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基于表面等离子体共振的光子晶体光纤传感器磁场传感特性优化研究

Research on optimization of magnetic field sensing characteristics of PCF sensor based on SPR.

作者信息

Yao Siyu, Yu Yang, Qin Shangpeng, Wang Dongying, Yan Peiguang, Zhang Zhenrong

出版信息

Opt Express. 2022 May 9;30(10):16405-16418. doi: 10.1364/OE.456924.

Abstract

A photonic crystal fiber utilizing surface plasmon resonance (PCF-SPR) sensor based on refractive index (RI) control of magnetic fluid (MF) is designed. The air holes of the sensor are arranged in a hexagonal shape, and the optical field transmission channels on both sides of the central air hole can effectively confine the energy of the optical field. We use MF as the sensing medium, and coat the inner wall of the central air hole with gold. It can effectively stimulate the SPR effect to achieve the purpose of magneto-refractive modulation. We study the sensing characteristics of the proposed sensor by finite element analysis. The results show that the highest refractive index sensitivity reaches 19520 nm/RIU in the RI range of 1.42-1.435 and the maximum figure of merit (FOM) is 374.3 RIU. In addition, the magnetic field and the temperature response characteristics of the designed sensor are also investigated. In the magnetic field range of 50-130 Oe, the magnetic field sensitivity is 590 pm/Oe. In the temperature range of 24.3-144.3 °C, the temperature sensitivity is only -29.7 pm/℃. The proposed sensor has significant advantages such as stable structure, high sensitivity, easy integration, resistance to electromagnetic interference and can be used for weak magnetic magnitude detection. It has wide application prospects in industrial production, military, and medical equipment.

摘要

设计了一种基于磁流体(MF)折射率(RI)控制的利用表面等离子体共振的光子晶体光纤(PCF-SPR)传感器。该传感器的气孔呈六边形排列,中心气孔两侧的光场传输通道能够有效限制光场能量。我们使用MF作为传感介质,并在中心气孔的内壁镀上金。它能够有效激发表面等离子体共振效应,以实现磁光折射调制的目的。我们通过有限元分析研究了所提出传感器的传感特性。结果表明,在1.42-1.435的RI范围内,最高折射率灵敏度达到19520 nm/RIU,最大品质因数(FOM)为374.3 RIU。此外,还研究了所设计传感器的磁场和温度响应特性。在50-130 Oe的磁场范围内,磁场灵敏度为590 pm/Oe。在24.3-144.3℃的温度范围内,温度灵敏度仅为-29.7 pm/℃。所提出的传感器具有结构稳定、灵敏度高、易于集成、抗电磁干扰等显著优点,可用于微弱磁量检测。它在工业生产、军事和医疗设备等方面具有广阔的应用前景。

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