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An All-Fiber Magnetic Field Sensor Based on Dual-S-Shaped Optic Fiber Integrated With Magnetic Fluid

机译:基于双S形光纤与磁流体集成的全光纤磁场传感器

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摘要

In this paper, magnetic fluid (MF), a new type of optical functional nanomaterial with interesting optical characteristics under the external magnetic field is adopted to form a novel fiber-optic magnetic field sensor. The proposed sensor is based on Mach–Zehnder interferometer and has a dual-S-shaped structure. The S-shaped structure is fabricated by splicing two overlapping single-mode fibers with a fiber fusion splicer. The magnetic field sensing probe was made by inserting the fiber-optic micro-structure in an MF-filled capillary tube. Variations in an external magnetic field is seen to cause changes in the refractive index of MF. This tunable change in the refractive index with magnetic field strengths between 0 and 20 mT produces a shift in the position of the peak of the wavelength. The shift of the valley wavelength with magnetic field intensity has a good linearity of up to 99.634%. The achieved sensitivity of the proposed magnetic field sensor is 0.2904 nm/mT, which is a several-fold improvement on most of the other reported MF-based magnetic field sensors. Furthermore, we have built the corresponding circuit-based measurement system and have shown that a voltage change, associated with the results, indirectly reflects the change of the external magnetic field strength. This, therefore, provides the potential to fiber-based magnetic field sensing applications.
机译:本文采用磁流体(MF),一种在外部磁场下具有有趣的光学特性的新型光学功能纳米材料,形成了一种新型的光纤磁场传感器。提出的传感器基于Mach–Zehnder干涉仪,并具有双S形结构。 S型结构是通过用光纤熔接机将两条重叠的单模光纤拼接在一起而制成的。磁场传感探头是通过将光纤微结构插入装有MF的毛细管中制成的。可以看到外部磁场的变化会引起MF折射率的变化。磁场强度在0到20 mT之间时,折射率的这种可调变化会导致波长峰值的位置发生偏移。谷值波长随磁场强度的移动具有高达99.634%的良好线性。拟议中的磁场传感器实现的灵敏度为0.2904 nm / mT,比大多数其他已报道的基于MF的磁场传感器提高了几倍。此外,我们已经建立了相应的基于电路的测量系统,并表明与结果相关的电压变化间接反映了外部磁场强度的变化。因此,这为基于光纤的磁场传感应用提供了潜力。

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