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基于花瓣状光子晶体光纤传感器的磁场与温度同步测量研究

Research on Simultaneous Measurement of Magnetic Field and Temperature Based on Petaloid Photonic Crystal Fiber Sensor.

作者信息

Yan Lili, Wang Qichao, Yin Bin, Xiao Shiying, Li Haisu, Wang Muguang, Liu Xingyu, Wu Songhua

机构信息

Faculty of Information Science and Engineering, Ocean University of China, Qingdao 266100, China.

Laoshan Laboratory, Qingdao 266237, China.

出版信息

Sensors (Basel). 2023 Sep 16;23(18):7940. doi: 10.3390/s23187940.

Abstract

In this paper, we propose and design a magnetic field and temperature sensor using a novel petaloid photonic crystal fiber filled with magnetic fluid. The PCF achieves a high birefringence of more than 1.43 × 10 at the wavelength of 1550 nm via the design of material parameters, air hole shape and the distribution of the photonic crystal fiber. Further, in order to significantly improve the sensitivity of the sensor, the magnetic-fluid-sensitive material is injected into the pores of the designed photonic crystal fiber. Finally, the sensor adopts a Mach-Zehnder interferometer structure combined with the ultra-high birefringence of the proposed petaloid photonic crystal fiber. Magnetic field and temperature can be simultaneously measured via observing the spectral response of the x-polarization state and y-polarization state. As indicated via simulation analysis, the sensor can realize sensitivities to magnetic fields and temperatures at -1.943 nm/mT and 0.0686 nm/°C in the x-polarization state and -1.421 nm/mT and 0.0914 nm/°C in the y-polarization state. The sensor can realize the measurement of multiple parameters including temperature and magnetic intensity and has the advantage of high sensitivity.

摘要

在本文中,我们提出并设计了一种使用填充有磁性流体的新型花瓣状光子晶体光纤的磁场和温度传感器。通过材料参数、气孔形状和光子晶体光纤的分布设计,该光子晶体光纤在1550nm波长处实现了超过1.43×10的高双折射。此外,为了显著提高传感器的灵敏度,将磁流体敏感材料注入到所设计的光子晶体光纤的孔隙中。最后,该传感器采用马赫-曾德尔干涉仪结构,并结合了所提出的花瓣状光子晶体光纤的超高双折射。通过观察x偏振态和y偏振态的光谱响应,可以同时测量磁场和温度。如模拟分析所示,该传感器在x偏振态下对磁场和温度的灵敏度分别为-1.943nm/mT和0.0686nm/°C,在y偏振态下分别为-1.421nm/mT和0.0914nm/°C。该传感器可以实现包括温度和磁场强度在内的多个参数的测量,并且具有高灵敏度的优点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/51bb/10536574/7b10cbd51a4f/sensors-23-07940-g001.jpg

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