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A plasma display panel according to an embodiment of the present invention includes barrier ribs for partitioning off discharge cells, wherein edge parts of the barrier ribs are lower than central parts of the barrier ribs.
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[0001] 1. Field of the Invention
[0002] The present invention relates to a plasma display panel, and more particularly to a plasma display panel that is adaptive for preventing mis-discharge from being generated in adjacent cells in driving the PDP and for improving picture quality.
[0003] 2. Description of the Related Art
[0004] Recently, there have been developed various flat display panels that can reduce their weight and bulk, which was the disadvantage of a cathode ray tube CRT. Such flat display panels include liquid crystal displays LCD, field emission displays FED, plasma display panels PDP, electro-luminescence EL display device and so on.
[0005] The PDP among these display devices takes advantage of gas discharge and has an advantage of being made into a large-dimensioned panel easily. A three-electrode AC surface discharge PDP is a typical PDP, which includes three electrodes as shown in
[0006] Referring to
[0007] The first and second electrodes
[0008] There are formed an upper dielectric layer
[0009] There are formed a lower dielectric layer
[0010] The phosphorus
[0011] In the related art PDP, the first and second electrodes are formed opposite to each other in each discharge cell as in
[0012] The discharge cells are initialized when the reset pulse is applied to the first electrode
[0013] The first and second sustain pulses are alternately applied to the first and second electrodes
[0014] On the other hand, in the related art PDP, the first and second electrodes
[0015] Referring to
[0016] The PDP according to the embodiment of the related art includes an address electrode
[0017] The first and second electrodes
[0018] The first auxiliary electrode
[0019] The address electrode
[0020] Further, on the upper surface of the POP according to another embodiment of the related art, there are the second auxiliary electrodes
[0021] The wall charges generated upon the plasma discharge are accumulated through the upper dielectric layer on the first dielectric layer
[0022] On the lower surface of the PDP, there are formed a first to a third address electrode
[0023] In the PDP according to the embodiment of the related art, the upper part of the barrier ribs
[0024] FIGS.
[0025] Referring to FIGS.
[0026] Further, in FIGS.
[0027] Referring to FIGS.
[0028] Comparing
[0029]
[0030] Referring to
[0031] When comparing the strength of the maximum electric field induced to the off-cell including the third address electrode
[0032] Referring to
[0033] Referring to
[0034] As can be seen in FIGS.
[0035] When observing though
[0036]
[0037] Referring to
[0038]
[0039] Referring to
[0040] Accordingly, it is an object of the present invention to provide a plasma display panel that is adaptive for preventing mis-discharge from being generated in adjacent cells in driving the PDP.
[0041] It is another object of the present invention to provide a plasma display panel that is adaptive for reducing crosstalk.
[0042] In order to achieve these and other objects of the invention, a plasma display panel according to an aspect of the present invention includes a characteristic that edge parts of the barrier ribs are lower than central parts of the barrier ribs.
[0043] The discharge cells include red, green and blue discharge cells, being arranged in a delta shape.
[0044] The barrier ribs include first barrier ribs; and second barrier ribs coupled with the first barrier ribs vertically.
[0045] Herein, at least parts of the barrier ribs have their upper end rounded.
[0046] Herein, at least parts of the barrier ribs have their upper end edge stepped.
[0047] Herein, at least parts of the barrier ribs have a concave upper end edge.
[0048] The plasma display panel further includes a plurality of first electrodes formed on a first substrate, a plurality of second electrodes formed on a second substrate opposite to the first substrate with a discharge space therebetween to cross the first electrodes; a first dielectric layer formed on the first substrate to cover the first electrodes; a passivation film formed on the first dielectric layer; a second passivation layer formed on the second substrate to cover the second electrodes; and a phosphorus formed on the second dielectric layer and the barrier ribs.
[0049] The first electrode includes a metal bus electrode; and a transparent electrode connected to the metal bus electrode and having its width wider than the metal bus electrode.
[0050] The transparent electrode includes a main electrode; and an auxiliary electrode extended from the main electrode toward the discharge cell, and wherein the auxiliary electrode is extended from both sides of the main electrode in a zigzag.
[0051] The second electrode includes a main electrode; and an auxiliary electrode extended from both sides of the main electrode and having at least part thereof overlap the first electrode.
[0052] The barrier ribs are formed in a stripe shape, and central parts thereof are convex.
[0053] The barrier ribs are formed in a stripe shape, and an upper end edge thereof is stepped.
[0054] A plasma display panel according to another aspect of the present invention includes a characteristic that a dielectric constant value is different in parts of the barrier ribs.
[0055] Herein, edge parts of the barrier ribs are lower than central parts of the barrier ribs.
[0056] The barrier ribs include first barrier ribs; and second barrier ribs coupled with the first barrier ribs vertically.
[0057] Herein, any one of the first and second barrier ribs has a dielectric constant value of its lower end less than that of its upper end.
[0058] The dielectric constant value of the lower end of any one of the first and second barrier ribs is less than
[0059] A plasma display panel according to still another aspect of the present invention includes a characteristic that upper ends of the barrier ribs are opposite to the a substrate with an air gap therebetween, and the air gap between upper end edges of the barrier ribs and the first substrate is different from the air gap between central parts of the barrier ribs and the first substrate.
[0060] Herein, a dielectric constant value is different in parts of the barrier ribs.
[0061] Herein, edge parts of the barrier ribs are lower than central parts of the barrier ribs.
[0062] A plasma display panel according to still another aspect of the present invention includes a characteristic that upper ends of the barrier ribs are opposite to a first substrate with an air gap therebetween, a dielectric constant value is different in parts of the barrier ribs, and edge parts of the barrier ribs are lower than central parts of the barrier ribs.
[0063] These and other objects of the invention will be apparent from the following detailed description of the embodiments of the present invention with reference to the accompanying drawings, in which:
[0064]
[0065]
[0066]
[0067]
[0068] FIGS.
[0069]
[0070]
[0071]
[0072]
[0073]
[0074]
[0075]
[0076]
[0077]
[0078]
[0079] With reference to FIGS.
[0080] Referring to
[0081] The PDP according to the embodiment of the present invention includes an address electrode
[0082] The first and second electrodes
[0083] The first auxiliary electrode
[0084] The second auxiliary electrode
[0085] The address electrode
[0086] Further, on the upper surface of the PDP according to the first embodiment of the present invention, there are the second auxiliary electrodes
[0087] The wall charges generated upon the plasma discharge are accumulated through the upper dielectric layer on the first dielectric layer
[0088] On the lower surface of the PDP, there are formed a first to a third address electrode
[0089] There is formed a phosphorus (not shown) on the surface of the second dielectric layer
[0090] The barrier ribs
[0091] The upper end of the barrier ribs
[0092] On the other hand, on the upper surface of the PDP according to the second embodiment of the present invention, as shown in
[0093] On the lower surface of the PDP, there are formed a first to a third address electrode
[0094] There is formed a phosphorus (not shown) on the surface of the second dielectric layer
[0095] The barrier ribs
[0096] The upper end of the barrier ribs
[0097]
[0098] Firstly, the width of the second auxiliary electrodes
[0099] Further, the first-second auxiliary electrode
[0100] In this case, the strength of the maximum electric field of the cell including the third address electrode
[0101] On the other hand, on the upper surface of the PDP according to the third embodiment of the present invention, as shown in
[0102] On the lower surface of the PDP, there are formed a first to a third address electrode
[0103] There is formed a phosphorus (not shown) on the surface of the second dielectric layer
[0104] The barrier ribs
[0105] In the horizontal barrier ribs
[0106] Accordingly, all the voltage applied to the second address electrode
[0107] Further, as explained in
[0108] On the other hand, referring to
[0109] The upper electrodes include a pair of sustain electrodes (not shown) formed parallel to the each other on the upper plate. The upper dielectric layer has wall charges accumulated upon plasma discharge, and a passivation film prevents the damage of the sustain electrode pair and the upper dielectric layer caused by the sputtering of gas ion upon the plasma discharge, thus lengthening the life-time of the PDP and acting to increase the emission efficiency of the secondary electron.
[0110] The address electrode
[0111] The barrier ribs
[0112] The barrier ribs
[0113] The upper end of the barrier ribs
[0114] The surface of the lower dielectric layer
[0115] On the other hand, in the PDP according to the embodiment of the present invention, the barrier ribs
[0116] In this case, in the PDP according to the embodiment of the present invention, the upper end of the barrier ribs
[0117] On the other hand, in the PDP according to the embodiment of the present invention, the lower end of the barrier ribs
[0118] Accordingly, all the voltage applied to the address electrode is almost applied in the area that is made up of the material with the low dielectric constant. Because of this, it represents that equipotential surfaces are concentrated around the address electrode and that the strength of the electric field is strong around the address electrode. Accordingly, the probability of generating mis-discharge with the adjacent discharge cell becomes lessened.
[0119] On the other hand, in the PDP according to the embodiment of the present invention, the barrier ribs
[0120] As described above, the plasma display panel according to the present invention has the upper end of the horizontal barrier ribs rounded or chamfered to prevent mis-discharge between the adjacent cells.
[0121] Further, the plasma display panel according to the present invention has the lower end of the horizontal barrier ribs near to the address electrode made up of a material with a low dielectric constant to prevent the crosstalk between the adjacent cells and to improve the picture quality.
[0122] Further, the plasma display panel according to the present invention has the air gap formed inside the lower part of the horizontal barrier ribs to prevent the mis-discharge, which is generated by the pulse applied to the electrode of the neighboring off-cell, and to improve the picture quality.
[0123] Although the present invention has been explained by the embodiments shown in the drawings described above, it should be understood to the ordinary skilled person in the art that the invention is not limited to the embodiments, but rather that various changes or modifications thereof are possible without departing from the spirit of the invention. Accordingly, the scope of the invention shall be determined only by the appended claims and their equivalents.