Abstract:
The present invention discloses a plasma display panel device and a method of fabricating the same including first and second substrates (30, 39), a first electrode (31) on the first substrate (30), a second electrode (38) on the second substrate (39), a dielectric layer (33) on the first substrate (30) including the first electrode (31), a plurality of third electrodes (32) completely buried in the dielectric layer (33), a plurality of barrier ribs (37) connecting the first and second substrates formed on the second substrate (39), a UV-visible conversion layer (35) on the second substrate (39) including the second substrate between the barrier ribs, and a discharge chamber (36) where discharge occurs between the first and second substrates (30, 39), wherein the discharge chamber (36) faces toward the first electrode (31) through a single row of one or more capillaries (34) formed in the dielectric layer (33).
Abstract:
The present invention discloses a plasma display panel and a method of fabricating the same. The plasma display panel of the present invention includes a first electrode (4) on the first substrate (1), a first dielectric layer (6) on the first substrate including the first electrode, a plurality of second electrodes (7) completely buried in the first dielectric layer, a second dielectric layer (8) on the first dielectric layer including the first electrode, a third dielectric layer (12) on the second substrate (2), a plurality of UV visible photon conversion layers (3) on the third dielectric layer, a plurality of barrier ribs (10) between each of the UV visible photon conversion layers and connecting the first and second substrates, and a discharge chamber between the first and second substrates defined by the barrier ribs, wherein the first dielectric layer (6) includes at least one trench type discharge space (9) exposing a portion of the first electrode (4) to the discharge chamber.
Abstract:
A method for fabricating a PDP is disclosed. The method for fabricating a PDP comprising the steps of preparing first and second panels for connecting with each other, forming at least one electrode on the first panel, forming a dielectric layer of PbO on the first panel, sequentially forming Cr and Ni on the PbO layer as a mask material of the PbO layer, performing photolithography and lift-off processes on the Ni/Cr layers to form a mask pattern of Ni/Cr, and etching the PbO layer using the mask pattern of Ni/Cr to form at least one capillary tube within the PbO layer to expose the electrode.
Abstract:
The present invention relates to a plasma display panel and more particularly to a method of fabricating plasma display panels using a laser process. The method of fabricating a plasma display panel includes forming a first dielectric layer (22) on a substrate, forming a second dielectric layer (23) on the first dielectric layer (22), and forming at least one capillary in the second dielectric layer (23) and a protection layer on a portion of the second dielectric layer where the capillary is formed.
Abstract:
The present invention provides a plasma display panel device and a method of fabricating the same including a first electrode (3) on the first substrate (1), a second electrode (4) on the second substrate (2), a dielectric layer (7) on the second electrode (4) including the second substrate (2), a plurality of third electrodes (5) completely buried in the dielectric layer (7), a pair of barrier ribs (8) connecting the first and second substrates (1, 2) on the dielectric layer (7), and a discharge chamber (10) where discharge occurs between the first and second substrates (1, 2), wherein the discharge chamber (10) faces toward the second electrode (4) through a plurality of rows of capillaries (9), each of the rows includes one or more capillaries (9), formed in the dielectric layer (7).
Abstract:
An apparatus for driving a capillary discharge plasma display panel having first and second substrates spaced apart, a plurality of pairs of first and second electrodes arranged between the first and second substrates, a dielectric layer formed between the first and second electrodes, at least one capillary in the dielectric layer between the each pair of the first and second electrodes for generating a capillary discharge, the apparatus includes a plurality of cells selectively discharging to glow defined by the pairs of the first and second electrodes, and an address circuit for applying a triangular pulse waveform during a sustain period to stabilize the capillary discharge.
Abstract:
A method of fabricating a plasma display panel having a substrate (41) includes the steps of forming an electrode (42) on the substrate (41), forming a dielectric layer (43) on the substrate (41) including the electrode (42), forming at least one capillary (44) in the dielectric layer (43) using dry-etching, wherein the capillary (44) and the electrode (42) are separated apart by a portion of the dielectric layer (43), and sequentially removing the portion of dielectric layer (43) to expose the electrode (42) through the capillary (45).
Abstract:
The present invention discloses a plasma display panel device and a method of fabricating the same including first and second substrates, a first electrode on the first substrate, a second electrode on the second substrate, a tape material on the second substrate including the second electrode, a plurality of third electrodes completely buried in the tape material, a plurality of barrier ribs connecting the first and second substrates formed on the second substrate, a UV-visible conversion layer on the second substrate including the second substrate between the barrier ribs, and a discharge chamber where discharge occurs between the first and second substrates, wherein the discharge chamber faces toward the second electrode through a single row of one or more capillaries formed in the tape material.
Abstract:
The present invention provides a capillary electrode discharge plasma displa y panel device and method of fabricating the same including first and second substrates a first electrode on the first substrate, a second electrode on t he second substrate, a pair of barrier ribs connecting the first and second substrates, a discharge charge chamber between the first and second substrat es defined by the barrier ribs, and a dielectric layer on the first substrate including the first electrode, the dielectric layer having a capillary to provide a steady state UV emission in the discharge chamber.