Claims
- 1. An optical system, comprising:
a high power diode pump source; a thin disk gain media; and an optical coupler positioned between the diode pump source and the thin disk gain media, the optical coupler producing a beam with a large numerical aperture incident on the thin disk gain media.
- 2. The system of claim 1, wherein the pump source has a power of at least 50W.
- 3. The system of claim 1, wherein the pump source has a power of at least 200W.
- 4. The system of claim 1, wherein the numerical aperture of the beam incident on the thin disk gain media is greater than 0.35.
- 5. The system of claim 1, wherein the numerical aperture of the beam incident on the thin disk gain media is greater than 0.4.
- 6. The system of claim 1, wherein the numerical aperture of the beam incident on the thin disk gain media is greater than 0.5.
- 7. The system of claim 1, wherein the coupler is selected from a funnel, a cylindrical lens to collimate a fast axis divergence of the pump source, several cylindrical lenses, a beam shaper, a lens duct, and a beam combiner.
- 8. The system of claim 1, further comprising:
a cooling device coupled to the cooling surface of the thin disk gain media.
- 9. The system of claim 1, wherein the thin disk gain media is made of a stoichiometric gain material.
- 10. The system of claim 1, wherein the thin disk gain media is made of a stoichiometric Yb3+ material.
- 11. The system of claim 10, wherein the stoichiometric Yb3+ material is YbAG.
- 12. The system of claim 10, wherein the stoichiometric Yb3+ material is KYbW.
- 13. The system of claim 1, wherein the thin disk gain media is made of a semiconductor material.
- 14. The system of claim 1, wherein the diode pump source is a stack of diode bars.
- 15. The system of claim 1, wherein the coupler is a non-imaging concentrator.
- 16. The system of claim 15, wherein the non-imaging concentrator is a lens duct.
- 17. The system of claim 1, wherein the coupler is a beam homogenizer.
- 18. The system of claim 15, wherein the non-imaging concentrator is configured to convert a large beam with a low numerical aperture from the diode pump source into a smaller beam with a larger numerical aperture.
- 19. The system of claim 15, wherein the non-imaging concentrator reduces a beam size from the diode pump source by a factor of at least two and the numerical aperture of the beam from the diode pump source increases by at least two.
- 20. The system of claim 15, wherein the non-imaging concentrator is a hollow funnel.
- 21. An optical system, comprising:
at least first and second high power diode pump sources producing first and second pump beams; a thin disk gain media; a first coupler and a second coupler positioned between each of the diode pump sources and the thin disk gain media; and wherein the first and second pump beams are incident on the thin disk gain media from different directions.
- 22. The system of claim 21, wherein the optical couplers produce first and second beams from the first and second diode pump sources that each have a large numerical aperture incident on the thin disk gain media.
- 23. The system of claim 21, wherein the pump sources produce a power of at least 50W.
- 24. The system of claim 21, wherein the pump sources produce a power of at least 200W.
- 25. The system of claim 21, wherein the numerical aperture of each of the first and second beams incident on the thin disk gain media is greater than 0.35
- 26. The system of claim 21, wherein the numerical aperture of each of the first and second beams incident on the thin disk gain media is greater than 0.4.
- 27. The system of claim 21, wherein the numerical aperture of each of the first and second beams incident on the thin disk gain media is greater than 0.5.
- 28. The system of claim 21, wherein the coupler is selected from a funnel, a cylindrical lens to collimate a fast axis divergence of the pump source, several cylindrical lenses, a beam shaper, a lens duct, and a beam combiner.
- 29. The system of claim 21, further comprising:
a cooling device coupled to the cooling surface of the thin disk gain media.
- 30. The system of claim 21, wherein the thin disk gain media is made of a stoichiometric gain material.
- 31. The system of claim 21, wherein the thin disk gain media is made of a stoichiometric Yb3+ material.
- 32. The system of claim 31, wherein the stoichiometric Yb3+ material is YbAG.
- 33. The system of claim 31, wherein the stoichiometric Yb3+ material is KYbW.
- 34. The system of claim 21, wherein the thin disk gain media is made of a semiconductor material.
- 35. The system of claim 21, wherein the diode pump source is a stack of diode bars.
- 36. The system of claim 21, wherein the coupler is a non-imaging concentrator.
- 37. The system of claim 36, wherein the non-imaging concentrator is a lens duct.
- 38. The system of claim 21, wherein the coupler is a beam homogenizer.
- 39. The system of claim 36, wherein the non-imaging concentrator is configured to convert a large beam with a low numerical aperture from the diode pump source into a smaller beam with a larger numerical aperture.
- 40. The system of claim 36, wherein the non-imaging concentrator reduces a beam size from the diode pump source by a factor of at least two and the numerical aperture of the beam from the diode pump source increases by at least two.
- 41. The system of claim 36, wherein the non-imaging concentrator is a hollow funnel.
- 42. A method of pumping a thin disk gain media, comprising:
producing a high power diode pump beam from a pump source; passing the high power diode pump beam through an optical coupler positioned between the diode pump source and a thin disk gain media; forming a high numerical aperture output beam from the optical coupler; and positioning the high numerical aperture output beam at an incidence surface of the thin disk gain media.
- 43. The method of claim 42, wherein the pump beam has a power of at least 50W.
- 44. The method of claim 42, wherein the pump beam has a power of at least 200W.
- 45. The method of claim 42, wherein the numerical aperture of the beam incident on the thin disk gain media is greater than 0.35.
- 46. The method of claim 42, wherein the numerical aperture of the high numerical output beam is greater than 0.4.
- 47. The method of claim 42, wherein the numerical aperture of the high numerical output beam is greater than 0.5.
- 48. The method of claim 42, wherein the optical coupler is selected from a funnel, a cylindrical lens to collimate a fast axis divergence of the pump source, several cylindrical lenses, a beam shaper, a lens duct, and a beam combiner.
- 49. The method of claim 42, further comprising:
cooling a cooling surface of the thin disk gain media.
- 50. The method of claim 42, wherein the thin disk gain media is made of a stoichiometric gain material.
- 51. The method of claim 42, wherein the thin disk gain media is made of a stoichiometric Yb3+ material.
- 52. The method of claim 51, wherein the stoichiometric Yb3+ material is YbAG.
- 53. The method of claim 51, wherein the stoichiometric Yb3+ material is KYbW.
- 54. The system of claim 52, wherein the thin disk gain media is made of a semiconductor material.
- 55. The method of claim 42, wherein the diode pump source is a stack of diode bars.
- 56. A method of materials processing, comprising:
producing a high power diode pump beam from a pump source; passing the high power diode pump beam through an optical coupler positioned between the diode pump source and a thin disk gain media; creating a high numerical aperture output beam from the optical coupler; positioning the high numerical aperture output beam at the incidence surface of the thin disk gain media to produce an output beam; and directing the output beam to an article to be processed.
- 57. A method of pumping a thin disk gain media, comprising:
producing first and second pump beams from first and second pump sources; passing the first and second pump beams through a first and second optical coupler positioned between each diode pump source and a thin disk gain media to produce first and second pump beams positioning the first and second pump beams on the thin disk gain media from different directions.
- 58. The method of claim 57, wherein the first and second pump beams each are high numerical aperture beams.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is related to U.S. patent application Ser. No. ______ not yet assigned, identified as Attorney Docket No. 18120-0011, and U.S. patent application Ser. No. ______ not yet assigned, identified as Attorney Docket No. 18120-0012, both of which are filed concurrently herewith.