Claims
- 1. A method of amplifying an optical signal in a thulium doped fiber amplifier comprising the steps of:
a first deposition of energy into the fiber amplifier by pumping with radiation of a first wavelength; and a second deposition of energy into the fiber amplifier by pumping with radiation of a second wavelength; wherein the radiation of the first wavelength by single photon absorption populates the 3H4 level of the thulium dopant, and the radiation of the second wavelength primarily depopulates the 3F4 level by excited absorption of a single photon, whereby achieving a population inversion between the 3H4 and the 3F4 levels.
- 2. The optical amplifying method according to claim 1 wherein the radiation of the second wavelength primarily depopulates the 3F4 level by strong excited state absorption to the 3F2 level.
- 3. The optical amplifying method according to claim 1 wherein the radiation of the first wavelength has a wavelength of around 800 nm.
- 4. The optical amplifying method according to claim 3, wherein the radiation of the first wavelength has a wavelength of 800±10 nm.
- 5. The optical amplifying method according to claim 1, wherein the radiation of the second wavelength has a wavelength of around 1050 nm.
- 6. The optical amplifying method according to claim 5, wherein the radiation of the second wavelength has a wavelength of around 1050 ±10 nm.
- 7. The optical amplifying method according to claim 1, wherein the radiation of the second wavelength has a wavelength of around 980 nm.
- 8. The optical amplifying method according to claim 7, wherein the radiation of the second wavelength has a wavelength of around 980 ±10 nm.
- 9. The optical amplifying method according to claim 2, wherein the radiation of the second wavelength simultaneously populates the 3H4 level through the 3F2 level.
- 10. The optical amplifying method according to claim 1, further comprising the step of reflecting at least one of the radiations of the first and second wavelengths by a at least one Bragg grating, whereby facilitating a reduction of length of the thulium doped fiber amplifier without essentially affecting the amplification gain.
- 11. The optical amplifying method according to claim 1, wherein the radiation of the first or second wavelength is generated from the radiation of the second or first wavelength, respectively.
- 12. The optical amplifying method according to claim 11, wherein the radiation of the first or second wavelength is generated in an optically active material incorporated in an amplifying assembly, the generation of radiation of the first or second wavelength thus induced by the radiation of the second or first wavelength, respectively.
- 13. An amplifying assembly for amplifying an optical signal in a thulium doped fiber amplifier comprising:
a first energy depositing means for depositing energy into the fiber amplifier by pumping with radiation of a first wavelength; and a second energy depositing means for depositing energy into the fiber amplifier by pumping with radiation of a second wavelength; wherein the radiation of the first wavelength by single photon absorption populates the 3H4 level of the thulium dopant, and the radiation of the second wavelength primarily depopulates the 3F4 level by excited absorption of a single photon, whereby achieving a population inversion between the 3H4 and the 3F4 levels.
- 14. The amplifying assembly according to claim 13, wherein the radiation of the second wavelength primarily depopulates the 3F4 level by strong excited state absorption to the 3F2 level.
- 15. The amplifying assembly according to claim 13, wherein the radiation of the first wavelength has a wavelength of around 800 nm.
- 16. The amplifying assembly according to claim 15, wherein the radiation of the first wavelength has a wavelength of 800±10 nm.
- 17. The amplifying assembly according to claim 13, wherein the radiation of the second wavelength has a wavelength of around 1050 nm.
- 18. The amplifying assembly according to claim 17, wherein the radiation of the second wavelength has a wavelength of around 1050±10 nm.
- 19. The amplifying assembly according to claim 13, wherein the radiation of the second wavelength has a wavelength of around 980 nm.
- 20. The amplifying assembly according to claim 17, wherein the radiation of the second wavelength has a wavelength of around 980±10 nm.
- 21. The amplifying assembly according to claim 13, wherein the radiation of the first and/or second wavelength is produced by laser diodes.
- 22. The amplifying assembly according to claim 13, wherein the radiation of the first or second wavelength is generated from the radiation of the second or first wavelength, respectively.
- 23. The amplifying assembly according to claim 22, further comprising means for generating radiation incorporated in the amplifying assembly, wherein the radiation of the first or second wavelength is generated by the means for generating radiation using the radiation of the second or first wavelength, respectively.
- 24. The amplifying assembly according to claim 23, wherein the means for generating radiation is provided as a cladding surrounding the thulium doped fiber in a core, the cladding comprising neodymium (Nd) ions and adopted to absorb some of the radiation at the first wavelength and emit radiation at the second wavelength.
- 25. The amplifying assembly according to claim 23, wherein the means for generating radiation is a fiber laser driven by the radiation of the first wavelength.
- 26. The amplifying assembly according to claim 25, wherein the fiber laser is a ring configuration of neodymium (Nd)-doped fiber driven by a semiconductor diode laser providing radiation of the first wavelength.
- 27. The amplifying assembly according to claim 25, wherein the fiber laser comprises an optical cavity in which a neodymium (Nd)-doped fiber is placed between two fiber Bragg gratings.
- 28. The amplifying assembly according to any of claims 13 to 18, further comprising at least one Bragg grating adapted for reflecting at least one of the radiation of the first and second wavelengths by, whereby facilitating a reduction of length of the thulium doped fiber amplifier without essentially affecting the amplification gain.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This patent application claims priority from and incorporates by reference the entire disclosure of U.S. Provisional Patent Application No. 60/363,438, which was filed on Mar. 11, 2002. This patent application also claims priority from and incorporates by reference the entire disclosure of U.S. Provisional Patent Application No. 60/365,133, which was filed on Mar. 14, 2002.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60363438 |
Mar 2002 |
US |
|
60365133 |
Mar 2002 |
US |