Wang Zhe, Mallik Arun Kumar, Wei Fangfang, Wang Zhuochen, Rout Anuradha, Wu Qiang, Semenova Yuliya
Photonics Research Centre, School of Electrical and Electronic Engineering, Technological University Dublin, D07 ADY7 Dublin, Ireland.
Tyndall National Institute, University College Cork, Lee Maltings, Dyke Parade, T12 YN60 Cork, Ireland.
Sensors (Basel). 2022 Oct 29;22(21):8312. doi: 10.3390/s22218312.
A novel micron-range displacement sensor based on a whispering-gallery mode (WGM) microcapillary resonator filled with a nematic liquid crystal (LC) and a magnetic nanoparticle- coated fiber half-taper is proposed and experimentally demonstrated. In the proposed device, the tip of a fiber half-taper coated with a thin layer of magnetic nanoparticles (MNPs) moves inside the LC-filled microcapillary resonator along its axis. The input end of the fiber half-taper is connected to a pump laser source and due to the thermo-optic effect within the MNPs, the fiber tip acts as point heat source increasing the temperature of the LC material in its vicinity. An increase in the LC temperature leads to a decrease in its effective refractive index, which in turn causes spectral shift of the WGM resonances monitored in the transmission spectrum of the coupling fiber. The spectral shift of the WGMs is proportional to the displacement of the MNP-coated tip with respect to the microcapillary's light coupling point. The sensor's operation is simulated considering heat transfer in the microcapillary filled with a LC material having a negative thermo-optic coefficient. The simulations are in a good agreement with the WGMs spectral shift observed experimentally. A sensitivity to displacement of 15.44 pm/µm and a response time of 260 ms were demonstrated for the proposed sensor. The device also shows good reversibility and repeatability of response. The proposed micro-displacement sensor has potential applications in micro-manufacturing, precision measurement and medical instruments.
本文提出并通过实验验证了一种新型的微米级位移传感器,该传感器基于填充向列型液晶(LC)的回音壁模式(WGM)微毛细管谐振器和涂覆有磁性纳米颗粒的光纤半锥。在所提出的器件中,涂覆有一层磁性纳米颗粒(MNPs)的光纤半锥尖端在填充LC的微毛细管谐振器内沿其轴线移动。光纤半锥的输入端连接到泵浦激光源,由于MNPs内部的热光效应,光纤尖端充当点热源,提高其附近LC材料的温度。LC温度的升高导致其有效折射率降低,进而导致在耦合光纤传输光谱中监测到的WGM共振发生光谱偏移。WGM的光谱偏移与涂覆有MNP的尖端相对于微毛细管光耦合点的位移成正比。考虑到填充有具有负热光系数的LC材料的微毛细管中的热传递,对传感器的操作进行了模拟。模拟结果与实验观察到的WGM光谱偏移吻合良好。所提出的传感器对位移的灵敏度为15.44 pm/µm,响应时间为260 ms。该器件还表现出良好的响应可逆性和重复性。所提出的微位移传感器在微制造、精密测量和医疗仪器方面具有潜在应用。