Abstract:
A plasma display panel and the manufacturing method thereof. Forming partition wall structures on the back substrate of the paste display panel and forming the column-shaped protrusions at the positions corresponding to the cuts on the rib on the front substrate of the plasma display panel. The manufacturing process is simple and the alignment of the front and back substrate is easy. In addition, the size of the opening of the rib and the size of the cut can be easily adjusted according to the needs of the application during the manufacturing process.
Abstract:
A plasma display panel includes a front substrate, a rear substrate facing the front substrate, and barrier ribs dividing a space between the front and the rear substrates to form discharge cells and channels between the discharge cells. Display electrodes are formed at the discharge cells in a second direction crossing the first direction. Main phosphor layers are formed within the discharge cells to classify the discharge cells into first through third color discharge cells depending upon the emitted colors thereof, and auxiliary phosphor layers are formed within the channels. The barrier ribs include a first barrier rib portion dividing the discharge cells in the first direction, and a second barrier rib portion dividing the discharge cells in the second direction and separating neighboring discharge cells in the first direction to form the channels. The main phosphor layers at the first through third color discharge cells and the auxiliary phosphor layers are colored with first through third colors, respectively.
Abstract:
A plasma display panel is provided. The plasma display panel includes a front substrate, a rear substrate and a barrier rib, the barrier rib includes a first portion of the barrier rib where the height of the barrier rib gradually changes and a second portion of the barrier rib where the height of the barrier rib remains substantially constant.
Abstract:
Ribs for defining pixel cells are formed in the shape of a lattice, and sustain electrodes and scan electrodes are disposed near the ribs. The electrodes are spaced apart in each pixel cell, and the sustain electrode and the scan electrode are each cut away between pixel cells arranged in the row direction to provide each pixel cell with individually separated electrodes. In addition, between pixel cells adjacent to each other in the row direction, the sustain electrodes and the scan electrodes are connected to each other by means of a sustain-side bus electrode and a scan-side bus electrode, respectively. This makes it possible to provide a high luminous efficiency. Furthermore, each pixel cell is provided with a wide distance between the electrodes and thereby with a large effective opening portion. Thus, this provides only a small amount of reduction in intensity when the electrodes are spaced apart between the pixel cells arranged in the row direction in order to increase the luminous efficiency. The sustain electrodes or the scan electrodes can be connected to each other or shared between pixel cells adjacent to each other in the column direction and thus the effective opening portion can be made larger, thereby making it possible to provide a further increased intensity and luminous efficiency.
Abstract:
A plasma display panel includes a front glass substrate and a rear glass substrate coupled to each other by a sealing material coated at edges of the front and rear glass substrates, first and second electrodes disposed perpendicular to each other on opposing inner surfaces of the front and rear glass substrates facing each other, a dielectric layer formed on each of the opposing inner surfaces of the front and rear glass substrates to cover the first and second electrodes, partitions formed on an upper surface of the dielectric layer of the rear glass substrate, red, green and blue fluorescent substances coated between the partitions, and a non-light emitting zone filling portion formed by filling a non-light emitting zone existing between the outermost one of the partitions and the sealing material with a material used for one of the partitions.
Abstract:
A plasma display panel includes first and second transparent substrates provided opposing one another; first electrodes provided in parallel on the first transparent substrate, second electrodes provided in parallel on the second transparent substrate on a surface of the same opposing the first transparent substrate, the second electrodes being formed perpendicular to the first electrodes, and barrier ribs that form concave sections between the second electrodes and define discharge cells together with the concave sections. The second electrodes are formed by keeping still conductive liquid material that includes conductive particles, and allowing precipitated conductive particles to join by a heat treating process. In another aspect, at least one protrusion is formed in the each of the concave sections to divide the concave sections into a plurality of sections.