[1] Bucaro J, Dardy H, Carome E. Fiber-optic hydrophone[J]. J. The Acoustical Society of America, 1977, 62(5): 1302-1304.
[2] Cole J H, Bucaro J A, Kirkendall C K, et al. The origin, history and future of fiber-optic interferometric acoustic sensors for US Navy applications[C]// 21st Inter. Conf. on Optical Fiber Sensors, 2011: 47-50.
[3] Kringlebotn J T, Nakstad H, Eriksrud M. Fibre optic ocean bottom seismic cable system: from innovation to commercial success[J]. Proc. SPIE, 2009: 75037U.
[4] Baldwin C S. Brief history of fiber optic sensing in the oil field industry[C]// Fiber Optic Sensors and Applications Ⅺ, 2014: 909803.
[5] Meng Z, Chen W, Wang J, et al. Recent progress in fiber-optic hydrophones[J]. Photon. Sensors, 2021, 11(1): 109-122.
[6] Liao Y, Austin E, Nash P J, et al. Highly scalable amplified hybrid TDM/DWDM array architecture for interferometric fiber-optic sensor systems[J]. J. Lightwave Technol., 2012, 31(6): 882-888.
[10] Agrawal G P. Nonlinear Fiber Optics[M]. Springer, 2000: 195-211.
[11] Chen W, Meng Z. Forward and backward intensity noises induced by stimulated Brillouin scattering in optical fiber[J]. Chinese Opt. Lett., 2012, 10(2): 020603.
[12] Chen W, Meng Z, Zhou H J, et al. Stimulated brillouin scattering-induced phase noise in an interferometric fiber sensing system[J]. Chinese Phys. B, 2012, 21(3): 034212.
[13] Digiovanni D J, Mermelstein M. Large mode area fiber amplifiers with reduced stimulated Brillouin scattering[P]. US. US7856162 B2. 2010-12-21.
[15] Liu Anping. Suppressing stimulated Brillouin scattering in fiber amplifiers using nonuniform fiber and temperature gradient[J]. Opt. Express, 2007, 15(3): 977-984.
[17] Oliveira C, Cheng K J, Shang A Z, et al. Stimulated Brillouin scattering in cascaded fibers of different Brillouin frequency shifts[J]. J. the Optical Society of America B, 1993, 10(6): 969-972.
[18] Dragic P D, Liu C H, Papen G C, et al. Optical fiber with an acoustic guiding layer for stimulated Brillouin scattering suppression[C]// Conf. on Lasers & Electro-Optics, 2006: 1984-1986.
[19] Mauro J C, Raghavan S, Ruffin A B. Enhanced stimulated Brillouin scattering threshold through phase control of multitone phase modulation[J]. Opt. Engin., 2010, 49(10): 84-84.
[20] Zeringue C, Dajani I, Naderi S, et al. A theoretical study of transient stimulated Brillouin scattering in optical fibers seeded with phase-modulated light[J]. Opt. Express, 2012, 19: 21196-21213.
[21] White J O, Rogers S D, Mungan C E. Time-dependent modeling of Brillouin scattering in passive optical fibers pumped by a chirped diode laser[R]. 2012: 1-8.
[22] Chen W, Meng Z. Effects of phase modulation used for SBS suppression on phase noise in an optical fibre[J]. Chinese Opt. Lett., 2011, 44(16): 165402.
[23] Hu X, Chen W, Fan L, et al. An optical modulation method to suppress stimulated Brillouin scattering and the phase noise in a remote interferometric fiber sensing system[J]. Optical Fiber Technol., 2014, 20(5): 547-551.
[24] Hu X, Chen W, Tu X, et al. Theoretical and experimental study of suppressing stimulated Brillouin scattering and phase noise in interferometric fiber sensing systems with phase modulation[J]. Appl. Opt., 2015, 54(8): 2018-2022.
[25] Hu X, Chen W, Tu X, et al. A simple model of suppressing stimulated Brillouin scattering in optical fiber with frequency-modulated laser[J]. Chinese Phys. B, 2014, 23(12): 124208.
[26] Simaeys G V, Emplit P, Haelterman M. Observation of modulational instability recurrence in optical fibers[C]// Nonlinear Guided Waves & Their Applications, 2001.
[27] Hu X, Chen W, Sun S, et al. The effect of modulation instability on the interferometric fiber sensing systems[C]// 2017 Opto-Electronics and Communications Conference (OECC) and Photonics Global Conference (PGC), 2017: 17373510.
[28] Nanii O E, Kuzmenkov A I, Treshchikov V N, et al. Influence of modulation instability on the operation of phase-sensitive optical time domain reflectometers[J]. Laser Phys., 2016, 26(10): 105106.
[29] Dinda P T, Millot G, Louis P. Simultaneous achievement of suppression of modulational instability and reduction of stimulated Raman scattering in optical fibers by orthogonal polarization pumping[J]. J. the Optical Society of America B, 2000, 17(10): 925-928.
[30] Urricelqui J, Alem M, Sagues M, et al. Mitigation of modulation instability in Brillouin distributed fiber sensors by using orthogonal polarization pulses[C]// 24th Inter. Conf. on Optical Fibre Sensors, 2015.
[31] Soto M A, Alem M, Wei C, et al. Mitigating modulation instability in Brillouin distributed fibre sensors[C]// Fifth European Workshop on Optical Fibre Sensors, 2013: 87943J.
[32] Soto M A, Ricchiuti A L, Zhang L, et al. Time and frequency pump-probe multiplexing to enhance the signal response of Brillouin optical time-domain analyzers[J]. Opt. Express, 2014, 22(23): 28584-28595.
[33] Hu X, Meng Z, Chen W, et al. Suppression of modulation instability and the phase noise in the remote interferometric optical fiber sensing systems[C]// Optical Fiber Sensors, 2018: 3642-3645.
[34] Sun S, Hu X, Mo C, et al. Effect of Raman amplification on the modulation instability threshold[J]. Opt. Engin., 2018, 57(3): 036102.1-036102.6.
[35] Zhang Y, Liang Y, Meng Z, et al. A model for the enhancement of the gain saturation power of the forward pumped fiber Raman amplifier with the phase modulation[C]// Asia Communications and Photonics Conf., 2020: 1-3.
[36] Hu X, Chen W, Chen M, et al. Experimental observation of the competition between stimulated Brillouin scattering, modulation instability and stimulated Raman scattering in long single mode fiber[J]. J. Optics, 2016, 18(8): 085501.