PhotonIcs and Electromagnetics Research Symposium,
also known as Progress In Electromagnetics Research Symposium
PIERS Proceedings
Published: 2015-07-09
Erbium-doped Fiber Laser with Distributed Feedback from a Fiber Grating Array
By
Proceedings of 2015 Photonics & Electromagnetics Research Symposium, Prague, July 6 - 9,Page(s)666-669
Abstract
An erbium-doped fiber laser with low coherence, low threshold, high efficiency and narrow linewidth is demonstrated for the first time based on distributed feedback from a fiber Bragg grating (FBG) array. The FBG array contains tens of FBGs with identical Bragg wavelength but very weak reflectivity of ∼ 5‰, inscribed along a normal single-mode fiber with random separations. Low pump threshold power of 3.0 mW and high slope efficiency of 24% are achieved, which are comparable with that of normal erbium-doped fiber lasers but much better than that of conventional random fiber lasers based on distributed Rayleigh scattering.
Citation
Xinyong Dong, Perry Ping Shum, Haibin Su, Junwei Yuan, and Lei Zhu, "Erbium-doped Fiber Laser with Distributed Feedback from a Fiber Grating Array," Proceedings of 2015 Photonics & Electromagnetics Research Symposium, Prague, July 6 - 9,Page(s)666-669
References

1. Markushev, V. M., et al., "ZnO random laser spectra under nanosecond pumping," Laser Physics, Vol. 17, 1109-1118, 2007.        Google Scholar

2. Wiersma, D. S., "The physics and applications of random lasers," Nature Physics, Vol. 4, 359-367, 2008.        Google Scholar

3. Vatnik, I. D., Dmitriy V. Churkin, Sergey A. Babin, and Sergei K. Turitsyn, "Cascaded random distributed feedback Raman fiber laser operating at 12 µm," Optics Express, Vol. 19, 18486, 2011.        Google Scholar

4. Bliokh, Y., Elena I. Chaikina, N. Lizárraga, Eugenio R. Méndez, V. Freilikher, and F. Nori, "Disorder-induced cavities, resonances, and lasing in randomly layered media," Physical Review B, Vol. 86, 4583-4586, 2012.        Google Scholar

5. Leonetti, M., C. Conti, and C. Lopez, "The mode-locking transition of random lasers," Nature Photonics, Vol. 5, 615-617, 2011.        Google Scholar

6. Sugavanam, S., N. Tarasov, X. Shu, and D. V. Churkin, "Narrow-band generation in random distributed feedback fiber laser," Optics Express, Vol. 21, 16466-16472, July 15, 2013.        Google Scholar

7. Zhang, P., et al., "A novel fiber laser based on Rayleigh scattering feedback with a half-opened cavity", 890617–890617-6, 2013.        Google Scholar

8. Zhang, W. L., Y. J. Rao, J. M. Zhu, Z. X. Y. Z. N. Wang, and X. H. Jia, "Low threshold 2nd-order random lasing of a fiber laser with a half-opened cavity," Optics Express, Vol. 20, 14400-14405, June 18, 2012.        Google Scholar

9. Churkin, D. V., et al., "Raman fiber lasers with a random distributed feedback based on Rayleigh scattering," Physical Review A, Vol. 82, 033828, 2010.        Google Scholar

10. Sebbah, P. H., C. Vanneste, and H. Cao, "Lasing with resonant feedback in weakly scattering random systems," Photonic Metamaterials: From Random to Periodic, WC3, Jackson Hole, WY, 2007.        Google Scholar

11. Lizárraga, N., N. P. Puente, E. I. Chaikina, T. A. Leskova, and E. R. Méndez, "Single-mode Er-doped fiber random laser with distributed Bragg gratingfeedback," Optics Express, Vol. 17, 395-404, January 19, 2009.        Google Scholar

12. Wang, L., X. Dong, P. P. Shum, C. Huang, and H. Su, "Erbium-doped fiber laser with distributed Rayleigh output mirror," Laser Physics, Vol. 24, 115101, 2014.        Google Scholar

13. Guo, H., J. Tang, X. Li, Y. Zheng, and H. Yu, "On-line writing identical and weak fiber Bragg grating arrays," Chinese Optics Letters, Vol. 11, 030602, March 1, 2013.        Google Scholar