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基于两个开环通道表面等离子体共振光子晶体光纤的高灵敏度磁场和温度传感

Highly sensitive sensing of a magnetic field and temperature based on two open ring channels SPR-PCF.

作者信息

Wang Dongying, Zhu Wanlai, Yi Zao, Ma Guolu, Gao Xiang, Dai Bo, Yu Yang, Zhou Guorui, Wu Pinghui, Liu Chao

出版信息

Opt Express. 2022 Oct 10;30(21):39055-39067. doi: 10.1364/OE.470386.

Abstract

A surface plasmon resonance (SPR) sensor comprising photonic crystal fiber (PCF) is designed for magnetic field and temperature dual-parameter sensing. In order to make the SPR detection of magnetic field and temperature effectively, the two open ring channels of the proposed sensor are coated with gold and silver layers and filled with magnetic fluid (MF) and Polydimethylsiloxane (PDMS), respectively. The sensor is analyzed by the finite element method and its mode characteristics, structure parameters and sensing performance are investigated. The analysis reveals when the magnetic field is a range of 40-310 Oe and the temperature is a range of 0-60 °C, the maximum magnetic field sensitivity is 308.3 pm/Oe and temperature sensitivity is 6520 pm/°C. Furthermore, temperature and magnetic field do not crosstalk with each other's SPR peak. Its refractive index sensing performance is also investigated, the maximum sensitivity and FOM of the left channel sensing are 16820 nm/RIU and 1605 RIU, that of the right channel sensing are 13320 nm/RIU and 2277 RIU. Because of its high sensitivity and special sensing performance, the proposed sensor will have potential application in solving the problems of cross-sensitivity and demodulation due to nonlinear changes in sensitivity of dual-parameter sensing.

摘要

一种包含光子晶体光纤(PCF)的表面等离子体共振(SPR)传感器被设计用于磁场和温度双参数传感。为了有效实现对磁场和温度的SPR检测,所提出的传感器的两个开口环通道分别涂覆有金层和银层,并分别填充有磁流体(MF)和聚二甲基硅氧烷(PDMS)。采用有限元方法对该传感器进行分析,并研究其模式特性、结构参数和传感性能。分析表明,当磁场在40 - 310奥斯特范围内且温度在0 - 60℃范围内时,最大磁场灵敏度为308.3皮米/奥斯特,温度灵敏度为6520皮米/℃。此外,温度和磁场不会相互干扰对方的SPR峰。还研究了其折射率传感性能,左通道传感的最大灵敏度和品质因数分别为16820纳米/RIU和1605 RIU,右通道传感的分别为13320纳米/RIU和2277 RIU。由于其高灵敏度和特殊的传感性能,所提出的传感器在解决双参数传感灵敏度非线性变化引起的交叉灵敏度和解调问题方面将具有潜在应用。

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