Yu Haihu, Wang Ying, Ma Jian, Zheng Zhou, Luo Zhuozhao, Zheng Yu
National Engineering Laboratory for Fiber Optic Sensing Technology, Wuhan University of Technology, Wuhan 430070, China.
Sensors (Basel). 2018 Jan 18;18(1):273. doi: 10.3390/s18010273.
A Fabry-Perot interferometric sensor for temperature measurement was fabricated based on a silica glass solid-core photonic crystal fiber with a central air-bore. By splicing a stub of photonic crystal fiber to a standard single-mode fiber, an intrinsic Fabry-Perot cavity was formed inside the photonic crystal fiber. Sensing experiment results show that the sensor can work stably for a consecutive 24 h under temperatures up to 1100 °C, and the short-term operation temperature can reach as high as 1200 °C (<30 min). In the measurement range of 300-1200 °C, the temperature sensitivity of the peak wavelength shift can reach as high as 15.61 pm/°C, with a linearity of 99.76%. The presented interferometric sensor is compact in size and possesses advantages such as an extended working range and high sensitivity, showing promising application prospects.
基于具有中心气孔的石英玻璃实心光子晶体光纤,制备了一种用于温度测量的法布里-珀罗干涉传感器。通过将一段光子晶体光纤与标准单模光纤熔接,在光子晶体光纤内部形成了一个本征法布里-珀罗腔。传感实验结果表明,该传感器在高达1100℃的温度下可连续稳定工作24小时,短期工作温度可达1200℃(<30分钟)。在300-1200℃的测量范围内,峰值波长位移的温度灵敏度可达15.61pm/℃,线性度为99.76%。所提出的干涉传感器尺寸紧凑,具有工作范围宽、灵敏度高等优点,展现出良好的应用前景。