Claims
- 1. An ablation laser system having variable fluence, comprising:
a laser source; relay optics for delivering a laser beam from said laser source to a target surface; and an ablation spot fluence adjuster to adjust a fluence of an ablation pulse on said target surface on a pulse-by-pulse basis.
- 2. The ablation laser system having variable fluence according to claim 1, wherein:
said ablation spot fluence adjuster controls a variable aperture through which said laser beam passes.
- 3. The ablation laser system having variable fluence according to claim 1, wherein:
said ablation spot fluence adjuster controls a magnification of said relay optics.
- 4. The ablation laser system having variable fluence according to claim 1, wherein:
said system substantially overlaps ablation spots within a single ablation pattern on a single layer of target tissue.
- 5. The ablation laser system having variable fluence according to claim 2, wherein:
said system substantially overlaps ablation spots within a single ablation pattern on a single layer of target tissue.
- 6. The ablation laser system having variable fluence according to claim 1, further comprising:
a fluence correction table accessible by said ablation spot fluence adjuster, said ablation spot fluence adjuster selecting a fluence correction factor from said fluence correction table based on an actually measured area of a contemporaneous ablation spot.
- 7. The ablation laser system having variable fluence according to claim 2, further comprising:
a fluence correction table accessible by said ablation spot fluence adjuster, said ablation spot fluence adjuster selecting a fluence correction factor from said fluence correction table based on an actually measured area of a contemporaneous ablation spot.
- 8. The ablation laser system having variable fluence according to claim 1, further comprising:
a scanner to scan said laser beam across said target surface.
- 9. The ablation laser system having variable fluence according to claim 2, further comprising:
a scanner to scan said laser beam across said target surface.
- 10. The ablation laser system having variable fluence according to claim 1, wherein:
said laser beam is 193 nm when output from a basic laser of said laser source.
- 11. The ablation laser system having variable fluence according to claim 2, wherein:
said laser beam is 193 nm when output from a basic laser of said laser source.
- 12. The ablation laser system having variable fluence according to claim 1, wherein:
said laser source is a basic laser having a fundamentally ultraviolet output at an output window.
- 13. An ablation laser system having variable fluence, comprising:
a laser source; relay optics for delivering a laser beam from said laser source to a target surface; and an ablation spot fluence adjuster to adjust an ablation spot fluence on said target surface by increasing a number of pulses per unit area in a periphery of said target surface as compared to a lower number of pulses per unit area in a central portion of said target surface.
- 14. The ablation laser system having variable fluence according to claim 13, wherein:
said system substantially overlaps ablation spots within a single ablation pattern on a single layer of target tissue.
- 15. The ablation laser system having variable fluence according to claim 14, wherein:
said substantial overlap is at least 50% overlap of adjacent ablation spots.
- 16. The ablation laser system having variable fluence according to claim 13, further comprising:
a fluence correction table accessible by said ablation spot fluence adjuster, said ablation spot fluence adjuster selecting a fluence correction factor from said fluence correction table based on an actually measured area of a contemporaneous ablation spot.
- 17. The ablation laser system having variable fluence according to claim 13, further comprising:
a scanner to scan said laser beam across said target surface.
- 18. The ablation laser system having variable fluence according to claim 13, wherein:
said laser beam is 193 nm when output from a basic laser of said laser source.
- 19. A system for imparting ablating laser radiation onto a target curved surface, comprising:
a laser source having an output laser beam; a variable aperture device; a controller operatively connected to said aperture to adjust said diameter of said laser beam on a pulse-by-pulse basis; relay optics for producing an image of said laser beam; and turning optics to scan said image of said laser beam across said target surface.
- 20. The system for imparting ablating laser radiation onto a target curved surface according to claim 19, wherein:
said variable aperture device adjusts a circular diameter of said laser beam.
- 21. The system for imparting ablating laser radiation onto a target curved surface according to claim 19, wherein:
said variable aperture device adjusts an elliptical diameter of said laser beam.
- 22. The system for imparting ablating laser radiation onto a target curved surface according to claim 19, further comprising:
an optical detector to provide real-time data of said laser beam image as it impinges onto said target surface.
- 23. The system for imparting ablating laser radiation onto a target curved surface according to claim 22, wherein:
said real-time data includes beam shape and size.
- 24. The system for imparting ablating laser radiation onto a target curved surface according to claim 22, wherein:
said real-time data includes fluorescence of cornea.
- 25. The system for imparting ablating laser radiation onto a target curved surface according to claim 22, wherein said optical detector comprises:
a photo detector.
- 26. A method for providing laser radiation on a curved surface having a desired fluence throughout, said method comprising:
providing an ablating laser beam; setting a cross-sectional shape of said ablating laser beam to a first size, with respect to a particular ablation spot of a particular ablation pattern on a particular layer of tissue to provide a given fluence level for that particular ablation spot; scanning said ablating laser beam to another ablation spot of said particular ablation pattern on said particular layer of tissue; and re-adjusting said cross-sectional shape of said ablating laser beam to a second size different from said first size, with respect to said another ablation spot, to maintain said given fluence level for said another ablation spot.
- 27. The method for providing laser radiation on a curved surface having a desired fluence throughout according to claim 26, further comprising:
monitoring an image of said laser beam on said curved surface; and determining an area of said laser beam on said curved surface on a pulse-by-pulse basis.
- 28. The method for providing laser radiation on a curved surface having a desired fluence throughout according to claim 26, wherein:
said cross-sectional shape of said ablating laser beam is adjusted with a variable aperture mechanism.
- 29. The method for providing laser radiation on a curved surface having a desired fluence throughout according to claim 26, wherein:
said cross-sectional shape of said ablating laser beam is adjusted by changing a magnification of relay optics in a delivery path of said laser beam.
- 30. The method for providing laser radiation on a curved surface having a desired fluence throughout according to claim 26, further comprising:
determining a fluence of an ablation spot on a pulse-by-pulse basis.
- 31. The method for providing laser radiation on a curved surface having a desired fluence throughout according to claim 26, further comprising:
initially performing a topographical and/or wavefront measurement of said curved surface; and adjusting a fluence of said ablating laser beam based on an irregularity on said curved surface identified in said measurement.
- 32. Apparatus to provide laser radiation on a curved surface having a desired fluence throughout, comprising:
means for providing an ablating laser beam; means for setting a cross-sectional shape of said ablating laser beam to a first size, with respect to a particular ablation spot of a particular ablation pattern on a particular layer of tissue to provide a given fluence level for that particular ablation spot; means for scanning said ablating laser beam to another ablation spot of said particular ablation pattern on said particular layer of tissue; and means for re-adjusting said cross-sectional shape of said ablating laser beam to a second size different from said first size, with respect to said another ablation spot, to maintain said given fluence level for said another ablation spot.
- 33. The apparatus to provide laser radiation on a curved surface having a desired fluence throughout according to claim 32, further comprising:
means for monitoring an image of said laser beam on said curved surface; and means for determining an area of said laser beam on said curved surface on a pulse-by-pulse basis.
- 34. The apparatus to provide laser radiation on a curved surface having a desired fluence throughout according to claim 32, wherein:
said means for setting and said means for re-adjusting comprise a variable aperture mechanism.
- 35. The apparatus to provide laser radiation on a curved surface having a desired fluence throughout according to claim 32, wherein:
said means for setting and said means for re-adjusting comprise variable magnification optics in a delivery path of said laser beam.
- 36. The apparatus to provide laser radiation on a curved surface having a desired fluence throughout according to claim 32, further comprising:
means for determining a fluence of an ablation spot on a pulse-by-pulse basis.
- 37. The apparatus to provide laser radiation on a curved surface having a desired fluence throughout according to claim 32, further comprising:
means for initially performing a topographical and/or wavefront measurement of said curved surface; and means for adjusting a fluence of said ablating laser beam based on an irregularity on said curved surface identified in said measurement.
- 38. A method for providing laser radiation on a curved surface having a desired fluence throughout, said method comprising:
setting a fluence rate of an ablating laser beam to a first number of ablation spots per unit area with respect to a central region of said curved surface; scanning said ablating laser beam in a central portion of said curved surface; re-setting said fluence rate of said ablating laser beam to a second number of ablation spots per unit area higher than said first number; and scanning said ablating laser beam in a peripheral portion of said curved surface.
Parent Case Info
[0001] The present application claims priority from U.S. Provisional Application No. 60/175,634, filed Jan. 12, 2000, entitled “Laser Fluence Compensation” to Michael L. Kliewer; and from U.S. Provisional Application No. 60/196,290, filed Apr. 12, 2000, entitled “Laser Fluence Compensation of a Curved Surface” to Michael L. Kliewer, the entirety of both of which are expressly incorporated herein by reference.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60175634 |
Jan 2000 |
US |
|
60196290 |
Apr 2000 |
US |