Distributed forward Brillouin sensor based on local light phase recovery
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Luc Thévenaz | Zhisheng Yang | Marcelo A Soto | L. Thévenaz | M. Soto | Desmond M Chow | Zhisheng Yang | D. Chow
[1] K. Shimizu,et al. Development of a distributed sensing technique using Brillouin scattering , 1995 .
[2] P. Rakich,et al. Tailorable stimulated Brillouin scattering in nanoscale silicon waveguides , 2013, Nature communications.
[3] Measurement of the refractive-index modulation generated by electrostriction-induced acoustic waves in optical fibers. , 1996, Optics letters.
[4] Michael J. Steel,et al. Brillouin resonance broadening due to structural variations in nanoscale waveguides , 2015, 1510.00079.
[5] K. Ogusu,et al. Tensile-strain coefficient of resonance frequency of depolarized guided acoustic-wave Brillouin scattering , 1999, IEEE Photonics Technology Letters.
[6] M. Ohashi,et al. Sound velocity measurement based on guided acoustic-wave Brillouin scattering , 1992, IEEE Photonics Technology Letters.
[7] Nori Shibata,et al. Fibre diameter estimation based on guided acoustic wave Brillouin scattering , 1992 .
[8] Moshe Tur,et al. Analytical expression and experimental validation of the Brillouin gain spectral broadening at any sensing spatial resolution , 2017, 2017 25th Optical Fiber Sensors Conference (OFS).
[9] Luc Thévenaz,et al. Modeling and evaluating the performance of Brillouin distributed optical fiber sensors. , 2013, Optics express.
[10] Marcelo A. Soto,et al. Frequency-domain technique to measure the inertial response of forward stimulated Brillouin scattering for acoustic impedance sensing , 2017, 2017 25th Optical Fiber Sensors Conference (OFS).
[11] P. Rakich,et al. Forward Brillouin scattering in hollow-core photonic bandgap fibers , 2016 .
[12] V. Laude,et al. Electrostriction and guidance of acoustic phonons in optical fibers , 2012, 1207.2998.
[13] L. Thévenaz,et al. Mapping of chromatic-dispersion distribution along optical fibers with 20-m spatial resolution , 2005, Journal of Lightwave Technology.
[14] R. M. Thaler,et al. Recurrence techniques for the calculation of Bessel functions , 1959 .
[15] Birgit Stiller,et al. Cascaded forward Brillouin scattering to all Stokes orders , 2016, 1607.04740.
[16] A. Zadok,et al. Random‐access distributed fiber sensing , 2012 .
[17] K. Ogusu,et al. Temperature coefficient of sideband frequencies produced by depolarized guided acoustic-wave Brillouin scattering , 1998, IEEE Photonics Technology Letters.
[18] Kohei Suzuki,et al. Temperature coefficient of sideband frequency produced by polarized guided acoustic-wave Brillouin scattering in highly nonlinear fibers , 2017 .
[19] V. Laude,et al. Generation of phonons from electrostriction in small-core optical waveguides , 2013 .
[20] Daniel J Gauthier,et al. Fsbs Resonances Observed in a Standard Highly Nonlinear Fiber References and Links , 2022 .
[21] Kentaro Nakamura,et al. Experimental study on depolarized GAWBS spectrum for optomechanical sensing of liquids outside standard fibers. , 2017, Optics express.
[22] Kazuo Hotate,et al. Measurement of Brillouin Gain Spectrum Distribution along an Optical Fiber Using a Correlation-Based Technique : Proposal, Experiment and Simulation (Special Issue on Optical Fiber Sensors) , 2000 .
[23] Luc Thévenaz,et al. Brillouin Optical Time-Domain Analysis of Fiber-Optic Parametric Amplifiers , 2007 .
[24] M. D. Rourke,et al. Optical time domain reflectometer. , 1977, Applied optics.
[25] A. V. Nazarkin,et al. Tightly trapped acoustic phonons in photonic crystal fibres as highly nonlinear artificial Raman oscillators , 2009 .
[26] A. Zadok,et al. Optomechanical sensing of liquids outside standard fibers using forward stimulated Brillouin scattering , 2016 .
[27] Shelby,et al. Guided acoustic-wave Brillouin scattering. , 1985, Physical review. B, Condensed matter.