Lin Weihao, Liu Yuhui, Liu Yibin, Shum Perry Ping, Vai Mang I
State Key Laboratory of Analog and Mixed-Signal VLSI, University of Macau, Macau 999078, China.
Department of Electrical and Computer Engineering, University of Macau, Macau 999078, China.
Micromachines (Basel). 2022 Dec 14;13(12):2215. doi: 10.3390/mi13122215.
A novel method for ultra-sensitive and ultra-fast temperature sensing has been successfully implemented by cascading Saganc rings to generate the Vernier effect and doing the same dispersive fibers to achieve the optical time-stretching effect. This is different from the traditional point fiber sensor demodulated by optical spectrum analyzer (OSA) whose demodulation speed is usually at the second level. The designed system maps the wavelength domain to the time domain through the dispersive fiber, which can realize the ultra-fast temperature monitoring at the nanosecond level. The cascaded Sagnac ring is composed of polarization maintaining fiber (PMF) which is significantly affected by the thermal-optical coefficient. When the temperature changes, the variation is as high as -6.228 nm/°C, which is 8.5 times higher than the sensitivity based on the single Sagnac ring system. Furthermore, through the optical time stretching scheme, the corresponding response sensitivity is increased from 0.997 ns/°C to 7.333 ns/°C, and the magnification is increased 7.4 times with a response speed of 50 MHz.
通过级联萨格纳克环以产生游标效应,并采用相同的色散光纤以实现光学时间拉伸效应,一种用于超灵敏和超快温度传感的新方法已成功实现。这与传统的由光谱分析仪(OSA)解调的点光纤传感器不同,其解调速度通常处于秒级。所设计的系统通过色散光纤将波长域映射到时域,能够实现纳秒级的超快温度监测。级联萨格纳克环由受热光系数显著影响的保偏光纤(PMF)组成。当温度变化时,变化高达-6.228nm/°C,这比基于单个萨格纳克环系统的灵敏度高8.5倍。此外,通过光学时间拉伸方案,相应的响应灵敏度从0.997ns/°C提高到7.333ns/°C,放大倍数提高了7.4倍,响应速度为50MHz。