Ibrahim Joyce, Al Masri Mostafa, Verrier Isabelle, Kampfe Thomas, Veillas Colette, Celle Frédéric, Cioulachtjian Serge, Lefèvre Frédéric, Jourlin Yves
Lyon University, UJM Saint-Etienne, CNRS, Institut d'Optique Graduate School, Laboratoire Hubert Curien UMR 5516, 42000 Saint-Etienne, France.
Centre de Thermique de Lyon, UMR 5008, CNRS, INSA, University Lyon, INSA Lyon, F-69621 Villeurbanne, France.
Sensors (Basel). 2019 Jul 31;19(15):3354. doi: 10.3390/s19153354.
The aim of this work is to measure the temperature variations by analyzing the plasmon signature on a metallic surface that is periodically structured and immersed in a liquid. A change in the temperature of the sample surface induces a modification of the local refractive index leading to a shift of the surface plasmon resonance (SPR) frequency due to the strong interaction between the evanescent electric field and the metallic surface. The experimental set-up used in this study to detect the refractive index changes is based on a metallic grating permitting a direct excitation of a plasmon wave, leading to a high sensibility, high-temperature range and contactless sensor within a very compact and simple device. The experimental set-up demonstrated that SPR could be used as a non-invasive, high-resolution temperature measurement method for metallic surfaces.
这项工作的目的是通过分析周期性结构并浸没在液体中的金属表面上的等离子体特征来测量温度变化。样品表面温度的变化会引起局部折射率的改变,由于倏逝电场与金属表面之间的强相互作用,导致表面等离子体共振(SPR)频率发生偏移。本研究中用于检测折射率变化的实验装置基于一个金属光栅,该光栅允许直接激发等离子体波,从而在一个非常紧凑和简单的装置中实现高灵敏度、高温范围和非接触式传感器。实验装置表明,SPR可以用作金属表面的非侵入性、高分辨率温度测量方法。