Claims
- 1. An AC plasma display comprising:
- front and back substrates forming an enclosed volume;
- a first parallel electrode pattern and a second, parallel electrode pattern within said volume, said first electrode pattern and second electrode pattern positioned within a display area;
- dielectric layers covering both electrode patterns;
- a dischargeable gas in said volume;
- driver means coupled to said first and second electrode patterns for creating a spatially continuous gas discharge that extends along at least one electrode of one said electrode pattern and across said display area, said driver means energizing additional electrodes within said one electrode pattern to cause a scanning of said spatially continuous gas discharge region across said additional electrodes; and
- DC electrode means in direct electrical contact with said dischargeable gas and positioned outside of said display area, but in contact with said spatially continuous gas discharge region during said scanning, said DC electrode means acting as a capacitive reservoir for surface charge on said dielectric layers within said display area, said surface charge transferred to said DC electrode means by scanning of and conduction through said spatially continuous gas discharge region.
- 2. The AC plasma display as recited in claim 1 wherein said first parallel electrode pattern defines a series of electrodes disposed horizontally when said plasma display is mounted for user viewing, and said second parallel electrode pattern defines a series of electrodes disposed vertically when said plasma display is mounted for said user viewing, said DC electrode means positioned parallel to said vertically disposed electrodes.
- 3. The AC plasma display as recited in claim 2 wherein said driver means causes said continuous gas discharge region to scan from a top-most electrode of said horizontally disposed electrodes to a bottom-most electrode of said horizontally disposed electrodes.
- 4. The AC plasma display as recited in claim 3, wherein said DC electrode means comprise at least a pair of DC electrodes, one said DC electrode positioned on one side of said display area and disposed parallel to said vertically disposed electrodes and another DC electrode positioned on an opposing side of said display area and disposed parallel to said vertically disposed electrodes, both said DC electrodes in conductive communication with said spatially continuous gas discharge region.
- 5. The AC plasma display as recited in claim 2 wherein said driver means causes said spatially continuous gas discharge region to scan from a side-most electrode of said vertically disposed electrodes to an oppositely disposed side-most electrode of said vertically disposed electrodes.
- 6. The AC plasma display as recited in claim 5, wherein said DC electrode means comprise at least a pair of DC electrodes, one said DC electrode disposed above said display area when viewed by a user and parallel to said horizontally disposed electrodes and another DC electrode positioned below said display area when viewed by a user and parallel to said horizontally disposed electrodes, both said DC electrodes in conductive communication with said substantially continuous gas discharge region.
- 7. The AC plasma display as recited in claim 1 wherein said DC electrode means exhibits a larger electrode surface area than any individual electrode comprising said first electrode pattern and said second electrode pattern, said larger surface area enabling increased capacitive action by said DC electrode means.
- 8. The AC plasma display as recited in claim 7 further comprising:
- conductive means connecting said DC electrode means to capacitive circuit means external to said AC plasma display, said capacitive circuit providing additional capacitive storage capacity.
- 9. The AC plasma display as recited in claim 7, wherein said DC electrode means and another electrode pattern that is orthogonally oriented with respect to said one electrode pattern are both supported by one of said substrates, and a dielectric layer covers said another electrode pattern but includes an aperture that exposes said DC electrode means to said ionizable gas.
- 10. The AC plasma display as recited in claim 7 wherein said DC electrode means is covered with an oxide that both protects said DC electrode means from sputter erosion and enables conductive communication with said ionizable gas.
- 11. The AC plasma display as recited in claim 1 wherein said DC electrode means comprises at least a conductive electrode oriented in orthogonal relation to electrodes of said one electrode pattern, said conductive electrode separated from said display area by a border area, said AC plasma display further comprising:
- border electrode means positioned within said border area and oriented parallel to said DC electrode; and
- means for driving said border electrode means to create a discharge therealong when each electrode of said one electrode pattern is energized during a scan operation to create said substantially continuous gas discharge.
- 12. The AC plasma display as recited in claim 11, wherein said border electrode means comprise a plurality of electrodes that are energized by said means for driving to create said discharge during an address pulse time but not during a sustain pulse time.
Parent Case Info
This is a continuation of application Ser. No. 08/101,572 filed on Aug. 3, 1993, now abandoned.
US Referenced Citations (5)
Foreign Referenced Citations (1)
Number |
Date |
Country |
2504730 |
Sep 1975 |
DEX |
Non-Patent Literature Citations (1)
Entry |
"Improvement of Luminance and Luminous Efficiency of Surface-Discharge Color ac PDP", T. Shinoda et al., SID 91 Digest, pp. 724-727. |
Continuations (1)
|
Number |
Date |
Country |
Parent |
101572 |
Aug 1993 |
|