ELECTROMAGNETISM, OPTICS, ACOUSTICS, HEAT TRANSFER, CLASSICAL MECHANICS, AND FLUID DYNAMICS |
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Polarization dependence of gain and amplified spontaneous Brillouin scattering noise analysis for fiber Brillouin amplifier |
Kuan-Lin Mu(穆宽林)1, Jian-Ming Shang(商建明)2, Li-Hua Tang(唐丽华)1, Zheng-Kang Wang(王正康)1, Song Yu(喻松)1, Yao-Jun Qiao(乔耀军)1 |
1 School of Information and Communication Engineering, Beijing University of Posts and Telecommunications, Beijing 100876, China;
2 Institute of Information Photonics and Optical Communications, Beijing University of Posts and Telecommunications, Beijing 100876, China |
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Abstract The polarization dependences of gain and amplified spontaneous Brillouin scattering (ABS) noise for fiber Brillouin amplifier (FBA) are analyzed through theories, simulations, and experiments. Modified vector propagation equations for calculating the gain of the probe signal and the ABS noise are derived and analyzed in the Stokes spaces. In simulations and experiments, we prove that the gain of the probe signal and the ABS noise are strongly dependent on the relative state of polarization (SOP) of the pump and probe signals. The closer the relative SOP of the pump and probe signals is, the more obvious ABS noise suppression effect will be brought by increasing the power of the input probe signal.
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Received: 26 April 2019
Revised: 28 May 2019
Accepted manuscript online:
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PACS:
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42.65.Es
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(Stimulated Brillouin and Rayleigh scattering)
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13.88.+e
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(Polarization in interactions and scattering)
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Fund: Project supported by the National Natural Science Foundation of China (Grant Nos. 61531003, 61690195, 61701040, and 61427813), the Fund of State Key Laboratory of Information Photonics and Optical Communications, Beijing University of Posts and Telecommunications (BUPT), China, and the Youth Research and Innovation Program of BUPT, China. |
Corresponding Authors:
Yao-Jun Qiao
E-mail: qiao@bupt.edu.cn
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Cite this article:
Kuan-Lin Mu(穆宽林), Jian-Ming Shang(商建明), Li-Hua Tang(唐丽华), Zheng-Kang Wang(王正康), Song Yu(喻松), Yao-Jun Qiao(乔耀军) Polarization dependence of gain and amplified spontaneous Brillouin scattering noise analysis for fiber Brillouin amplifier 2019 Chin. Phys. B 28 094216
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[1] |
Terra O, Grosche G, and Schnatz H 2010 Opt. Express 18 16102
|
[2] |
Raupach S M F, Koczwara A and Grosche G 2014 Opt. Express 22 26537
|
[3] |
Droste S, Udem T, Hänsch T W, Holzwarth T, Ozimek F, Raupach S, Schnatz H and Grosche G 2013 Joint UFFC, EFFC and PFM Symposium, July 21-25, 2013, Prague, Czech Republic, p. 1004
|
[4] |
Yuan H, Wang Y L, Lü Z W and Zheng Z X 2015 Chin. Phys. B 24 094210
|
[5] |
Urricelqui J, Fernandino F L, Sagues M and Loayssa A 2015 J. Lightwave Technol. 33 2633
|
[6] |
Wei W, Yi L L, Jaouën Y and Hu W S 2014 Opt. Express 22 23249
|
[7] |
Zarei A, Rosdin R Z R R, Ali N M, Ahmad H and Harun S W 2014 Chia. Phys. Lett. 31 054202
|
[8] |
Li J, Chen T, Sun J Q and Shen X 2013 Chin. Phys. Lett. 30 024205
|
[9] |
Schneider T, Junker M, and Lauterbach K U 2006 J. Opt. Soc. Am. B 23 1012
|
[10] |
Shlomovits O and Tur M 2013 Opt. Lett. 38 836
|
[11] |
Deventer M O and Boot A J 1994 J. Lightwave Technol. 12 585
|
[12] |
Canovas P M, Barmenkov Y O, Kiryanov A V, Cruz J L, and Andres M V 2019 Opt. Express 27 8520
|
[13] |
Jayarajan P, Kuppusamy P G, Sundararajan T V P, Thiyagupriyadharsan M R, Ahamedyasar Z, Maheswar R and Amiri I S 2018 Results Phys. 10 160
|
[14] |
Karow M, Neumann J, Kracht D and Weåels P 2012 Opt. Express 20 10572
|
[15] |
Ferreira M F, Rocha J F and Pinto J L 1994 Opt. Quantum Electron. 26 35
|
[16] |
Foley B, Dakss M L, Davies R W and Melman P 1989 J. Lightwave Technol. 7 2024
|
[17] |
Sheng L W, Ba D X and Lu Z W 2019 Appl. Opt. 58 147
|
[18] |
He W, Liu H, Hasi W and Lu Z 2012 International Conferences on Optoelectronics and Microelectronics (ICOM), August 23-25, 2012, Changchun, China, p. 228
|
[19] |
Choi M, Mayorga I C, Preuåler S and Schneider T 2016 J. Lightwave Technol. 34 3930
|
[20] |
Subías J, Heras C, Pelayo J, Villuendas F 2009 Opt. Express 17 6753
|
[21] |
Zadok A, Zilka E, Eyal A, Thévenaz L and Tur M 2008 Opt. Express 16 21692
|
[22] |
Galtarossa A, Palmieri L, Schiano M, Tambosso T 2001 Opt. Lett. 26 962
|
[23] |
Zhang G, Wu X Q, Li S L, Guang D, Liu W, Zuo C, Fang S S and Yu B L 2019 Opt. Commun. 442 8
|
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