IP Library Granted Patent US 9,276,371
Granted Patent B2
US 9,276,371 · App. 14/184,439 · Granted Mar 1, 2016

Supercontinuum source

Inventors: John Redvers Clowes (New Milton, GB); Anatoly Borisovich Grudinin (Southampton, GB); Adam Devine (Southampton, GB)
Assignee: Fianium Ltd
H01S3/06754G02B6/02347G02B6/26G02F1/365H01S3/2308G02F2001/3528G02F2201/02G02F2201/05H01S3/0092H01S3/1618H01S3/2383
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Quick Facts
Patent No.
US 9,276,371
App. No.
14/184,439
Granted
Mar 1, 2016
Kind
B2
Abstract

A supercontinuum optical pulse source provides a combined supercontinuum. The supercontinuum optical pulse source comprises one or more seed pulse sources, and first and second optical amplifiers arranged along first and second respective optical paths. The first and second optical amplifiers are configured to amplify one or more optical signals generated by said one or more seed pulse sources. The supercontinuum optical pulse source further comprises a first microstructured light-guiding member arranged along the first optical path and configured to generate supercontinuum light responsive to an optical signal propagating along said first optical path, and a second microstructured light-guiding member arranged along the second optical path and configured to generate supercontinuum light responsive to an optical signal propagating along said second optical path. The supercontinuum optical pulse source further comprises a supercontinuum-combining member to combine supercontinuum generated in at least the first and second microstructured light-guiding members to form a combined supercontinuum. The supercontinuum-combining member comprises an output fiber, wherein the output fiber comprises a multimode optical fiber supporting a plurality of spatial modes at one or more wavelengths of the combined supercontinuum.

Claims (54)

1. A supercontinuum optical pulse source to provide a combined supercontinuum, comprising:

one or more seed pulse sources;

first and second optical amplifiers arranged along first and second respective optical paths, wherein said first and second optical amplifiers are configured to amplify one or more optical signals generated by said one or more seed pulse sources;

a first microstructured light-guiding member arranged along the first optical path and configured to generate supercontinuum light responsive to an optical signal propagating along the first optical path;

a second microstructured light-guiding member arranged along the second optical path and configured to generate supercontinuum light responsive to an optical signal propagating along the second optical path;

a supercontinuum-combining member to combine supercontinuum generated in at least the first and second microstructured light-guiding members to form a combined supercontinuum;

wherein said supercontinuum-combining member comprises an output fibre, wherein the output fibre comprises a multimode optical fibre supporting a plurality of spatial modes at one or more wavelengths of the combined supercontinuum and

wherein said optical amplifiers are configured so that in use, the power in a microstructured light-guiding member over the wavelength range 400 nm to 700 nm is greater than 0.5 W.

2. A supercontinuum optical pulse source as claimed in claim 1 , wherein said first microstructured light-guiding member comprises a first microstructured optical fibre and said second microstructured light-guiding member comprises a second microstructured optical fibre.

3. A supercontinuum optical pulse source as claimed in claim 1 , wherein said output fibre comprises a silica-based optical fibre.

4. A supercontinuum optical pulse source as claimed in claim 1 wherein said first optical amplifier comprises said first microstructured light-guiding member, and said second optical amplifier comprises said second microstructured light-guiding member.

5. A supercontinuum optical pulse source as claimed in claim 1 , wherein said supercontinuum-combining member comprises one or more microstructured input fibres.

6. A supercontinuum optical pulse source as claimed in claim 1 , wherein said supercontinuum-combining member comprises one or more input fibres having a numerical aperture >0.3 at one or more wavelengths of the combined supercontinuum.

7. A supercontinuum optical pulse source as claimed in claim 1 , wherein said first and second optical amplifiers are in optical communication with the same seed pulse source.

8. A supercontinuum optical pulse source as claimed in claim 1 , wherein said supercontinuum-combining member comprises one or more input fibres which are single mode at one or more of the wavelengths of the combined supercontinuum.

9. A supercontinuum optical pulse source as claimed in claim 1 , wherein said supercontinuum-combining member has one or more multimode input fibres which support a plurality of spatial modes at one or more wavelengths of the combined supercontinuum.

10. A supercontinuum optical pulse source as claimed in claim 1 , wherein said supercontinuum-combining member has one or more input fibres which support no more than four spatial modes at any wavelength within the combined supercontinuum.

11. A supercontinuum optical pulse source as claimed in claim 1 , wherein the output fibre of said supercontinuum-combining member supports no more than four spatial modes at any wavelength within the combined supercontinuum.

12. A supercontinuum optical pulse source to provide a combined supercontinuum, comprising:

one or more seed pulse sources;

first and second optical amplifiers arranged along first and second respective optical paths, wherein said first and second optical amplifiers are configured to amplify one or more optical signals generated by said one or more seed pulse sources;

a first microstructured light-guiding member arranged along the first optical path and configured to generate supercontinuum light responsive to an optical signal propagating along the first optical path;

a second microstructured light-guiding member arranged along the second optical path and configured to generate supercontinuum light responsive to an optical signal propagating along the second optical path;

a supercontinuum-combining member to combine supercontinuum generated in at least the first and second microstructured light-guiding members to form a combined supercontinuum;

wherein said supercontinuum-combining member comprises an output fibre, wherein the output fibre comprises a multimode optical fibre supporting a plurality of spatial modes at one or more wavelengths of the combined supercontinuum; and

wherein the output fibre of said supercontinuum-combining member supports a plurality of spatial modes at all wavelengths of the combined supercontinuum.

13. A supercontinuum optical pulse source to provide a combined supercontinuum, comprising:

one or more seed pulse sources;

first and second optical amplifiers arranged along first and second respective optical paths, wherein said first and second optical amplifiers are configured to amplify one or more optical signals generated by said one or more seed pulse sources;

a first microstructured light-guiding member arranged along the first optical path and configured to generate supercontinuum light responsive to an optical signal propagating along the first optical path;

a second microstructured light-guiding member arranged along the second optical path and configured to generate supercontinuum light responsive to an optical signal propagating along the second optical path;

a supercontinuum-combining member to combine supercontinuum generated in at least the first and second microstructured light-guiding members to form a combined supercontinuum;

wherein said supercontinuum-combining member comprises an output fibre, wherein the output fibre comprises a multimode optical fibre supporting a plurality of spatial modes at one or more wavelengths of the combined supercontinuum; and

a third optical amplifier arranged along a third optical path, and a third microstructured light-guiding member arranged along the third optical path and configured to generate supercontinuum light responsive to an optical signal propagating along the third optical path.

14. A supercontinuum optical pulse source as claimed in claim 12 , wherein the output fibre comprises a silica-based optical fibre.

15. A supercontinuum optical pulse source as claimed in claim 12 , wherein said first microstructured light-guiding member comprises a first microstructured optical fibre and said second microstructured light-guiding member comprises a second microstructured optical fibre.

16. A supercontinuum optical pulse source as claimed in claim 12 wherein said first optical amplifier comprises said first microstructured light-guiding member, and said second optical amplifier comprises said second microstructured light-guiding member.

17. A supercontinuum optical pulse source as claimed in claim 12 , wherein said supercontinuum-combining member comprises one or more microstructured input fibres.

18. A supercontinuum optical pulse source as claimed in claim 12 , wherein said supercontinuum-combining member comprises one or more input fibres having a numerical aperture >0.3 at one or more wavelengths of the combined supercontinuum.

19. A supercontinuum optical pulse source as claimed in claim 12 , wherein said first and second optical amplifiers are in optical communication with the same seed pulse source.

20. A supercontinuum optical pulse source as claimed in claim 12 , wherein said supercontinuum-combining member comprises one or more input fibres which are single mode at one or more of the wavelengths of the combined supercontinuum.

21. A supercontinuum optical pulse source as claimed in claim 12 , wherein said supercontinuum-combining member has one or more multimode input fibres which support a plurality of spatial modes at one or more wavelengths of the combined supercontinuum.

22. A supercontinuum optical pulse source as claimed in claim 12 , wherein said supercontinuum-combining member has one or more input fibres which support no more than four spatial modes at any wavelength within the combined supercontinuum.

23. A supercontinuum optical pulse source as claimed in claim 12 , wherein the output fibre of said supercontinuum-combining member supports no more than four spatial modes at any wavelength within the combined supercontinuum.

24. A supercontinuum optical pulse source as claimed in claim 13 , wherein the output fibre comprises a silica-based optical fibre.

25. A supercontinuum optical pulse source as claimed in claim 13 , wherein said first microstructured light-guiding member comprises a first microstructured optical fibre and said second microstructured light-guiding member comprises a second microstructured optical fibre.

26. A supercontinuum optical pulse source as claimed in claim 13 wherein said first optical amplifier comprises said first microstructured light-guiding member, and said second amplifier comprises said second microstructured light-guiding member.

27. A supercontinuum optical pulse source as claimed in claim 13 , wherein said supercontinuum-combining member comprises one or more microstructured input fibres.

28. A supercontinuum optical pulse source as claimed in claim 13 , wherein said supercontinuum-combining member comprises one or more input fibres having a numerical aperture >0.3 at one or more wavelengths of the combined supercontinuum.

29. A supercontinuum optical pulse source as claimed in claim 13 , wherein said first and second optical amplifiers are in optical communication with the same seed pulse source.

30. A supercontinuum optical pulse source as claimed in claim 13 , wherein said supercontinuum-combining member comprises one or more input fibres which are single mode at one or more of the wavelengths of the combined supercontinuum.

31. A supercontinuum optical pulse source as claimed in claim 13 , wherein said supercontinuum-combining member has one or more multimode input fibres which support a plurality of spatial modes at one or more wavelengths of the combined supercontinuum.

32. A supercontinuum optical pulse source as claimed in claim 13 , wherein said supercontinuum-combining member has one or more input fibres which support no more than four spatial modes at any wavelength within the combined supercontinuum.

33. A supercontinuum optical pulse source as claimed in claim 13 , wherein the output fibre of said supercontinuum-combining member supports no more than four spatial modes at any wavelength within the combined supercontinuum.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 28, 2017
From: FIANIUM LTD
To: NKT PHOTONICS A/S
Reel/Frame 042174/0541 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 25, 2014
From: CLOWES, JOHN R., MR.; GRUDININ, ANATOLY B., MR.; DEVINE, ADAM L., MR.
To: FIANIUM LTD.
Reel/Frame 032287/0677 →
Priority Claims (1)
GB 1302960 · Feb 20, 2013 · national
Continuity (1)
Related Publication 20140233091A1 · Aug 21, 2014