Title :
Fiber-Optic Interferometry Using Narrowband Light Source and Electrical Spectrum Analyzer: Influence on Brillouin Measurement
Author :
Mizuno, Yosuke ; Hayashi, Neisei ; Nakamura, Kentaro
Author_Institution :
Precision & Intell. Lab., Tokyo Inst. of Technol., Yokohama, Japan
Abstract :
We observe an interference pattern using a simple fiber-optic interferometer consisting of an electrical spectrum analyzer and a narrowband light source, which is commonly employed for observing the Brillouin gain spectrum. This interference pattern expands well beyond the frequency range corresponding to the Brillouin frequency shift in silica fibers (~11 GHz at 1.55 μm). Using both silica single-mode and polymer optical sensing fibers, we then experimentally prove that the distinctive noise in a self-heterodyne-based Brillouin measurement with an unoptimized polarization state originates from the interference between the reference light and the Fresnel-reflected light. This noise can be almost completely suppressed by employing a delay line that is longer than the coherence length of the light source and by artificially applying a high loss near the open end of the sensing fiber.
Keywords :
fibre optic sensors; light interferometry; light sources; nonlinear optics; optical delay lines; optical fibre losses; optical fibre polarisation; optical noise; optical polymers; silicon compounds; spectral analysers; stimulated Brillouin scattering; Brillouin frequency shift; Brillouin gain spectrum; Fresnel-reflected light; SiO2; coherence length; delay line; distinctive noise; electrical spectrum analyzer; fiber-optic interferometry; frequency range; interference pattern; loss; narrowband light source; polymer optical sensing fibers; reference light; self-heterodyne-based Brillouin measurement; silica fiber; silica single-mode; simple fiber-optic interferometer; unoptimized polarization state; wavelength 1.55 mum; Interference; Noise; Optical fiber polarization; Optical interferometry; Scattering; Silicon compounds; Brillouin scattering; Fiber-optic interferometry; fiber-optic interferometry; nonlinear optics; polymer optical fiber;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2014.2365187