Claims
- 1. An autocoupled laser comprising:
a solid state gain medium; an optical pump source arranged to pump said gain medium; an optical fiber having a reflective end; and a substantially degenerate resonator configuration comprising
a first end including a retro-reflector, and a second end defined by an allowed volume, wherein said reflective end of said optical fiber is situated within said allowed volume to define a laser cavity between said reflective end of said optical fiber and said retro-reflector.
- 2. The laser of claim 1 wherein said optical fiber comprises a single mode fiber.
- 3. The laser of claim 1 further comprising an optical pump fiber coupled to said pump source to supply optical pump radiation to said gain medium.
- 4. The laser of claim 1 further comprising a first lens situated between said gain medium and said retro-reflector, said first lens comprising a reflective coating that defines said retro-reflector.
- 5. The laser of claim 4 further wherein said first lens comprises a first ball lens, and further comprising a second ball lens situated between said gain medium and said optical fiber, said second ball lens being AR-coated.
- 6. The laser of claim 1 wherein said laser cavity defines a resonant mode, and said optical fiber has a core and a cladding surrounding the core, said reflective end comprises an exposed core and a reflective coating formed on the cladding of said optical fiber surrounding said core, and the reflective end of the optical fiber is situated within the laser cavity at a position where the mode has a diameter approximately equal to or less than the diameter of the optical fiber, so that laser emission within said laser cavity is hole-coupled into said core of said optical fiber.
- 7. The laser of claim 1 wherein said optical fiber comprises a Bragg grating inside said optical fiber, thereby providing said reflective end.
- 8. An autocoupled laser comprising:
a first lens and a second lens; a gain medium situated between said first and second lenses; an optical fiber that has a reflective end; and a laser cavity comprising a first end that comprises a retro-reflector and a second end that comprises said reflective end of said optical fiber.
- 9. The laser of claim 8 wherein said optical fiber comprises a single mode fiber.
- 10. The laser of claim 8 wherein said retro-reflector comprises a reflective surface formed on said first lens.
- 11. The laser of claim 8 wherein said gain medium comprises a solid state gain medium and means for optically pumping said solid state gain medium.
- 12. The laser of claim 8 wherein said optical fiber comprises a Bragg grating inside said optical fiber, thereby providing said reflective end.
- 13. The laser of claim 8 wherein said optical fiber has a core and a cladding surrounding the core, and said reflective end comprises an exposed core and a reflective coating formed on the cladding of said optical fiber surrounding said core, so that laser emission within said laser cavity is hole-coupled into said core of said optical fiber.
- 14. The laser of claim 8 wherein said retro-reflector comprises a concave mirror situated at the curved focal plane defined by said first lens.
- 15. The laser of claim 8 wherein said first lens comprises a first ball lens, said second lens comprises a second ball lens, and wherein said retro-reflector is formed by a reflectively-coated surface of said first ball lens.
- 16. An autocoupled laser comprising:
a first ball lens that comprises a reflective outer surface; a second ball lens; a solid state gain medium situated between said first and second ball lenses; an optical fiber that has a reflective end; and a laser cavity comprising
a first end defined by said reflective surface of said first ball lens, and a second end defined by said reflective end of said optical fiber.
- 17. The laser of claim 16 wherein said optical fiber comprises a Bragg grating inside said optical fiber, thereby providing said reflective end.
- 18. The laser of claim 16 wherein said optical fiber has a core and a cladding surrounding the core, and said reflective end comprises an exposed core and a reflective coating formed on the cladding of said optical fiber surrounding said core, so that laser emission within said laser cavity is hole-coupled into said core of said optical fiber.
- 19. The laser of claim 16 wherein said optical fiber comprises a single mode optical fiber.
- 20. The laser of claim 16 wherein said gain medium comprises Er,YB:glass.
- 21. The laser of claim 16 further comprising an optical pump source for end-pumping said solid state gain medium with optical pump radiation through said first ball lens.
- 22. The laser of claim 21 wherein said optical pump source comprises an optical pump fiber coupled to a source of optical radiation.
- 23. The laser of claim 22 further comprising a laser assembly that comprises:
a first housing that holds said first ball lens; a second housing that holds said second ball lens; a fiber optic split sleeve that holds said first and second housings arranged with said gain block situated between said first and second housings; a first fiber optic coupler that holds said optical pump fiber; a second fiber optic coupler that holds said autocoupled optical fiber; and a coupler housing connected to said first and second fiber optic couplers, said coupler housing situating said split sleeve between said first and second fiber optic coupler in alignment so that said pump fiber is aligned with said first ball lens and said reflective end is aligned with said second ball lens.
- 24. The laser of claim 23 wherein said first and second housings comprise press-fit housings.
- 25. An autocoupled laser comprising:
a solid state gain medium that defines an emission wavelength; a first ball lens arranged proximate to a first side of the gain medium to couple said pump source into said gain medium, said first ball lens having a reflective outer surface that reflects said emission wavelength; an optical pump source arranged for pumping said gain medium through said first ball lens; a second ball lens arranged proximate to a second side of the gain medium opposite from said first ball lens, said second ball lens substantially transmissive to the emission wavelength; a single mode optical fiber having a reflective end positioned proximate to the outer surface of said second ball lens; and a laser cavity comprising
a first end defined by said reflective outer surface of said first ball lens, and a second end defined by said reflective end of said single mode optical fiber.
- 26. The laser of claim 25 wherein said optical fiber comprises a Bragg grating inside said optical fiber, thereby providing said reflective end, said Bragg grating also defining a predetermined reflective wavelength.
- 27. The laser of claim 25 wherein said optical fiber has a core and a cladding surrounding the core, and said reflective end comprises an exposed core and a reflective coating formed on the cladding of said optical fiber surrounding said core, so that laser emission within said laser cavity is hole-coupled into said core of said optical fiber.
- 28. The laser of claim 25 wherein said optical pump source comprises an optical pump fiber coupled to a source of optical radiation.
- 29. The laser of claim 28 including a laser assembly that comprises:
a first housing that holds said first ball lens; a second housing that holds said second ball lens; a fiber optic split sleeve that holds said first and second housings arranged with said gain block situated between said first and second housings; a first fiber optic coupler that holds said optical pump fiber; a second fiber optic coupler that holds said single mode optical fiber; and a coupler housing connected to said first fiber optic coupler on a one end and connected to the second fiber optic coupler at the other end, said coupler housing situating said split sleeve between said first and second fiber optic coupler in alignment so that said pump fiber is substantially aligned with said first ball lens and said reflective end is substantially aligned with said second ball lens.
- 30. The laser of claim 29 wherein said first and second housings comprise press-fit housings.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] Priority is hereby claimed to U.S. application Ser. No. 60/288,322, filed May 3, 2001, entitled SINGLE MODE AUTOCOUPLED RESONATOR FOR TELECOMMUNICATIONS, which is incorporated by reference herein.
Provisional Applications (1)
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Number |
Date |
Country |
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60288322 |
May 2001 |
US |