Claims
- 1. A laser resonator system that comprises: a first and second mirror forming an optical resonator, where said first and second mirrors have radii of curvature R1 and R2 respectively; a laser medium positioned within said optical resonator wherein said laser medium provides gain to a beam of electromagnetic radiation at a certain wavelength, referred to as the fundamental wavelength, said beam at the fundamental wavelength having a diameter D.sub.2 after it passes through said laser medium; an optical element positioned within said optical resonator said optical element being substantially transparent to said beam of electromagnetic radiation at the fundamental wavelength; a means for imaging, positioned between said laser medium and said optical element within said optical resonator, that accepts said beam of radiation with diameter D.sub.2 from said laser medium and images said beam with diameter D.sub.2 to a beam of radiation with diameter d.sub.1 in said optical element such that the ratio of diameters d.sub.2 /D.sub.1 depends only on the properties of said means of imaging and said ratio of diameters D.sub.2 /D.sub.1 is independent of the position and radii of curvature of said first and second mirrors and is independent of any focusing properties of said laser medium or said optical element.
- 2. A laser resonator system according to claim 1, wherein said optical element is an optical medium that can convert said beam of electromagnetic radiation at the fundamental wavelength within said optical resonator to another wavelength.
- 3. A laser resonator system according to claim 2, wherein said optical medium is a nonlinear optical medium with means of generating optical harmonics of the fundamental wavelength such that a wavelength at the N.sup.th harmonic is equal to the fundamental wavelength divided by N, where N is an integer .gtoreq.2.
- 4. A laser resonator system according to claim 3, wherein said nonlinear optical medium is a nonlinear crystal that generates a second harmonic wavelength and where said nonlinear crystal is drawn from a class of inorganic and organic crystals including LiNbO.sub.3, Ba.sub.2 NaNb.sub.5 O.sub.15, LiIO.sub.3, KDP, KTP, and BBO.
- 5. A laser resonator system according to claim 1, wherein said laser medium is a solid state crystal rod and where the crystal rod is drawn from a class of crystals including Nd:YAG, ND:YLF, ruby, and alexandrite.
- 6. A laser resonator system according to claim 5, wherein the laser rod is pumped by an optical source to excite said laser medium such that said laser medium can provide gain at the fundamental wavelength, and were said optical pumping is also a means of heating the laser rod that, together with water cooling at a outside diameter of the laser rod, can induce thermal focusing in the laser rod.
- 7. A laser resonator system according to claim 6, wherein the laser rod has a diameter D which forms an aperture of diameter D, the diameter of the laser rod being a means of determining a diameter of a multi-transverse mode beam in the laser rod such that the beam diameter is substantially equal to the aperture diameter D.
- 8. A laser resonator system according to claim 1, wherein said means of imaging comprises a plurality of lenses at predetermined positions between said laser medium and said optical element.
- 9. A laser resonator system according to claim 1, wherein said means of imaging comprises an optical relay consisting of a first relay lens and a second relay lens with a focal length f.sub.1 and a focal length f.sub.2, respectively, and where the first relay lens with focal length f.sub.1 is a distance d.sub.1 from said optical element, the second relay lens with focal length f.sub.2 is a distance f.sub.1 +f.sub.2 from said first relay lens, and said laser medium is a distance d.sub.2 from said second relay lens, and where said distance d.sub.1 and d.sub.2 are related by
- m d.sub.1 +d.sub.2 /m=f.sub.1 +f.sub.2,
- where m=f.sub.2 /f.sub.1 and is the magnification of said optical relay, and where said optical relay is a means of accepting said beam of radiation with diameter D.sub.2 from said laser medium and of imaging said beam with diameter D.sub.2 to a beam of radiation with diameter D.sub.1 in said optical element and where said ratio of diameters D.sub.2 /D.sub.1 is equal only to m, the magnification of said optical relay.
- 10. A laser resonator system according to claim 9 wherein the first relay lens and the second relay lens are replaced by two curved mirrors, where a first relay mirror with radius of curvature RR.sub.1 replaces the first relay lens and RR.sub.1 =2f.sub.1, and were a second relay mirror with radius of curvature RR.sub.2 replaces the said second relay lens and RR.sub.2 =2f.sub.2, and where said first relay mirror and said second relay mirror are positioned in the optical resonator in the same positions as the first and second relay lens, respectively.
- 11. A laser resonator system according to claim 10 wherein the angle of incidence of said beam with diameter D.sub.2 on said first and second relay mirrors is small and where said angle of incidence is less than approximately 10 degrees and were the imaging properties of said first and said second relay mirrors are substantially equal to the imaging properties of the first and second relay lenses.
- 12. A laser resonator system according to claim 10, where said first relay mirror is highly reflecting at the fundamental wavelength and highly transmitting at a second harmonic wavelength and where said first relay mirror provides a means of output coupling for said beam at the second harmonic wavelength.
- 13. A laser resonator system according to claim 10, where said first relay mirror is highly reflecting at the fundamental and second harmonic wavelengths, and said second relay mirror is highly reflecting at the fundamental wavelength and highly transmitting at the second harmonic wavelength and where said second relay mirrors provides a means of output coupling for said beam at the second harmonic wavelength.
- 14. A laser resonator system according to claim 1, wherein said means of imaging is a single lens of focal length f and where said single lens is positioned a distance S.sub.1 from said optical element and a distance S.sub.2 from said laser medium and where said distances S.sub.1 and S.sub.2 are related by 1/S.sub.1 +1/S.sub.2 and where the magnification of said single lens means of imaging is S.sub.2 /S.sub.1, and where said single lens is a means of accepting said beam of radiation with diameter D.sub.2 from said laser medium and imaging said beam with diameter D.sub.2 to said beam of radiation with diameter D.sub.2 in said optical element and where said ratio of diameters D.sub.2 /D.sub.1 is equal to S.sub.2 /S.sub.1, the magnification of said single lens means of imaging.
- 15. A laser resonator system that comprises: a first resonator mirror and a second resonator mirror, said first resonator mirror and second resonator mirror being highly reflecting at a fundamental wavelength, said first resonator mirror and said second resonator mirror forming an optical resonator at said fundamental wavelength and said first resonator mirror and said second resonator mirror having radii of curvature R.sub.1 and R.sub.2 respectively; a solid state laser rod positioned within said optical resonator;
- an optical source for pumping said laser rod to excite said laser rod and provide gain to a beam of electromagnetic radiation at said fundamental wavelength, where said optical source for pumping heats said laser rod thereby inducing thermal focusing in said laser rod; a nonlinear optical crystal positioned within said optical resonator for generating a second harmonic wavelength; an optical relay consisting of a first and a second relay mirror with radii of curvature RR.sub.1 and RR.sub.2, respectively, said first and second relay mirrors being positioned between said laser rod and said nonlinear crystal such that the first relay mirror with radius RR.sub.1 is a distance d.sub.1 from said nonlinear crystal, the second relay mirror with radius RR.sub.2 is a distance RR.sub.1 /2+RR.sub.2 /2 from the first relay mirror, and where a face of said laser medium is a distance d.sub.2 from the second relay mirror and where said distances d.sub.1 and d.sub.2 are related by
- m d.sub.1 +d.sub.2 /m=RR.sub.1 /2+RR.sub.2 /2,
- where m=RR.sub.2 /RR.sub.1 and is the magnification of said optical relay; an electromagnetic beam of radiation with diameter D.sub.1 in said nonlinear crystal and with diameter D.sub.2 in said laser rod and where the ratio of the diameters D.sub.2 /D.sub.1 is completely determined by the properties of said optical relay such that D.sub.2 /D.sub.1 =m=RR.sub.2 /RR.sub.1 and where said ratio of diameters D.sub.2 /D.sub.1 is independent of the radii of curvature R.sub.1 and R.sub.2 of said first and second resonator mirrors, and is independent of said thermal focusing in said laser rod; means for output coupling the second harmonic wavelength comprising said first relay mirror, said first relay mirror being highly reflecting at said fundamental wavelength and highly transmitting at the second harmonic wavelength; wherein the maximum output power at the second harmonic wavelength is obtained by choosing values of the radii of curvature of said first and said second relay mirrors such that said ratio of beam diameters D.sub.2 /D.sub.1 will maximize the second harmonic output power for said laser rod and said nonlinear crystal.
- 16. A laser resonator system according to claim 15 wherein said optical relay comprises means for determining that a spatial profile of said beam of electromagnetic radiation in said laser medium is the same as the spatial profile in said nonlinear crystal and where effects of gain saturation in said laser medium and second harmonic generation in said nonlinear crystal cooperate to reduce any spatial non-uniformities and local high amplitude peaks or hot spots in said beam, said nonlinear crystal and said laser rod being protected from optical damage due to a reduction of said hot spots.
- 17. A laser resonator system according to claim 15 wherein said second resonator mirror is concave with a radius of curvature R.sub.2 and is positioned a distance d.sub.2 from said nonlinear crystal so that any stray reflections from said nonlinear crystal that will hit said second resonator mirror are reflected back through said nonlinear crystal and do not hit the structure surrounding said nonlinear crystal and consequently no unwanted heating of the area surrounding said nonlinear crystal and its surroundings can occur.
- 18. A laser resonator system according to claim 1, wherein said laser medium comprises a non-crystal rod and where the non-crystal rod is drawn from a class of materials including Nd:Glass.
- 19. A laser resonator system according to claim 18, including an optical source for exciting said non-crystal rod such that said non-crystal rod provides gain at the fundamental wavelength, and wherein said optical source pumps said non-crystal so as to heat said non-crystal rod such that thermal focusing is induced in said non-crystal rod.
- 20. A laser resonator system according to claim 19 including means for water cooling said non-crystal rod, said cooling of said non-crystal rod causing thermal focusing in said non-crystal rod.
- 21. A laser resonator system according to claim 19, wherein said non-crystal rod has a diameter D which forms an aperture of diameter D, the diameter of said non-crystal rod determining the diameter of a multi-transfer mode beam in said non-crystal rod such that the beam diameter is substantially equal to the aperture diameter D.
- 22. A laser resonator system according to claim 1 wherein said means of imaging is a plurality of lenses and curved mirrors at predetermined positions between said laser medium and said optical element.
- 23. A laser resonator system according to claim 1 wherein said means of imaging is a plurality of curved mirrors at predetermined positions between said laser medium and said optical element.
- 24. A laser resonator system that comprises:
- a first resonator mirror and a second resonator mirror, said first resonator mirror and second resonator mirror being highly reflecting at a fundamental wavelength, said first resonator mirror and said second resonator mirror forming an optical resonator at said fundamental wavelength and said first resonator mirror and said second resonator mirror having radii of curvature R.sub.1 and R.sub.2 respectively;
- a solid state laser rod positioned within said optical resonator;
- an optical source for pumping said laser rod to excite said laser rod and provide gain to a beam of electromagnetic radiation at the fundamental wavelength, where said optical source of pumping heats said laser rod thereby inducing thermal focusing in said laser rod;
- a nonlinear optical crystal positioned within said optical resonator for generating a second harmonic wavelength;
- an optical relay consisting of a first and a second relay mirror with radii of curvature RR.sub.1 and RR.sub.2, respectively, said first and second relay mirrors being positioned between said laser rod and said nonlinear crystal such that the first relay mirror with radius RR.sub.1 is a distance d.sub.1 from said nonlinear crystal, the second relay mirror with radius Rr.sub.2 is a distance RR.sub.1 /2+RR.sub.2 /2 from the first relay mirror, and where a face of said laser medium is a distance d.sub.2 from the second relay mirror and where said distances d.sub.1 and d.sub.2 are related by
- m d.sub.1 +d.sub.2 /m=RR.sub.1 /2+RR.sub.2 /2,
- where m=RR.sub.2 and is the magnification of said optical relay;
- an electromagnetic beam of radiation with diameter D.sub.1 in said nonlinear crystal and with diameter D.sub.2 in said laser rod and where the ratio of the diameters D.sub.2 /D.sub.1 is completely determined by the properties of said optical relay such that D.sub.2 /D.sub.1 =m=RR.sub.2 /RR.sub.1 and where said ratio of diameters D.sub.2 /D.sub.1 is independent of the radii of curvature R.sub.1 and R.sub.2 of said first and second resonator mirrors, and is independent of said thermal focusing in said laser rod; and
- means for output coupling the second harmonic wavelength provided by said second relay mirror wherein said first relay mirror is highly reflecting at both the fundamental wavelength and the second harmonic wavelength, and said second relay mirror is highly reflecting at the fundamental wavelength and highly transmitting at the second harmonic wavelength;
- wherein maximum output power is obtained at the second harmonic wavelength by choosing values of the radii of curvature of said first and said second relay mirrors such that said ratio of beam diameters D.sub.2 /D.sub.1 will maximize the second harmonic output power for said laser rod and said nonlinear crystal.
RELATED APPLICATION
This application is a continuation-in-part of my application for patent Ser. No. 07/176,810 filed Apr. 1, 1988, abandoned, having the same title and assigned to Laserscope the assignee of this application.
US Referenced Citations (2)
Number |
Name |
Date |
Kind |
4158176 |
Hunt et al. |
Jun 1979 |
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4637026 |
Liu |
Jan 1987 |
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Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
176810 |
Apr 1988 |
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