1. Field of the Invention
The present invention relates to a plasma display panel, and more particularly to a plasma display panel with uniform discharge characteristics.
2. Description of the Related Art
Flat panel displays (FPD), such as liquid crystal displays (LCD), organic light emitting diodes (OLED) and plasma display panels (PDP), are rapidly replacing cathode ray tubes (CRT). Plasma display panels are self-emitting, highly luminous, provide wider viewing angle, and have a simpler fabrication process. Thus they are a popular choice for industry.
A PDP is a display device employing charges accumulated by electrode discharge. Due to a variety of advantages, such as large scale, high capacity and full-color capability, the PDP has become one of the most popular flat panel displays for various applications.
The rear glass substrate 14 has a plurality of barrier ribs 28 arranged in parallel and spaced apart dividing the gap between the substrates 12 and 14 into a plurality of groups of discharge spaces 16. Each group of the discharge spaces 16 includes a red discharge space, a green discharge space, and a blue discharge space.
Additionally, the rear glass substrate 14 has a plurality of parallel longitudinal electrodes 22 positioned in parallel and between two adjacent barrier ribs 28 to serve as address electrodes, and a dielectric layer 24 is further formed to cover these lengthwise electrodes 22. Moreover, a fluorescent layer 29 is coated on the rear glass substrate 14 and the sidewalls of the barrier ribs 28 within the discharge space 16. Two adjacent barrier ribs 28, the transverse electrode 20, the longitudinal electrode 22, the discharge space 16, and the fluorescent layer 29 comprise a discharge cell 30.
In the conventional PDP structure, impurities result from formation of each element of the discharge cell 30.
Accordingly, after assembly of the PDP 10, gases and impurities reexhausted from the discharge spaces 16 in the PDP 10. During the exhaust process, however, impurities introduced in the discharge cells 30 near the exhaust vent 50. The remaining impurities degrade a discharge characteristic of the discharge cells 30 near the exhaust vent 50, to inhibiting performance thereof, due to resulting nonuniform discharge characteristics and definitions.
Therefore, it is necessary to efficiently remove impurities remaining in the PDP for preventing degradation of characteristics of the PDP from degradation.
Accordingly, an object of the present invention is to provide a plasma display panel having a buffer layer located between a display region and an exhaust vent to forcing impurities in the PDP to accumulate between the buffer layer and a sealing layer, and be successively absorbed by a getter layer. As a result, nonuniform discharge characteristics and definitions induced by impurities can be prevented.
To achieve the above objects, according to the present invention, a plasma display panel comprises parallel first and second substrates apart separated by a predetermined distance. A sealing layer is formed between the first and second substrate for bonding peripheral regions of the first and second substrates. A display region for emitting light is located in a center region of the first and second substrates. An exhaust vent is formed in the second substrate outside the display region. A buffer layer is formed on the second substrate between the exhaust vent and the display region, and a getter layer is formed on the first substrate outside the display region.
According to the present invention, the second substrate comprises a first region between the sealing layer and the buffer layer, and the getter layer can be partially or fully formed on a second region, corresponding to the first region, of the first substrate. Moreover, the getter layer can be formed on the first substrate adjacent to the second region.
The present invention also provides another plasma display panel, comprising parallel first and second substrates apart separated by a predetermined distance. A sealing layer is formed between the first and second substrate for bonding peripheral regions of the first and second substrates. A display region for emitting light is located in a center region of the first and second substrates. An exhaust vent is formed in the second substrate outside the display region.
A buffer layer is formed on the second substrate between the exhaust vent and the display region, wherein the second substrate comprises a first region between the sealing layer and the buffer layer, and the first substrate comprises a second region corresponding to the first region. An active protective layer is formed on the display region of the first substrate extending to the second region.
According to the present invention, the active protective layer can be formed on the display region of the first substrate extending in the second region. The plasma display panel can further comprise a getter layer formed partially or completely on the second region, wherein the getter layer can be adjacent to the active protective layer.
A detailed description is given in the following embodiments with reference to the accompanying drawings.
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:
FIGS. 6 to 10b are partial perspective views of the PDPs according to the present invention.
According to the present invention, the plasma display panel has a buffer layer located between a display region and an exhaust vent to forcing impurities in the PDP to accumulate between the buffer layer and a sealing layer, and successively absorbed by a getter layer. Therefore, the discharge characteristics of the PDP according to the present invention can be improved due to the increased purity of the discharge gas.
While a PDP is used to illustrate the invention, numerous modifications and variations will be apparent to those skilled in the art.
As shown in
According to the present invention, the buffer layer 160 can be bar-shaped as shown in
In the present invention, since the getter layer 162 and the protective layer 126 can be the same material, such as MgO, an active protective layer 132 can be deposited on the first substrate 102, substituting for the getter layer 162 and the protective layer 126 in one step, as shown in
Accordingly, the PDP of the present invention comprising a buffer layer and a getter layer can effectively remove impurities from discharge spaces, such that, compared with conventional PDPs, unusual discharge characteristics and nonuniform definitions induced by impurities can be prevented. In addition, since the getter layer can be the same material as the protective layer and formed in the same step, the performance of the PDP according to the present invention can be improved without increasing process complexity or cost.
While the invention has been described by way of example and in terms of the preferred embodiments, it is to be understood that the invention is not limited to the disclosed embodiments. To the contrary, it is intended to cover various modifications and similar arrangements (as would be apparent to those skilled in the art). Therefore, the scope of the appended claims should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements.
Number | Date | Country | Kind |
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92131495 | Nov 2003 | TW | national |