Claims
- 1. An excimer or molecular fluorine laser, comprising:
an electrode chamber connected with a gas flow vessel defining a laser tube having a laser gas mixture therein; a pair of elongated main electrodes in the electrode chamber separated by a discharge area; a preionization unit in the electrode chamber; a discharge circuit for energizing the gas mixture; a resonator for generating a laser beam; a spoiler integrated with the chamber, said spoiler being spaced from each main electrode and shaped to provide an uniform gas flow through the discharge area; and a plurality of low inductive conducting ribs connected to one of the main electrodes and crossing the gas flow, said ribs being aerodynamically shaped to provide more uniform gas flow as the gas mixture flows through openings defined between adjacent ribs.
- 2. The laser of claim 1, wherein the spoiler is positioned to inhibit dielectric breakdown between the preionization unit and one of the main electrodes.
- 3. An excimer or molecular fluorine laser, comprising:
an electrode chamber connected with a gas flow vessel defining a laser tube having a gas mixture therein; a pair of elongated main electrodes in the electrode chamber separated by a discharge area; a preionization unit in the electrode chamber; a discharge circuit for energizing the gas mixture; a resonator for generating a laser beam; a spoiler unit including a pair of opposed spoiler elements integrated with the housing and having the discharge area therebetween, each spoiler element being spaced from each main electrode and shaped to provide an aerodynamic gas flow through the discharge area; and a plurality of low inductive conducting ribs connected to one of the main electrodes and crossing the gas flow, said ribs being aerodynamically shaped to provide more uniform gas flow as the gas mixture flows through openings defined between adjacent ribs.
- 4. The laser of any of claims 1-3, wherein the spoiler is further shaped to reflect acoustic waves generated in the discharge area into the gas flow vessel to be absorbed by gas flow components therein.
- 5. The laser of any of claims 1-3, wherein the ribs are aerodynamically shaped and smoothly taper from an upstream end to a downstream end.
- 6. The laser of claim 5, wherein opposed ends of the ribs are curved.
- 7. An excimer or molecular fluorine laser, comprising:
an electrode chamber connected with a gas flow vessel defining a laser tube having a gas mixture therein; a pair of elongated main electrodes in the electrode chamber separated by a discharge area; a preionization unit in the electrode chamber; a discharge circuit for energizing the gas mixture; a resonator for generating a laser beam; and a plurality of low inductive conducting ribs connected to one of the main electrodes, said ribs being aerodynamically shaped to provide more uniform gas flow as the gas mixture flows through openings defined between adjacent ribs, and wherein at least one main electrode includes a base portion and a nipple protruding from the base portion, said nipple substantially carrying a periodic discharge current such that a discharge width is less than a width of the base portion.
- 8. The laser of claim 7, wherein the ribs are smoothly tapered from an upstream end to a downstream end.
- 9. The laser of any of claims 7 or 8, wherein opposed ends of the ribs are curved.
- 10. An excimer or molecular fluorine laser, comprising:
an electrode chamber connected with a gas flow vessel defining a laser tube having a gas mixture therein; a pair of elongated main electrodes in the electrode chamber separated by a discharge area; a preionization unit in the electrode chamber; a discharge circuit for energizing the gas mixture; a resonator for generating a laser beam; and a plurality of low inductive conducting ribs connected to one of the main electrodes and aerodynamically shaped to provide more uniform gas flow as the gas mixture flows through openings defined between adjacent ribs.
- 11. The laser of claim 10, wherein the ribs are smoothly tapered from an upstream end to a downstream end
- 12. The laser of any of claims 10 or 11, wherein opposed ends of at least some of the ribs are curved.
- 13. The laser of any of claims 10 or 11, wherein the electrode chamber is filled with a gas mixture including krypton, fluorine and neon.
- 14. The laser of any of claims 10 or 11, wherein the electrode chamber is filled with a gas mixture including argon, fluorine and one of neon and helium.
- 15. The laser of any of claims 10 or 11, wherein the electrode chamber is filled with a gas mixture including fluorine and one of neon and helium.
- 16. The laser of any of claims 10 or 11, wherein the electrode chamber is filled with a gas mixture including xenon, one of fluorine and HCl, and one of neon and helium.
PRIORITY
[0001] This patent application is a divisional application which claims the benefit or priority to parent U.S. Pat. application Ser. No. 09/453,670, filed Dec. 3, 1999, which claims the benefit of priority to U.S. provisional patent application Ser. No. 60/128,227, filed Apr. 7, 1999.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60128227 |
Apr 1999 |
US |
Divisions (1)
|
Number |
Date |
Country |
Parent |
09453670 |
Dec 1999 |
US |
Child |
09826372 |
Apr 2001 |
US |