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一种基于温度自参考的磁场表面等离子体共振传感器。

A Magnetic Field SPR Sensor Based on Temperature Self-Reference.

作者信息

Mo Xinwei, Lv Jiangtao, Liu Qiang, Jiang Xiaoxiao, Si Guangyuan

机构信息

College of Information Science and Engineering, Northeastern University, Shenyang 110004, China.

Institute of Control Engineering, Northeastern University at Qinhuangdao, Qinhuangdao 066004, China.

出版信息

Sensors (Basel). 2021 Sep 13;21(18):6130. doi: 10.3390/s21186130.

Abstract

In this paper, a novel D-shaped photonic crystal fiber sensor for simultaneous measurements of magnetic field and temperature is proposed and characterized. Based on the surface plasmon resonance theory, the D-shaped flat surface coated with a gold layer is in direct contact with magnetic fluid to detect magnetic field, and one of the relatively small air holes near the fiber core is filled with polydimethylsiloxane (PDMS) to sense temperature. The realization of measuring the magnetic field and temperature separately through two channels depends on the fact that the magnetic field only changes the refractive index of the magnetic fluid, but has no effect on the refractive index of PDMS. The refractive index of the magnetic fluid and PDMS can be affected by temperature at the same time. The sensor designed in this work can separate the variations of the magnetic field and temperature simultaneously, therefore solving the cross-sensitivity problem to further improve the magnetic field sensitivity. When the thickness of the gold film is 50 nm and the radius of the filling hole is 0.52 , the magnetic field sensitivity and the temperature sensitivity of magnetic field sensor based on temperature self-reference can reach 0.14274 nm/Oe and -0.229 nm/°C, respectively.

摘要

本文提出并表征了一种用于同时测量磁场和温度的新型D形光子晶体光纤传感器。基于表面等离子体共振理论,涂有金层的D形平面与磁流体直接接触以检测磁场,光纤纤芯附近相对较小的空气孔之一填充有聚二甲基硅氧烷(PDMS)以感测温度。通过两个通道分别测量磁场和温度的实现取决于这样一个事实,即磁场仅改变磁流体的折射率,而对PDMS的折射率没有影响。磁流体和PDMS的折射率会同时受到温度的影响。这项工作中设计的传感器可以同时分离磁场和温度的变化,从而解决交叉敏感性问题以进一步提高磁场灵敏度。当金膜厚度为50nm且填充孔半径为0.52时,基于温度自参考的磁场传感器的磁场灵敏度和温度灵敏度分别可达0.14274nm/Oe和-0.229nm/°C。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4fab/8473157/ea4fa1384396/sensors-21-06130-g001.jpg

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