Hernández-Romano Iván, Cruz-Garcia Miguel A, Moreno-Hernández Carlos, Monzón-Hernández David, López-Figueroa Efraín O, Paredes-Gallardo Omar E, Torres-Cisneros Miguel, Villatoro Joel
Opt Express. 2016 Mar 7;24(5):5654-5661. doi: 10.1364/OE.24.005654.
An ultracompact, cost-effective, and highly accurate fiber optic temperature sensor is proposed and demonstrated. The sensing head consists of Fabry-Perot microcavity formed by an internal mirror made of a thin titanium dioxide (TiO) film and a microscopic segment of single-mode fiber covered with Poly(dimethylsiloxane) (PDMS). Due to the high thermo-optic coefficient of PDMS the reflectance of the fiber-PDMS interface varies strongly with temperature which in turn modifies the amplitude of the interference pattern. To quantify the changes of the latter we monitored the visibility of the interference pattern and analyzed it by means of the fast Fourier transform. Our sensor exhibits linear response, high sensitivity, and response time of 14 seconds. We believe that the microscopic dimensions along with the performance of the sensor here presented makes it appealing for sensing temperature in PDMS microfluidic circuits or in biological applications.
提出并展示了一种超紧凑、经济高效且高精度的光纤温度传感器。传感头由法布里 - 珀罗微腔组成,该微腔由一层薄二氧化钛(TiO)薄膜制成的内反射镜和一段覆盖有聚二甲基硅氧烷(PDMS)的单模光纤微观段构成。由于PDMS的高热光系数,光纤 - PDMS界面的反射率随温度强烈变化,这反过来又改变了干涉图案的幅度。为了量化后者的变化,我们监测了干涉图案的可见度,并通过快速傅里叶变换对其进行分析。我们的传感器具有线性响应、高灵敏度和14秒的响应时间。我们认为,这里展示的传感器的微观尺寸以及性能使其在PDMS微流控电路或生物应用中的温度传感方面具有吸引力。