IP Library Granted Patent US 7,034,322
Granted Patent B2
US 7,034,322 · App. 09/877,329 · Granted Apr 25, 2006

Fluid jet electric discharge source

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Quick Facts
Patent No.
US 7,034,322
App. No.
09/877,329
Granted
Apr 25, 2006
Kind
B2
Abstract

A fluid jet or filament source and a pair of coaxial high voltage electrodes, in combination, comprise an electrical discharge system to produce radiation and, in particular, EUV radiation. The fluid jet source is composed of at least two serially connected reservoirs, a first reservoir into which a fluid, that can be either a liquid or a gas, can be fed at some pressure higher than atmospheric and a second reservoir maintained at a lower pressure than the first. The fluid is allowed to expand through an aperture into a high vacuum region between a pair of coaxial electrodes. This second expansion produces a narrow well-directed fluid jet whose size is dependent on the size and configuration of the apertures and the pressure used in the reservoir. At some time during the flow of the fluid filament, a high voltage pulse is applied to the electrodes to excite the fluid to form a plasma which provides the desired radiation; the wavelength of the radiation being determined by the composition of the fluid.

Claims (21)

1. An electrical discharge system for generating radiation, comprising:

an electrode system comprising first and second coaxial electrodes, wherein the electrodes each have a concentric aperture therethrough;

a fluid supply system, comprising a first and a second reservoir in fluid communication through an aperture, wherein the first reservoir is at a higher pressure than the second reservoir, arranged to inject a fluid through the aperture in the first electrode thereby forming an unconfined fluid filament between the electrodes, wherein the fluid filament is a liquid or a gas having a density of at least about 10 16 –10 17 /cm 3 on the axis of the filament; and

electrical supply means connected to the electrode system.

2. The electrical discharge system of claim 1 , wherein the fluid comprises more than one species.

3. An electrical discharge system for producing extreme ultraviolet radiation, comprising:

an electrode system comprising first and second coaxial electrodes, wherein the electrodes each have a concentric aperture therethrough;

a fluid supply system, comprising a first and a second reservoir in fluid communication through an aperture, wherein the first reservoir is at a higher pressure than the second reservoir, arranged to inject a fluid through the aperture in the first electrode thereby forming an unconfined fluid filament between the electrodes, wherein the fluid filament is a liquid or a gas at a density of at least about 10 16 –10 17 /cm 3 on the axis of the filament and wherein the fluid emits extreme ultraviolet as a plasma; and electrical supply means connected to the electrode system.

4. The electrical discharge system of claim 3 , wherein the fluid comprises more than one species.

5. The electrical discharge system of either of claims 1 or 3 , wherein the electrode system is maintained at a lower pressure than the fluid supply system.

6. The electrical discharge system of either of claims 1 or 3 , wherein the electrical supply means provides a voltage of less than about 100 kV.

7. The electrical discharge system of either of claims 1 or 3 , wherein the electrical supply means provides a current of less than about 50 kA.

8. The electrical discharge system of claim 7 , wherein the peak current is between about 5–10 kA.

9. A method for producing radiation in the extreme ultraviolet wavelength region, comprising:

providing an electrode system comprising a first an a second electrode, wherein the electrodes are disposed coaxially and wherein said first and second electrodes each have a concentric aperture therethrough;

expanding a fluid from a fluid system comprising a first and a second reservoir in fluid communication through an aperture, wherein the first reservoir is at a higher pressure than the second reservoir, through the aperture concentric to form an unconfined filament, wherein the fluid is at a density of at least about 10 16 – 10 17 /cm 3 on the axis of the filament;

directing the fluid filament between the coaxial electrodes; and

subjecting the fluid filament to a high voltage to generate a plasma.

10. The method of claim 9 , wherein the fluid is a gas including xenon or krypton.

11. The method of claim 9 , wherein the fluid comprises more than one species.

12. The method of claim 9 , wherein radiation from the plasma is extracted from the discharge source along the filament axis or 90° thereto.

Assignments (3)
CHANGE OF NAME Recorded Aug 28, 2017
From: SANDIA CORPORATION
To: NATIONAL TECHNOLOGY & ENGINEERING SOLUTIONS OF SANDIA, LLC
Reel/Frame 043696/0143 →
CONFIRMATORY LICENSE Recorded Jul 23, 2002
From: SANDIA NATIONAL LABORATORY
To: ENERGY, U.S. DEPARTMENT OF
Reel/Frame 013139/0331 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 19, 2001
From: BENDER, HOWARD A., III
To: EUV LLC
Reel/Frame 012250/0317 →