IP Library Granted Patent US 11,909,165
Granted Patent B2
US 11,909,165 · App. 17/605,353 · Granted Feb 20, 2024

Driven-cavity femtosecond sources

Inventor: William Renninger (Rochester, NY)
Assignee: UNIVERSITY OF ROCHESTER
H01S3/0057G02B6/02214G02B6/2934H01S3/0085H01S3/06725H01S3/06791H01S3/1109H01S2301/085
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Quick Facts
Patent No.
US 11,909,165
App. No.
17/605,353
Granted
Feb 20, 2024
Kind
B2
Abstract

Optical pulse sources. In one example, the pulse source includes an optical fiber ring resonator with at least one normal dispersion fiber segment characterized by a positive group velocity dispersion (GVD) per unit length and at least one anomalous dispersion fiber segment characterized by a negative GVD per unit length. In another example, the pulse source includes an optical fiber ring resonator with one or more fiber segments having a positive net group velocity dispersion (GVD); and an intracavity spectral filter optically coupled to the one or more fiber segments. The pulse source is configured to generate one or more optical solitons in the optical fiber ring resonator.

Claims (28)

1. An optical pulse source comprising:

a drive unit configured to provide pump light at a drive power;

a passive optical fiber ring resonator optically coupled to the drive unit for receiving the pump light, the optical fiber ring resonator comprising:

at least one normal dispersion fiber segment characterized by a positive group velocity dispersion (GVD) per unit length; and

at least one anomalous dispersion fiber segment characterized by a negative GVD per unit length;

wherein the drive power, a net GVD of the optical fiber ring resonator, and a frequency detuning parameter of the optical fiber ring resonator are configured to generate one or more optical solitons in the optical fiber ring resonator, and wherein the one or more optical solitons each has a temporal duration from about 50 fs to about 500 fs, measured at full-width half-maximum; and

an output optically coupled to the optical fiber ring resonator for out-coupling a portion of each of the one or more optical solitons.

2. The optical pulse source of claim 1 , further comprising a feedback control circuit coupled to the drive unit and the optical fiber ring resonator, wherein the feedback control circuit is configured to cause a frequency of the pump light to be locked with respect to a resonance frequency of the optical fiber ring resonator.

3. The optical pulse source of claim 1 , further comprising a feedback control circuit coupled to the drive unit and the optical fiber ring resonator, wherein the feedback control circuit is configured to cause a resonance frequency of the optical fiber ring resonator to be locked with respect to a frequency of the pump light.

4. The optical pulse source of claim 1 , a length of the at least one normal dispersion fiber segment and a length of the at least one anomalous dispersion fiber segment are configured to provide the net GVD of the optical fiber ring resonator.

5. The optical pulse source of claim 4 , wherein the net GVD ranges from about −1000 fs 2 to about −10,000 fs 2 .

6. The optical pulse source of claim 1 , wherein each of the one or more optical solitons has a full-width half-maximum temporal duration ranging from about 50 fs to about 210 fs.

7. The optical pulse source of claim 1 , wherein the optical fiber ring resonator further comprises an optical isolator.

8. The optical pulse source of claim 7 , wherein the optical isolator comprises an optical fiber isolator or a free-space isolator.

9. The optical pulse source of claim 1 , wherein the drive unit comprises a pump light source.

10. The optical pulse source of claim 9 , wherein the pump light source comprises a continuous-wave (CW) laser source.

11. The optical pulse source of claim 9 , the drive unit further comprises an optical amplifier configured to amplify optically coupled to the pump light source.

12. The optical pulse source of claim 11 , wherein the optical amplifier comprises an erbium-doped fiber amplifier (EDFA).

13. The optical pulse source of claim 9 , wherein the drive unit further comprises an intensity modulator optically coupled to the pump light source and configured to modulate an intensity of the pump light into a pulse train.

14. The optical pulse source of claim 13 , further comprising a spectral filter optically coupled to the output.

15. The optical pulse source of claim 14 , wherein the spectral filter comprises a fiber Bragg grating (FBG), or a birefringence-based spectral filter, or an interference-based spectral filter.

16. The optical pulse source of claim 1 , wherein the optical fiber ring resonator comprises at least one free-space air gap.

17. The optical pulse source of claim 1 , wherein the at least one normal dispersion fiber segment and the at least one anomalous dispersion fiber segment comprise polarization-maintaining optical fibers.

18. The optical pulse source of claim 1 , further comprising an optical compression component coupled to the output and configured to compress the portion of each of the one or more optical solitons temporally.

19. The optical pulse source of claim 18 , wherein the optical compression component comprises a pair of gratings, or a pair of prisms, or an optical fiber compression component.

20. The optical pulse source of claim 1 , wherein the negative GVD per unit length of the at least one anomalous dispersion fiber segment ranges from about −1000 fs 2 to −50,000 fs 2 , or from about −1000 fs 2 to −10,000 fs 2 , or from about −1000 fs 2 to −5,000 fs 2 .

21. The optical pulse source of claim 1 , wherein the drive power ranges from about 10 mW to about 1 kW.

22. The optical pulse source of claim 1 , wherein the frequency detuning parameter ranges from about −0.5 radians to about −3 radians per roundtrip.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 21, 2021
From: RENNINGER, WILLIAM
To: UNIVERSITY OF ROCHESTER
Reel/Frame 057885/0341 →
Continuity (2)
Provisional Application 62838361 · Apr 25, 2019
Related Publication 20220190541A1 · Jun 16, 2022
Cited By (2)
US 12,347,994 US 12,710,587