Yu Qi, Li Xuegang, Zhou Xue, Gao Xinjie, Lv Riqing, Nguyen Linh V, Warren-Smith Stephen C, Zhao Yong
Opt Lett. 2022 May 15;47(10):2558-2561. doi: 10.1364/OL.456552.
In this paper, a highly sensitive temperature compensated fiber optic magnetic field sensor by Sagnac and Mach-Zehnder combination interference (SMZI) is proposed and verified. The sensing structure relies on microstructured exposed core fiber (ECF) filled with ethanol and magnetic fluid (MF). The refractive index of MF and ethanol is affected by the magnetic field and temperature (MFT). SMZI is based on the multimode and birefringence characteristics of ECF. The measurement principle is that the spectra of Sagnac interference and Mach-Zehnder interference have respective sensitivities to the MFT. The magnetic sensitivity can reach 1.17 nm/mT, and the temperature sensitivity is up to -1.93 nm/°C. At the same time, the sensor has good repeatability and low detection limits of 0.41 mT and 0.25°C, respectively. It not only solves the cross-influence of temperature but also makes the spectral analysis more intuitive. The sensor has a broad development prospect in the application of MFT detection.
本文提出并验证了一种基于萨尼亚克(Sagnac)和马赫-曾德尔(Mach-Zehnder)组合干涉(SMZI)的高灵敏度温度补偿光纤磁场传感器。该传感结构基于填充有乙醇和磁流体(MF)的微结构裸芯光纤(ECF)。MF和乙醇的折射率受磁场和温度(MFT)影响。SMZI基于ECF的多模和双折射特性。测量原理是萨尼亚克干涉和马赫-曾德尔干涉的光谱对MFT各自具有灵敏度。磁灵敏度可达1.17 nm/mT,温度灵敏度高达-1.93 nm/°C。同时,该传感器具有良好的重复性,检测限分别低至0.41 mT和0.25°C。它不仅解决了温度的交叉影响,还使光谱分析更加直观。该传感器在MFT检测应用中具有广阔的发展前景。