Mizuno Yosuke, Hayashi Neisei, Tanaka Hiroki, Wada Yuji, Nakamura Kentaro
Precision and Intelligence Laboratory, Tokyo Institute of Technology, 4259 Nagatsuta-cho, Midori-ku, Yokohama 226-8503, Japan.
Faculty of Science and Technology, Seikei University, 3-3-1 Kichijoji Kitamachi, Musashino-shi, Tokyo 180-8633, Japan.
Sci Rep. 2015 Jun 13;5:11388. doi: 10.1038/srep11388.
We measure the Brillouin gain spectra in two cores (the central core and one of the outer cores) of a ~3-m-long, silica-based, 7-core multi-core fiber (MCF) with incident light of 1.55 μm wavelength, and investigate the Brillouin frequency shift (BFS) and its dependence on strain and temperature. The BFSs of both the cores are ~10.92 GHz, and the strain- and temperature-dependence coefficients of the BFS in the central core are 484.8 MHz/% and 1.08 MHz/°C, respectively, whereas those in the outer core are 516.9 MHz/% and 1.03 MHz/°C. All of these values are not largely different from those in a silica single-mode fiber, which is expected because the cores are basically composed of the same material (silica). We then analyze the difference in structural deformation between the two cores when strain is applied to the fiber, and show that it does not explain the difference in the BFS dependence of strain in this case. The future prospect on distributed strain and temperature sensing based on Brillouin scattering in MCFs is finally presented.
我们使用波长为1.55μm的入射光,测量了一根约3米长的硅基7芯多芯光纤(MCF)两个纤芯(中心纤芯和一个外纤芯)中的布里渊增益谱,并研究了布里渊频移(BFS)及其对应变和温度的依赖性。两个纤芯的BFS均约为10.92GHz,中心纤芯中BFS的应变和温度依赖性系数分别为484.8MHz/%和1.08MHz/°C,而在外纤芯中分别为516.9MHz/%和1.03MHz/°C。所有这些值与硅单模光纤中的值没有太大差异,这是预期的,因为纤芯基本上由相同的材料(硅)组成。然后,我们分析了对光纤施加应变时两个纤芯之间结构变形的差异,并表明在这种情况下,它无法解释BFS应变依赖性的差异。最后介绍了基于MCF中布里渊散射的分布式应变和温度传感的未来前景。