Claims
- 1. A laser device comprising:
a chamber containing a volume formed therein; and a gain medium within the volume, the gain medium comprising solid-state portions containing active laser ion suspended within a fluid which exhibits a refractive index which is substantially similar to that of the solid-state portions.
- 2. The laser device of claim 1 wherein the gain medium flows within the volume.
- 3. The laser device of claim 2 wherein the gain medium flows through the volume.
- 4. The laser device of claim 2 wherein the solid state portions are suspended by flow within the fluid.
- 5. The laser device of claim 2 wherein the solid state portions are naturally suspended within the fluid in the absence of flow.
- 6. The laser device of claim 2 wherein the chamber further comprises an inlet and an outlet, the gain medium flowing in the inlet, through the volume and out the outlet.
- 7. The laser device of claim 6 wherein the inlet and the outlet are sized to be larger than individual ones of the solid state portions, such that the gain medium can flow through the inlet and the outlet.
- 8. The laser device of claim 6 further comprising a heat exchanger coupled to the inlet and outlet, the gain medium exiting the outlet passing through the heat exchanger and cooled then flowed through the inlet.
- 9. The laser device of claim 6 wherein the gain medium is flowed through the chamber in a direction substantially parallel to an axis of a laser emission.
- 10. The laser device of claim 6 wherein the gain medium is flowed through the chamber in a direction substantially transverse to an axis of a laser emission.
- 11. The laser device of claim 1 wherein the solid state portions have at least one dimension in a range between 10 nanometers and 2 millimeters.
- 12. The laser device of claim 1 further comprising a diode pump source, wherein optical pump radiation is continuously pumped into the gain medium by the diode pump source for a duration of at least a time desired for laser output.
- 13. The laser device of claim 1 wherein individual solid state portions do not contact each other.
- 14. The laser device of claim 1 wherein the chamber includes one or more faces adapted to transmit optical pump radiation therethrough to enter the gain medium.
- 15. The laser device of claim 1 further comprising semiconductor laser diodes for providing optical pump radiation to the chamber.
- 16. The laser device of claim 1 in which ends of the chamber are comprised of material which is transparent to a laser emission wavelength.
- 17. The laser device of claim 1 in which ends of the chamber are comprised of material which is transparent to a laser emission wavelength and oriented at Brewster's angle with respect to an axis of the laser emission wavelength.
- 18. The laser device of claim 1 in which ends of the chamber are comprised of material which is transparent to a laser emission wavelength and which are coated to provide reflectance at the laser emission wavelength, the coating being applied on a surface of a window which does not contact the gain medium.
- 19. A method of lasing comprising:
providing a chamber having a volume formed therein and containing a gain medium, the gain medium comprising solid-state portions containing active laser ion suspended within a fluid which exhibits a refractive index which is substantially similar to that of the solid-state portions; directing optical pump radiation through the chamber into the volume; and directing a laser emission through the chamber.
- 20. The method of claim 19 further comprising:
flowing the gain medium within the volume.
- 21. The method of claim 20 wherein the flowing the gain medium step comprises:
flowing the gain medium through the volume.
- 22. The method of claim 21 further comprising:
cooling a portion of the gain medium flowing out of the chamber and flowing the portion back into the chamber.
- 23. The method of claim 20 wherein the flowing the gain medium step comprises:
flowing the gain medium such that the solid state portions are suspended by flow within the fluid.
- 24. The method of claim 20 wherein the flowing the gain medium step comprises:
flowing the gain medium, wherein the solid state portions are naturally suspended within the fluid in the absence of flow.
- 25. The method of claim 20 wherein the flowing the gain medium step comprises:
flowing the gain medium into the volume via an inlet of the chamber, through the volume and out of the volume via an outlet of the chamber.
- 26. The method of claim 25 further comprising:
cooling a portion of the gain medium flowing out of the chamber by flowing the portion of the gain medium through a heat exchanger and flowing the portion of the gain medium back into the chamber.
- 27. The method of claim 25 wherein the flowing the gain medium step comprises:
flowing the gain medium through the volume in a direction substantially parallel to an axis of the laser emission.
- 28. The method of claim 25 wherein the flowing the gain medium step comprises:
flowing the gain medium through the volume in a direction substantially transverse to an axis of the laser emission.
- 29. The method of claim 20 wherein the flowing the gain medium step comprises:
flowing the gain medium, the gain medium comprising the solid-state portions suspended within the fluid, the solid state portions have at least one dimension in a range between 10 nanometers and 2 millimeters; wherein the directing the optical pump radiation step comprises:
continuously directing the optical pump radiation through the chamber into the volume for a duration of at least a time duration of the directing the laser emission through the chamber step.
- 30. The method of claim 19 wherein the providing step comprises:
providing the chamber having the volume formed therein and containing the gain medium, the gain medium comprising the solid-state portions containing the active laser ion, wherein individual solid state portions do not contact each other within the fluid.
- 31. A laser device comprising:
means for providing a chamber having a volume formed therein and containing a gain medium, the gain medium comprising solid-state portions containing active laser ion suspended within a fluid which exhibits a refractive index which is substantially similar to that of the solid-state portions; means for directing optical pump radiation through the chamber into the volume; and means for directing a laser emission through the chamber.
- 32. The device of claim 31 further comprising:
means for flowing the gain medium within the volume.
- 33. The device of claim 32 wherein the means for flowing the gain medium comprise:
means for flowing the gain medium through the volume.
- 34. The device of claim 33 further comprising:
means for cooling a portion of the gain medium flowing out of the chamber and flowing the portion back into the chamber.
Parent Case Info
[0001] This application claims priority to the following applications: U.S. Provisional Application No. 60/332,085, filed Nov. 21, 2001, entitled LASER CONTAINING A SLURRY; and U.S. Provisional Application No. 60/401,411, filed Aug. 6, 2002, entitled LASER CONTAINING A DISTRIBUTED GAIN MEDIUM, the entire disclosures of both applications incorporated herein by reference.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60332085 |
Nov 2001 |
US |
|
60401411 |
Aug 2002 |
US |