Luan Nannan, Wang Ran, Lv Wenhua, Lu Ying, Yao Jianquan
College of Precision Instrument and Optoelectronics Engineering, Institute of Laser and Optoelectronics, Tianjin University, Tianjin 300072, China.
Sensors (Basel). 2014 Aug 29;14(9):16035-45. doi: 10.3390/s140916035.
We propose a temperature sensor design based on surface plasmon resonances (SPRs) supported by filling the holes of a six-hole photonic crystal fiber (PCF) with a silver nanowire. A liquid mixture (ethanol and chloroform) with a large thermo-optic coefficient is filled into the PCF holes as sensing medium. The filled silver nanowires can support resonance peaks and the peak will shift when temperature variations induce changes in the refractive indices of the mixture. By measuring the peak shift, the temperature change can be detected. The resonance peak is extremely sensitive to temperature because the refractive index of the filled mixture is close to that of the PCF material. Our numerical results indicate that a temperature sensitivity as high as 4 nm/K can be achieved and that the most sensitive range of the sensor can be tuned by changing the volume ratios of ethanol and chloroform. Moreover, the maximal sensitivity is relatively stable with random filled nanowires, which will be very convenient for the sensor fabrication.
我们提出了一种基于表面等离子体共振(SPR)的温度传感器设计,通过用银纳米线填充六孔光子晶体光纤(PCF)的孔来实现。将具有大热光系数的液体混合物(乙醇和氯仿)填充到PCF孔中作为传感介质。填充的银纳米线可以支持共振峰,当温度变化引起混合物折射率变化时,峰将发生移动。通过测量峰的移动,可以检测温度变化。共振峰对温度极其敏感,因为填充混合物的折射率与PCF材料的折射率接近。我们的数值结果表明,可以实现高达4 nm/K的温度灵敏度,并且可以通过改变乙醇和氯仿的体积比来调整传感器的最敏感范围。此外,随机填充纳米线时最大灵敏度相对稳定,这将非常便于传感器制造。