Claims
- 1. A method of controlling a spectral parameter of an output beam from an excimer or molecular fluorine laser including a laser active medium, a resonator, an output coupler, a processor, an energy detector, a spectrometer and a wavelength selection unit, comprising the steps of:
operating the excimer or molecular fluorine laser including an optical component having a curved surface within the resonator for providing the output beam with an improved spectral purity; measuring a spectral parameter of the beam with a spectrometer, the spectral parameter being selected from the group consisting of spectral purity and bandwidth; sending signals to the processor based on the measuring of the spectral parameter; and adjusting the optical component within the resonator for controlling the spectral parameter of the beam based on the spectral parameter signals sent to the processor.
- 2. A method of controlling a spectral parameter of an output beam from an excimer or molecular fluorine laser including a laser active medium, a resonator, an output coupler, one or more processors, an energy detector, a spectrometer and a wavelength selection unit, comprising the steps of:
operating the excimer or molecular fluorine laser including an optical component having a curved surface within the resonator for providing the output beam with improved spectral purity; measuring beam energy and a spectral parameter with the energy detector and spectrometer, respectively, the spectral parameter being selected from the group consisting of spectral purity and bandwidth; sending signals to the one or more processors indicative of the beam energy and spectral parameter; and adjusting the optical component within the resonator for controlling the spectral parameter of the beam based on the spectral parameter signals sent to at least one of the one or more processors.
- 3. The method of any of claims 1 or 2, wherein said adjusting of said optical component further for adapting a divergence of the output beam.
- 4. The method of any of claims 1 or 2, wherein the optical component includes a refractive portion which refracts the beam.
- 5. The method of any of claim 1 or 2, further comprising the step of adjusting a geometry of an aperture for further improving the spectral purity of the beam.
- 6. The method of any of claims 1 or 2, wherein the inclusion of the optical component having the curved surface within the resonator and the performance of the aligning step causes the spectral purity of the output beam to improve by between 20% and 50% and the output power to reduce by less than 10%.
- 7. The method of any of claims 1 or 2, wherein the adjusting step includes adjusting a curvature of said curved surface of the optical component.
- 8. The method of any of claims 1 or 2, wherein the optical component is a resonator reflector of said resonator.
- 9. The method of claim 8, wherein the optical component is the output coupler.
- 10. The method of any of claims 1 or 2, wherein the adjusting step is automatically initiated by the processor when a spectral parameter signal is sent to the processor.
- 11. The method of any of claims 1 or 2, wherein the adjusting step is manually performed.
- 12. A method of controlling a spectral parameter of an output beam from an excimer or molecular fluorine laser including a laser active medium, a resonator, an output coupler, a processor, an energy detector, a spectrometer and a wavelength selection unit, comprising the steps of:
operating the excimer or molecular fluorine laser including an optical component within the resonator for providing the output beam with an improved spectral purity; measuring a spectral parameter of the beam with a spectrometer, the spectral parameter being selected from the group consisting of spectral purity, wavelength and bandwidth; sending signals to the processor based on the measuring of the spectral parameter; and adjusting the optical component within the resonator for controlling the spectral parameter of the beam based on the spectral parameter signals sent to the processor.
- 13. A method of controlling a spectral parameter of an output beam from an excimer or molecular fluorine laser including a laser active medium, a resonator, an output coupler, one or more processors, an energy detector, a spectrometer and a wavelength selection unit, comprising the steps of:
operating the excimer or molecular fluorine laser including a first optical component within the resonator for providing the output beam with improved spectral purity; measuring beam energy and a spectral parameter with the energy detector and spectrometer, respectively, the spectral parameter being selected from the group consisting of spectral purity, wavelength and bandwidth; sending signals to the one or more processors indicative of the beam energy and spectral parameter; and adjusting the optical component within the resonator for controlling the spectral parameter of the beam based on the spectral parameter signals sent to at least one of the one or more processors.
- 14. A method of controlling a spectral parameter of an output beam from a molecular fluorine laser having a wavelength around 157 nm for use as source radiation for producing structures on IC chips, the molecular fluorine laser including a molecular fluorine laser active medium, a resonator, an output coupler, a processor, an energy detector, a spectrometer and a wavelength selection unit, comprising the steps of:
operating the molecular fluorine laser including at least one wavelength selection optical component of said wavelength selection unit within the resonator for controlling a spectral parameter of the output beam having said wavelength around 157 nm, the spectral parameter being selected from the group consisting of spectral purity and bandwidth; measuring the spectral parameter of the beam with the spectrometer; sending signals to the processor based on the measuring of the spectral parameter; and adjusting the at least one wavelength selection optical component of said wavelength selection unit within said resonator for controlling the spectral parameter of the output beam based on said signals sent to the processor.
- 15. The method of claim 14, wherein said at least one wavelength selection optical component includes a resonator reflector.
- 16. The method of claim 14, further comprising the step of adjusting the beam energy of the output beam based on the beam energy signals sent to the processor.
- 17. An excimer or molecular fluorine laser, comprising
an active laser medium for emitting an output beam; a resonator defining an optical path intersecting said active medium; at least one line-narrowing optical component for narrowing the bandwidth of the output beam; an adjustable aperture within the resonator for controlling spectral purity of the output beam; an energy detector and a spectrometer each for receiving a portion of the spectral beam; and one or more processors for receiving signals from each of the energy detector and the spectrometer, and wherein the adjustable aperture is configured to be adjustable based on an adjustment signal received from at least one of the one or more processors, the adjustment signal being determined based at least on spectral information received from the spectrometer.
- 18. An excimer or molecular fluorine laser, comprising:
an active laser medium for generating a spectral beam at an original central wavelength; a resonator including a first reflecting surface and a second reflecting surface, an optical path intersecting said active medium being defined for said resonator for generating a laser beam, at least one of said first and second reflecting surfaces being a curved surface including an adjustable curvature; a wavelength selector for selecting a wavelength band from the spectral beam including a beam expander and a grating, the grating also serving as said first reflecting surface; an energy detector and a spectrometer each for receiving a portion of the spectral beam; one or more processors for receiving signals from each of the energy detector and the spectrometer, and wherein the curvature of the curved surface is automatically adjusted when a signal is received from at least one of the one or more processors based on information received from the spectrometer.
- 19. The laser of claim 18, further comprising an aperture for adapting a divergence of the resonating beam to improve spectral purity of the laser beam.
- 20. An excimer or molecular fluorine laser, comprising
an active laser medium for emitting an output beam; a resonator defining an optical path intersecting said active medium; at least one line-narrowing optical component for narrowing the bandwidth of the output beam, including at least one adjustable optic for controlling the wavelength of the output beam; an energy detector and a spectrometer each for receiving a portion of the beam; and one or more processors for receiving signals from each of the energy detector and the spectrometer, and wherein the adjustable optic is configured to be adjustable based on an adjustment signal received from at least one of the one or more processors, the adjustment signal being determined based at least on spectral information received from the spectrometer.
- 21. A molecular fluorine laser for generating a 157 nm laser beam for providing improved resolvability of structures on IC chips as a lithographic processing tool, comprising:
an molecular fluorine laser medium for emitting radiation at an original central wavelength around 157 nm; a resonator including a first reflecting surface and a second reflecting surface, an optical path intersecting said active medium being defined for said resonator for generating the laser beam; a wavelength selector including at least one wavelength selection optical element for selecting a wavelength band from the spectral distribution of the emitted radiation; an energy detector and a spectrometer each for receiving a portion of the spectral beam; and one or more processors for receiving signals from each of the energy detector and the spectrometer, and wherein the wavelength selection optical component is automatically adjusted for adjusting a spectral parameter of the selected wavelength band when a signal is received from at least one of the one or more processors based on information received from the spectrometer.
- 22. The laser of claim 21, wherein an adjustment of the beam energy of the output beam is automatically initiated by the processor based on information received from the energy detector.
PRIORITY
[0001] This application is a 37 C.F.R. 1.53(b) continuation application of U.S. patent application Ser. No. 09/923,632, filed Aug. 6, 2001, which is a continuation of U.S. patent application Se. No. 09/130,277, filed Aug. 6, 1998.
Continuations (2)
|
Number |
Date |
Country |
Parent |
09923632 |
Aug 2001 |
US |
Child |
10112493 |
Mar 2002 |
US |
Parent |
09130277 |
Aug 1998 |
US |
Child |
09923632 |
Aug 2001 |
US |