The present invention relates to a plasma display panel. More particularly, the present invention relates to a closed cell type alternating current (AC) plasma display panel capable of improving the address margin.
Plasma display panels (PDPs) are classified depending on how the discharge cells thereof are arranged. Two main types of PDPs are strip PDPs, in which gas discharge spaces are arranged in a strip pattern, and closed cell PDPs, in which individual cells are defined by enclosed partition barrier ribs.
Referring to
Referring to
The above-described configuration, however, has a problem in that the discharge starting voltage of the green discharge cell 91g is different from that of the other two discharge cells 91b and 91r.
In order to perform a stable write operation, the write voltage applied to the address electrodes 88 must change depending on the colors of the discharge cells in accordance with the complete lighting write voltage of the discharge cells of respective colors. This complicates the voltage control, however, and increase the cost of the apparatus.
Embodiments of the invention provide a cell structure for an AC plasma display panel with equivalent complete lighting write voltages of the R, G, and B discharge cells to improve the address margin of the panel.
Embodiments of the present invention further provide different addressing electrode areas of respective colors for an AC plasma display panel with equivalent complete lighting write voltages of the discharge cells to improve the address margin of the panel.
To achieve these and other advantages, embodiments of the invention provide a closed cell type AC plasma display panel, comprising a first substrate and a second substrate opposing the first substrate. The first substrate and the second substrate are provided with a predetermined gap therebetween. Barrier ribs are interposed between the first substrate and the second substrate. The barrier ribs define a plurality sets of a first, a second and a third discharge cell. A plurality of address electrodes are formed on the first substrate in the first, the second, and the third discharge cells along a first direction. A plurality of sustain electrodes are formed on the second substrate in the first, the second, and the third discharge cells along a second direction, wherein each area of the sustain electrodes in the first, the second, and the third discharge cells are substantially equal, and at least one area of the address electrodes in the first, the second, and the third discharge cells is different from other areas of the address electrodes in the first, the second, and the third discharge cells.
It is understood that the first, the second and the third discharge cell sets corresponding to the first color, the second color, and the third color, and the discharge cells sets can be arranged in triangular shape. Each of the present individual discharge spaces is formed in a quadrangular shape or hexagonal shape.
The present invention can be more fully understood by reading the subsequent detailed description in conjunction with the examples and references made to the accompanying drawings, wherein:
The embodiment of the invention provides a closed cell type AC plasma display panel.
Referring to
Barrier ribs 130 are disposed at a predetermined height between rear substrate 102 and front substrate 101 in a ladder-shaped pattern along the first direction (X). Barrier ribs 130 define a plurality of discharge spaces 140R, 140G, and 140B. In the present embodiment of the invention, each set of discharge spaces 140R, 140G, and 140B is arranged substantially in a first direction, while each of the individual discharge spaces 140R, 140G, and 140B is formed in a quadrangular shape.
A plurality of address electrodes 110 is formed on rear substrate 102 along the second direction (Y). Address electrodes 110 are formed both within and outside of discharge spaces 140R, 140G, and 140B. Also, a first dielectric layer 106 is formed over the surface of rear substrate 102 covering address electrodes 110.
The address electrodes 110 include small electrode portions 110a in Y direction, and large electrode portions 110b formed within discharge spaces 140R, 140G, and 140B. The widths of the large electrode portions 10b vary with different discharge spaces 140R, 140G, and 140B and denote as WR, WG, WB, respectively.
A plurality of sustain electrodes 120 are formed on front substrate 101 along direction X. Sustain electrodes 120 include main electrode portions 120, which are positioned corresponding to portions of barrier ribs 130 extending along direction X, and branch electrode portions 124, extending from main electrode portions 120 into areas corresponding to formation of discharge spaces 140R, 140G, and 140B. Two branch electrode portions 124 extend from two main electrode portions 120 of different sustain electrodes in each discharge space 140R, 140G, and 140B. Branch electrode portions 124 include first electrode portion 124a that extends perpendicularly from main electrode portions 120, and second electrode portion 124b that enlarges on a distal end of first electrode portion 124a extending parallel to the main electrode portions 120. Within one discharge space, a gap GP is formed between two second electrode portions 124b extending into discharge space from opposite directions, that is, from two different main electrode portions 120.
In the present embodiment, a bus electrode can be formed on the main electrode portions 120. The bus electrode comprises an opaque material, such as Ag metal or like, and the sustain electrodes 120 comprise a transparent material, such as indium tin oxide (ITO) or like. Referring to
Phosphor layers 108R, 108G, and 108B are formed in discharge spaces 140R, 140G, and 140B, respectively. Phosphor layers 108R, 108G, and 108B cover first dielectric layer 106 and are formed extending up the side-walls of barrier ribs 130. In present embodiment, BaMgAl10O17:Eu is used as the blue phosphor 108B, Zn2SO4:Mn is used as the green phosphor 108G, and (Y2Gd)BO3:Eu is used as the blue phosphor 108B.
In
The widths WR, WG, and WB are made different depending on the material properties of the R, G, and B phosphor layers 140R, 140G, and 140B. In present embodiment of the invention, widths WR, WG, and WB of large electrode portions 110b for the R. G, and B pixels, respectively, satisfy the following condition.
WB≦WR≦WG.
The width WG of the large electrode portion 110b for the G pixel is made larger than the widths WR and WB of large electrode portions 10b for the R pixel and the G pixel, respectively, due to the creation of wall discharges on the phosphor layers by application of the write voltage during an address period. The creation of wall charges determines lighting of discharge cells in a sustaining period. As such, the write voltage of G phosphor layer 108G exceeds the write voltages of R and B phosphor layers 108R and 108B. More specifically, by varying the widths WR, WG, and WB of large electrode portions 10b, the address margins of the R, G, and B pixels can be improved.
The shape of large electrode portions 10b of address electrodes 110 is not limited to a quadrangular shape and can be formed in a circular shape 110bC as shown in
In the present embodiment, since discharge cells of all colors have substantially the same complete lighting write voltages, with increased address margins, write operations among the discharge cells of all colors during sustaining period are uniform, thus preventing display flickering, erroneous write operations and improving the address margins and voltage margins during the sustaining period in the panel. This indicates that a stable write operation (address operation) can be achieved as shown in
The configurations of discharge cells R, G, and B of present embodiments of the invention are not limited to a linear sequence and can be formed in triangular arrangement, while each of the individual discharge spaces R, G, and B is formed in a quadrangular shape as shown in
A plurality of discharge cells 240R, 240G, 240B are defined by sets of barrier ribs, each set forming a substantially triangular arrangement (i.e., delta-nabla structure) sequence to realize a closed type PDP. Each discharge cell is independently controlled to display predetermined images, and each discharge cell is quadrangular shape.
Referring to
Branch electrode portions 224 include first electrode portion 224a that extends perpendicularly from main electrode portions 220, and second electrode portion 224b that enlarges on a distal end of first electrode portion 224a to extend parallel to main electrode portions 220. Within one discharge space, a gap GP is formed between two second electrode portions 224b extending into the discharge space from opposite directions, that is, from two different main electrode portions 220.
The widths WR, WG, and WB are made different depending on the material properties of the R, G, B phosphor layers 240R, 240G, and 240B. In the present embodiment of the invention, the widths WR, WG, and WB of large electrode portions 210b for the R, G, and B pixels, respectively, satisfy the following condition.
WB≦WR≦WG.
The width WG of the large electrode portion 210b for the G pixel is made larger than widths WR and WB of large electrode portions 210b for the R pixel and the B pixel, respectively, due to the creation of wall discharges on the phosphor layers by application of the write voltage during the address period. The creation of wall charges determines the lighting of discharge cells in the sustaining period. As such, the write voltage of G phosphor layer exceeds the write voltages of R and B phosphor layers. More specifically, by varying the widths WR, WG, and WB of large electrode portions 110b, the address margins of the R, G, and B pixels can be improved.
The shape of large electrode portions 110b of address electrodes 110 is not limited to a quadrangular shape and can be formed in a circular shape 110bC as shown in
In the present embodiment, since discharge cells of all colors have substantially the same complete lighting write voltages, with increased address margins, write operations among the discharge cells of all colors during the sustaining period are uniformed, thus preventing display flickering, erroneous write operations, and improving address margins and voltage margins during the sustaining period in the panel. This indicates that a stable write operation (address operation) can be achieved as shown in
A plurality of discharge cells 340R, 340G, 340B are defined by sets of barrier ribs, each set forming a substantially hexagonal (i.e., honeycomb structure) sequence to realize a closed type PDP. Each discharge cell is independently controlled to display predetermined images.
Referring to
Branch electrode portions 324 include first electrode portion 324a that extends perpendicularly from main electrode portions 320, and second electrode portion 324b that enlarges on a distal end of first electrode portion 324a to extend parallel to main electrode portions 320. Within one discharge space, a gap GP is formed between two second electrode portions 324b extending into the discharge space from opposite directions, that is, from two different main electrode portions 320.
The widths WR, WG, and WB are made different depending on the material properties of the red (R), green (G), and blue (B) phosphor layers 340R, 340G, and 340B. In the present embodiment of the invention, the widths WR, WG, and WB of the large electrode portions 310b for the R, G, and B pixels, respectively, satisfy the following condition.
WB≦WR≦WG.
The width WG of the large electrode portion 310b for the G pixel is made larger than widths WR and WB of large electrode portions 310b for the R pixel and the B pixel, respectively, due to the creation of wall discharges on the phosphor layers by application of the write voltage during an address period. The creation of wall charges determines the lighting of discharge cells in the sustaining period. As such, the write voltage of G phosphor layer exceeds the write voltages of R and B phosphor layers. More specifically, by varying the widths WR, WG, and WB of large electrode portions 310b, the address margins of the R, G, and B pixels can be improved.
The shape of large electrode portions. 110b of address electrodes 110 is not limited to a quadrangular shape and can be formed in a circular shape 110bC as shown in
In present embodiment, since discharge cells of all colors have substantially the same complete lighting write voltages, with increased address margins, write operations among the discharge cells of all colors during sustaining period are uniform, thus preventing display flickering, erroneous write operations, and improving the address margins and voltage margins during the sustaining period in the panel. This indicates that a stable write operation (address operation) can be achieved as shown in
While the invention has been particularly shown and described with reference to preferred embodiments, it will be readily appreciated by those of ordinary skill in the art that various changes and modifications may be made without departing from the spirit and scope of the invention. It is intended that the claims be interpreted to cover the disclosed embodiment, those alternatives, which have been discussed above, and all equivalents thereto.
Number | Date | Country | Kind |
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93114222 | May 2004 | TW | national |