Lee Cheng-Ling, Zhuo Wei-Rong, Liu Tai-Kai
Department of Electro-Optical Engineering, National United University, Miaoli 360, Taiwan.
Sensors (Basel). 2022 Jan 21;22(3):808. doi: 10.3390/s22030808.
We proposed a novel sensor based on an ultracompact leaky-guided liquid core fiber Mach-Zehnder interferometer (LLCFMZI) for high modulation of an interference spectrum. The sensor structure is based on a micro-sized hollow-core fiber (HCF) splicing a tilt end face single-mode fiber (SMF) to create a miniature oblique gap for the effective access of different liquids. The liquid core with a relatively lower refractive index (RI) than the cladding can achieve a leaky-mode optical waveguide (LMOW) mechanism, and its volume is only approximately 7.85 pL. In addition, the utilized micro-length HCF can reduce the energy loss of core in the LMOW to obtain an acceptable extinction ratio (>30 dB) with high temperature (T) sensitivity in the interference spectra. Experimental results show that the interference spectra can be highly modulated within the wide measurement range of 1250-1650 nm with a steadily linear response for thermal effect. The measured temperature sensitivities (T-sensitivities) of various liquids of DI water, ethanol, and Cargille-liquid (n = 1.305) are 0.8869, 4.4754, and 4.8229 nm/°C, and the corresponding measured thermal optics coefficient (TOC) are -4.16 × 10, -2.11 × 10, and -3.6 × 10 °C, respectively. Measurement results demonstrate that the used liquids with a higher TOC can obtain better T-sensitivity modulation. The highest experimental sensitivity of the liquid-core filled with Cargille-liquid (n = 1.40) is up to +13.87 nm/°C with a corresponding TOC of -4.07 × 10 °C. Furthermore, the experimental and theoretical values are in good agreement according to FSR the measuring scheme that investigates the effectiveness of the proposed LLCFMZI.
我们提出了一种基于超紧凑型泄漏引导液芯光纤马赫-曾德尔干涉仪(LLCFMZI)的新型传感器,用于对干涉光谱进行高调制。该传感器结构基于一根微尺寸空心光纤(HCF)与一个倾斜端面单模光纤(SMF)熔接,以形成一个微型倾斜间隙,用于有效接入不同液体。与包层相比具有相对较低折射率(RI)的液芯可实现泄漏模光波导(LMOW)机制,其体积仅约为7.85皮升。此外,所使用的微长度HCF可减少LMOW中芯的能量损耗,从而在干涉光谱中获得具有高温(T)灵敏度的可接受消光比(>30 dB)。实验结果表明,干涉光谱可在1250 - 1650 nm的宽测量范围内进行高调制,对热效应具有稳定的线性响应。去离子水、乙醇和卡吉尔液体(n = 1.305)等各种液体的测量温度灵敏度(T - 灵敏度)分别为0.8869、4.4754和4.8229 nm/°C,相应的测量热光系数(TOC)分别为 -4.16×10、 -2.11×10和 -3.6×10 °C。测量结果表明,具有较高TOC的所使用液体可获得更好的T - 灵敏度调制。填充卡吉尔液体(n = 1.40)的液芯的最高实验灵敏度高达 +13.87 nm/°C,相应的TOC为 -4.07×10 °C。此外,根据研究所提出的LLCFMZI有效性的FSR测量方案,实验值与理论值吻合良好。