Claims
- 1. An optical fiber amplifier module, comprising:
a signal path located between a signal input and a signal output; a first WDM coupler disposed along the signal path; an amplifying gain medium disposed along the signal path; and a first pump laser which emits a first pump signal, wherein the pump laser is disposed out of the signal path in a manner that allows the first pump signal to reflect off the WDM coupler and enter the signal path, wherein the WDM coupler is optically coupled to at least one component chosen from the amplifying gain medium and pump laser by free space coupling.
- 2. The optical amplifier module of claim 1, further comprising an optical isolator disposed along the signal path.
- 3. The optical amplifier module of claim 2, wherein the optical isolator is proximate to the signal input.
- 4. The optical amplifier module of claim 1, wherein the WDM coupler comprises a thin film based filter.
- 5. The optical amplifier module of claim 1, wherein the WDM coupler is disposed upstream of the amplifying gain medium.
- 6. The optical amplifier module of claim 1, wherein the WDM coupler is disposed downstream of the amplifying gain medium.
- 7. The optical amplifier module of claim 1, further comprising a second WDM coupler and a second pump laser which emits a second pump signal.
- 8. The optical amplifier module of claim 7, wherein the first WDM coupler is disposed so as to reflect the first pump signal along the signal path and into the upstream end of the amplifying gain medium, while the second WDM coupler is disposed so as to reflect the second pump signal along the signal path and into the downstream end of the amplifying gain medium.
- 9. The optical amplifier module of claim 7, wherein the second pump laser is optically coupled to the second WDM coupler by free space coupling.
- 10. The optical amplifier module of claim 1, wherein the amplifying gain medium comprises a high gain rare earth doped phosphate glass optical amplifier fiber.
- 11. The optical amplifier module of claim 10, wherein the fiber comprises erbium.
- 12. The optical amplifier module of claim 11, wherein the erbium ion concentration exceeds 1021 ions/cm3.
- 13. The optical amplifier module of claim 12, wherein the fiber is from about 1 cm to about 8 cm long.
- 14. The optical amplifier module of claim 12, wherein the fiber is approximately 2 cm long.
- 15. The optical amplifier module of claim 1, wherein the amplifying gain medium is a rare earth doped optical planar waveguide.
- 16. The optical amplifier module of claim 15, wherein the waveguide is curved.
- 17. The optical amplifier module of claim 2, further comprising a plurality of lenses disposed along the signal path.
- 18. The optical amplifier module of claim 17, wherein at least one lens is optically disposed between the signal input and the optical isolator.
- 19. The optical amplifier module of claim 18, wherein at least one lens is optically disposed between the optical isolator and the WDM coupler.
- 20. The optical amplifier module of claim 19, wherein at least one lense is optically disposed between the WDM coupler and the amplifying gain medium.
- 21. The optical amplifier module of claim 17, wherein the signal input, the optical isolator, the WDM coupler, the pump laser, the amplifying gain medium, and the lenses are optically coupled by free space.
- 22. The optical amplifier module of claim 21, wherein the amplifying gain medium is physically coupled to the signal output.
- 23. The optical amplifier module of claim 1, further comprising a terminal port electronically connected to the pump laser through a control board.
- 24. The optical amplifier module of claim 23, further comprising a heat sink disposed proximate to the control board.
- 25. The optical amplifier module of claim 1, wherein the size of the module is less than 10 cm3.
- 26. The optical amplifier module of claim 1, wherein the amplifying gain medium comprises a high gain rare earth doped phosphate glass optical amplifier fiber.
- 27. An optical fiber amplifier module, comprising:
a signal path located between a signal input and a signal output; an optical isolator disposed along the signal path downstream of the signal input; a WDM coupler disposed along the signal path downstream of the optical isolator; an amplifying gain medium disposed along the signal path downstream of the WDM coupler, wherein the amplifying gain medium comprises high gain rare earth doped phosphate glass optical amplifier fiber; and a pump laser disposed downstream of the WDM coupler and out of the signal path in a manner that allows the pump signal from the pump laser to reflect off the downstream side of the WDM coupler and enter the signal path; wherein the WDM coupler is optically coupled to at least one component chosen from the amplifying gain medium and pump laser by free space coupling.
- 28. The optical amplifier module of claim 27, wherein the WDM coupler is optically coupled by free space to the pump laser and the amplifying gain medium.
- 29. An optical fiber amplifier module, comprising:
a signal path located between a signal input and a signal output; an optical isolator disposed along the signal path downstream of the signal input; an amplifying gain medium disposed along the signal path downstream of the optical isolator, wherein the amplifying gain medium comprises a high gain rare earth doped phosphate glass optical amplifier fiber; a WDM coupler disposed along the signal path downstream of the amplifying gain medium; and a pump laser disposed out of the signal path in a manner that allows the pump signal from the pump laser to reflect off the WDM coupler and enter the signal path; and wherein the WDM coupler is optically coupled to at least one component chosen from the amplifying gain medium and pump laser by free space coupling.
- 30. The optical amplifier module of claim 29, wherein the WDM coupler is optically coupled by free space to the pump laser and the amplifying gain medium.
- 31. An optical fiber amplifier module, comprising:
a signal path located between a signal input and a signal output; an optical isolator disposed along the signal path downstream of the signal input; a first WDM coupler disposed along the signal path downstream of the optical isolator; an amplifying gain medium disposed along the signal path downstream of the WDM coupler;
wherein the amplifying gain medium comprises a high gain rare earth doped phosphate glass optical amplifier fiber; a first pump laser disposed out of the signal path in a manner that allows the pump signal from the first pump laser to reflect off the downstream side of the WDM coupler and enter the signal path; a second WDM coupler disposed along the signal path downstream of the amplifying gain medium; and a second pump laser disposed out of the signal path in a manner that allows the pump signal from the second pump laser to reflect off the downstream side of the WDM coupler and enter the signal path; wherein the first WDM coupler is optically coupled to at least one component chosen from the amplifying gain medium and first pump laser by free space coupling, and further wherein the second WDM coupler is optically coupled to at least one component chosen from the amplifying gain medium and second pump laser by free space coupling.
Parent Case Info
[0001] The present application claims priority benefit to U.S. Provisional Application Nos. 60/253,224 and 60/253,225, both of which were filed on Nov. 27, 2000.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60253224 |
Nov 2000 |
US |
|
60253225 |
Nov 2000 |
US |