Wang Wei-Lin, Liu Qiang, Liu Zhao-Yang, Wu Qiang, Fu Yong-Qing
School of Control Engineering, Northeastern University at Qinhuangdao, Qinhuangdao 066004, China.
Hebei Key Laboratory of Micro-Nano Precision Optical Sensing and Measurement Technology, Qinhuangdao 066004, China.
Sensors (Basel). 2022 Aug 24;22(17):6374. doi: 10.3390/s22176374.
A simulated design for a temperature-compensated voltage sensor based on photonic crystal fiber (PCF) infiltrated with liquid crystal and ethanol is presented in this paper. The holes distributed across the transverse section of the PCF provide two channels for mode coupling between the liquid crystal or ethanol and the fiber core. The couplings are both calculated accurately and explored theoretically using the finite element method (FEM). The influence of voltage on the alignment of the liquid crystal molecules and confinement loss of the fiber mode are studied. Liquid crystal molecules rotate which changes its properties as the voltage changes. As the characteristics of the liquid crystal will be affected by temperature, therefore, we further fill using ethanol, which is merely sensitive to temperature, into one hole of the PCF to realize temperature compensation. The simulated results show that the sensitivity is up to 1.29977 nm/V with the temperature of 25 °C when the voltage ranges from 365 to 565 V. The standard deviation of the wavelength difference is less than 2 nm within the temperature adjustment from 25 to 50 °C for temperature compensation. The impacts of the construction parameters of the PCF on sensing performances of this voltage sensor are also analyzed in this paper.
本文提出了一种基于填充液晶和乙醇的光子晶体光纤(PCF)的温度补偿电压传感器的模拟设计。分布在光子晶体光纤横截面上的孔为液晶或乙醇与纤芯之间的模式耦合提供了两个通道。利用有限元方法(FEM)对耦合进行了精确计算和理论探究。研究了电压对液晶分子取向和光纤模式限制损耗的影响。随着电压变化,液晶分子旋转,其性质也会改变。由于液晶的特性会受到温度影响,因此,我们进一步向光子晶体光纤的一个孔中填充仅对温度敏感的乙醇以实现温度补偿。模拟结果表明,当电压在365至565V范围内,温度为25°C时,灵敏度高达1.29977nm/V。在25至50°C的温度调节范围内进行温度补偿时,波长差的标准偏差小于2nm。本文还分析了光子晶体光纤的结构参数对该电压传感器传感性能的影响。