Claims
- 1. A laser source for generating at least one infrared wavelength, comprising in combination:a pump source having a wavelength and a peak power density that overcomes a threshold of a selected laser transition; means for coupling radiation from the pump source into a laser cavity; a gain material of holmium-doped fluoride within the laser cavity having an adjustable dopant concentration of holmium to maximize absorption of the pump source wavelength; and optic means for generating at least one wavelength between approximately 1.4 μm and approximately 4 μm from said source.
- 2. The laser source of claim 1, wherein the optic means is configured to generate at least two wavelengths.
- 3. The laser source of claim 2, wherein the two wavelengths include:approximately 1.4 μm and approximately 3.9 μm.
- 4. The laser source of claim 2, wherein the two wavelengths include:approximately 2.9 μm and approximately 3.9 μm.
- 5. The laser source of claim 1, wherein the dopant concentration includes:greater than 2 up to to approximately 10 atomic percent holmium.
- 6. The laser source of claim 1, wherein the dopant concentration includes:approximately 10 to approximately 20 atomic percent holmium.
- 7. The laser source of claim 1, wherein the dopant concentration includes:greater than approximately 20 atomic percent holmium.
- 8. The laser source of claim 1, wherein the pump source includes:a narrow band source emitting at approximately 532 nm.
- 9. The laser source of claim 1, wherein the pump source is:a frequency-doubled Nd:YAG laser.
- 10. The laser source of claim 1, wherein the pump source includes:a narrow band source emitting at approximately 890 nm.
- 11. The laser source of claim 1, wherein the pump source is: a Cr-doped laser.
- 12. The laser source of claim 1, wherein the pump source is: a Ti doped laser.
- 13. The laser source of claim 1, wherein the pump source is chosen from one of:a diode laser and a diode laser array.
- 14. The laser source of claim 1, wherein the pump source includes:a narrow band source emitting at approximately 1.2 microns.
- 15. The laser source of claim 1, wherein the pump source includes:a fiber laser.
- 16. The laser source of claim 1, wherein the optic means is configured to generate a wavelength of: approximately 2.9 μm.
- 17. The laser source of claim 1, wherein the.optic means generate a wavelength of: approximately 3.9 μm.
- 18. The laser source of claim 1, wherein the pump pulse duration allows a switch of said laser transition.
- 19. The laser source of claim 1, wherein the pump pulse duration is allows operation at high energy densities.
- 20. The gain material of claim 1, wherein the homium-doped fluoride is selected from one of: Ho:BYF, Ho:YLF, Ho:NaYF and Ho:KYF.
Parent Case Info
This invention is a division of Ser. No. 09/577,388, filed May 25, 2000, now U.S. Pat. No. 6,269,108, and claims priority based on U.S. Provisional Application Ser. No. 60/135,977 filed May 26, 1999.
US Referenced Citations (16)
Non-Patent Literature Citations (4)
Entry |
Long-Wavelength Stimulated Emission Emission Via Cascade Laser Action in Ho;YLF, L. Esterowitz, et al., Applied Physics Lett. 35(3)Aug. 17, 99, pp. 236-239. |
Three Wavelength Laser Emission in Ho; YLF Via Sequential Cascade, R. C. Eckardt, eta l., Agency for Defense Development, pp. 380-382. |
Wiley, Laser Action at 3577 a in Proton-Beam-Pumped AR-N2Mistures, Appl Phys, Lett.35(3), Aug. 1, 1979, pp. 239-. |
Esterowitz, Long-Wavelength Stimulated Emission Via Cascade Laser Action in HO:YLF, Appl Phys. Lett 35(3), Aug. 1, 1979, pp. 236-238. |
Provisional Applications (1)
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Number |
Date |
Country |
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60/135977 |
May 1999 |
US |