Zhang Junying, Tian Chen, Guo Zilong, Zhang Xiongxing, Chen Haibin, Wang Wei
Appl Opt. 2021 Dec 1;60(34):10548-10554. doi: 10.1364/AO.441136.
A fiber-optic vector magnetic field sensor based on a large-core-offset Mach-Zehnder interferometer (MZI) infiltrated by magnetic fluid (MF) is proposed and demonstrated in this paper. By large-core-offset fusion splicing of a short single-mode fiber (SMF) between a lead-in SMF and a coupling multi-mode fiber, the MZI with a sub-millimeter length is formed, which is then sealed in an MF-infiltrated glass capillary. Through the MF's refractive index modulation by external magnetic field, the phase of the light passing through the MZI is altered. As a result, the transmission spectrum can be monitored for the magnetic field measurement. Furthermore, from the axial-asymmetry of the large-core-offset MZI structure, the proposed sensor possesses vectorial magnetic-field-sensing ability. Experiments show that the MF-infiltrated large-core-offset MZI vector magnetic-field sensor can achieve a high wavelength sensitivity of 96.68 pm/Oe in a magnetic field range of 50-130 Oe.
本文提出并演示了一种基于磁流体(MF)渗透的大芯偏移马赫-曾德尔干涉仪(MZI)的光纤矢量磁场传感器。通过在引入单模光纤(SMF)和耦合多模光纤之间进行短单模光纤的大芯偏移熔接,形成了长度为亚毫米级的MZI,然后将其密封在渗透了MF的玻璃毛细管中。通过外部磁场对MF折射率的调制,改变了通过MZI的光的相位。因此,可以监测传输光谱以进行磁场测量。此外,由于大芯偏移MZI结构的轴向不对称性,所提出的传感器具有矢量磁场传感能力。实验表明,渗透了MF的大芯偏移MZI矢量磁场传感器在50-130 Oe的磁场范围内可实现96.68 pm/Oe的高波长灵敏度。