Claims
- 1. A molecular fluorine laser system emitting a narrow bandwidth laser beam and having efficient line-selection of a main line λ1 of a plurality of closely-spaced lines around 157 nm, comprising:
a discharge chamber filled with a laser gas including molecular fluorine and a buffer gas; a plurality of electrodes within the discharge chamber and connected to a discharge circuit for energizing the molecular fluorine; and a resonator including the discharge chamber for generating a laser beam around 157 nm, said resonator further including: a solid element comprising MgF2 and generating a transmission spectrum along an optical path of said beam having an intensity maximum at or near said main line λ1 and an intensity minimum at or near a secondary line λ2 of said plurality of closely-spaced lines to suppress said secondary line.
- 2. A molecular fluorine laser system emitting a narrow bandwidth laser beam and having efficient line-selection of a main line λ1 of a plurality of closely-spaced lines around 157 nm, comprising:
a discharge chamber filled with a laser gas including molecular fluorine and a buffer gas; a plurality of electrodes within the discharge chamber and connected to a discharge circuit for energizing the molecular fluorine; and a resonator including the discharge chamber for generating a laser beam, said resonator further including: a solid element comprising a birefringent bulk material, and said solid element generating a transmission spectrum along an optical path of said beam and having an intensity maximum at or near said main line λ1 and an intensity minimum at or near a secondary line λ2 of said plurality of closely-spaced lines to suppress said secondary line.
- 3. The laser system of claim 2, wherein said birefringent bulk material is MgF2.
- 4. The laser system of claim 3, wherein said birefringent bulk material is a plate disposed at an angle offset from a direction of an incident beam for birefringently selecting said main line λ1.
- 5. The laser system of claim 4, wherein said birefringent bulk material produces the intensity maximum and minimum.
- 6. A molecular fluorine laser system emitting a narrow bandwidth laser beam and having efficient line-selection of a main line λ1 of a plurality of closely-spaced lines around 157 nm, comprising:
a discharge chamber filled with a laser gas including molecular fluorine and a buffer gas; a plurality of electrodes within the discharge chamber and connected to a discharge circuit for energizing the molecular fluorine; and a resonator including the discharge chamber for generating a laser beam, said resonator further including: a solid element comprising a material which transmits VUV light, said solid element for generating a transmission spectrum along an optical path of said beam and having a transmission maximum at or near said main line λ1 and a transmission minimum at or near a secondary line λ2 of said plurality of closely-spaced lines to suppress said secondary line.
- 7. The laser system of claim 6, wherein said solid element comprises MgF2.
- 8. The laser system of claim 7, wherein said solid element comprises CaF2.
- 9. A molecular fluorine laser system emitting a narrow bandwidth laser beam and having efficient line-selection of a main line λ1 of a plurality of closely-spaced lines around 157 nm, comprising:
a discharge chamber filled with a laser gas including molecular fluorine and a buffer gas; a plurality of electrodes within the discharge chamber and connected to a discharge circuit for energizing the molecular fluorine; and a resonator including the discharge chamber for generating a laser beam, said resonator further including: a solid element having a reflective surface for reflecting said beam as a resonator reflector, and said solid element having a transmission maximum at or near said main line λ1 and a transmission minimum at or near a secondary line λ2 of said plurality of closely-spaced lines to suppress said secondary line.
- 10. A molecular fluorine laser system emitting a narrow bandwidth laser beam and having efficient line-selection of a main line λ1 of a plurality of closely-spaced lines around 157 nm, comprising:
a discharge chamber filled with a laser gas including molecular fluorine and a buffer gas; a plurality of electrodes within the discharge chamber and connected to a discharge circuit for energizing the molecular fluorine; and a resonator including the discharge chamber for generating a laser beam, said resonator further including: a solid element having a reflective surface for reflecting said beam as a resonator reflector, and said solid element having a transmission maximum at or near said main line λ1 and a transmission minimum at or near a secondary line λ2 of said plurality of closely-spaced lines to suppress said secondary line, said solid element for reflecting said beam as a highly reflective resonator reflector.
- 11. A molecular fluorine laser system emitting a narrow bandwidth laser beam and having efficient line-selection of a main line λ1 of a plurality of closely-spaced lines around 157 nm, comprising:
a discharge chamber filled with a laser gas including molecular fluorine and a buffer gas; a plurality of electrodes within the discharge chamber and connected to a discharge circuit for energizing the molecular fluorine; and a resonator including the discharge chamber for generating a laser beam, said resonator further including:
one or more wavelength selection optics comprising CaF2 for selecting one or more of said plurality of closely-spaced lines as an output emission of said laser.
- 12. A molecular fluorine laser, comprising:
a discharge chamber containing a laser active gas and a pair of spaced-apart electrodes for generating a spectral band including a plurality of closely-spaced spectral lines in a wavelength range between 157 nm and 158 nm; an optical resonator; and one or more wavelength selection optics including a birefringement plate for selecting one or more of said plurality of closely-spaced spectral lines as an output emission of said laser.
- 13. The laser of claim 12, wherein said birefringement plate is located at one end of the discharge chamber, said plate being arranged as an optical window sealing the discharge chamber, said plate having a thickness selected based upon refractive indices of said plate such that fewer than all of the plurality of closely-spaced spectral lines is transmittable through said plate.
- 14. The laser of claim 13, wherein the birefringement plate is oriented at Brewster's angle to the optical axis of the resonating band.
- 15. The laser of claim 12, wherein at least a portion of said birefringent plate is in contact with the laser active gas.
- 16. The laser of claim 12, wherein said birefringent plate has a thickness selected based upon refractive indices of said plate such that fewer than all of the plurality of spectral lines is transmittable through said plate.
- 17. The laser of claim 12, wherein said birefringent plate comprises a MgF2-crystal.
- 18. The laser of claim 12, wherein the birefringent plate has two coplanar surfaces each aligned approximately at Brewster's angle to the optical axis of the optical arrangement.
- 19. The laser of claim 12, further comprising an resonator reflector mirror separated from the window by a non-photoabsorbing medium.
- 20. The laser of claim 19, wherein the non-photoabsorbing medium is selected from the group of media consisting of inert gases and an evacuated space.
- 21. The laser of claim 12, further comprising a second plate having an optical thickness substantially equal to an integral multiple of optical thicknesses of the first plate.
- 22. The laser of claim 12, further comprising a second birefringent plate adjacent to and twice as thick optically as said first plate.
- 23. The laser of claim 22, wherein the second plate comprises a MgF2 crystal.
- 24. The laser of claim 23, wherein the second plate has two coplanar surfaces each forming a Brewster's angle with the optical axis of the optical arrangement.
- 25. The laser of claim 24, wherein said second plate is a window sealing the discharge chamber.
- 26. The laser of claim 12, further comprising means for polarizing a beam of light when both entering and exiting said first plate.
- 27. The laser of claim 26, wherein said polarizing means comprises a first polarizer and a second polarizer, said first and second polarizers located on opposite optical sides of said plate.
- 28. A method for selecting fewer than all of multiple spectral lines around 157 nm of an molecular fluorine laser including a discharge chamber and a resonator, using an optical arrangement including a birefringent plate, comprising the steps of:
selecting said birefringent plate to have a thickness and refractive indices such that fewer than all of the multiple spectral lines around 157 nm are substantially transmittable through said plate; adjusting the angular orientation of said plate to select a desired line; and directing an emission of light from said laser through said birefringent plate.
- 29. The method of claim 28, further comprising the step of arranging said plate within the resonator as a window at a first end of the discharge chamber of the laser enclosing the active gas volume of the laser;
- 30. The method of claim 28, wherein the birefringent plate selecting step further includes the step of selecting a plate comprising MgF2.
- 31. The method of claim 28, wherein the adjusting step includes adjusting the angular orientation of said plate such that the one selected line is at a wavelength of 157.629 nanometers, light of wavelength 157.523 nanometers not being transmittable through said plate at said angular orientation.
- 32. A molecular fluorine laser having two closely-spaced emission lines around 157 nm wherein one of the two lines is selected by an optical arrangement, comprising:
means for birefringently selecting said one of said two spectral emission lines of said F2-excimer laser around 157 nm; and means for producing a collimated beam of said one selected spectral line of laser light.
- 33. An optical arrangement for selecting one of two closely-spaced spectral lines around 157 nanometers of an F2-excimer laser including a discharge chamber, an optical resonator and a laser gas volume, the improvement comprising:
a Brewster window within the resonator, said window for enclosing the laser gas volume, and for birefringently selecting said one of said two closely-spaced spectral lines around 157 nanometers of said molecular fluorine laser.
PRIORITY
[0001] This Application is a 37 C.F.R. 1.53(b) divisional application which claims the benefit of priority to U.S. patent application Ser. No. 09/317,695, filed May 24, 1999, which claims the benefit of priority to U.S. provisional patent applications No. 60/155,188, filed Jun. 4, 1998, and 60/126,435, filed Aug. 18, 1998.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60155188 |
Jun 1998 |
US |
|
60126435 |
Aug 1998 |
US |
Divisions (1)
|
Number |
Date |
Country |
Parent |
09317695 |
May 1999 |
US |
Child |
09925040 |
Aug 2001 |
US |