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首页> 外文期刊>Applied optics >Fiber-optic ammonia sensor using Ag/SnO2 thin films: optimization of thickness of SnO2 film using electric field distribution and reaction factor
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Fiber-optic ammonia sensor using Ag/SnO2 thin films: optimization of thickness of SnO2 film using electric field distribution and reaction factor

机译:使用Ag / SnO2薄膜的光纤氨传感器:利用电场分布和反应因子优化SnO2膜的厚度

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A highly sensitive ammonia gas sensor exploiting the gas sensing characteristics of tin oxide (SnO2) has been reported. The methodology of the sensor is based on the phenomenon of surface plasmon resonance (SPR) with a fiber-optic probe consisting of coatings of silver as a plasmonic material and SnO2 as the sensing layer. The sensing principle relies on the change in refractive index of SnO2 upon its reaction with ammonia gas. The capability of the sensor has been tested for a 10 to 100 ppm concentration range of ammonia gas. To enhance the sensitivity, probes with different thicknesses of SnO2 have been fabricated and characterized for ammonia sensing. It has been found that at a particular thickness the sensitivity is highest. The reason for the highest sensitivity at a particular thickness has been evinced theoretically. The electromagnetic field distribution for the multilayer structure of the probe reveals the enhancement of the evanescent field at the tin oxide-ammonia gas interface, which in turn manifests the highest shift in resonance wavelength at a particular thickness. The selectivity of the probe has been tested for various gases, and it has been found to be most accurate for the sensing of ammonia. A sensor utilizing optical fiber, the SPR technique, and metal oxide as sensing element combines the advantages of a miniaturized probe, online monitoring, and remote sensing on one hand and stability, high sensitivity and selectivity, ruggedness, and low cost on the other. (c) 2015 Optical Society of America
机译:已经报道了利用氧化锡(SnO2)的气体感测特性的高度灵敏的氨气传感器。传感器的方法基于表面等离振子共振(SPR)现象,该探测器具有光纤探头,该探头由作为等离子体材料的银涂层和作为传感层的SnO2组成。传感原理依赖于SnO2与氨气反应时折射率的变化。该传感器的能力已针对10至100 ppm浓度范围的氨气进行了测试。为了提高灵敏度,已经制造了具有不同厚度的SnO2的探头,并进行了氨感测。已经发现,在特定厚度下,灵敏度最高。从理论上已经证明了在特定厚度下具有最高灵敏度的原因。探针的多层结构的电磁场分布揭示了在氧化锡-氨气界面处的field逝场的增强,这又表明在特定厚度下共振波长的最高偏移。已经对各种气体测试了探针的选择性,发现它对氨的检测是最准确的。利用光纤,SPR技术和金属氧化物作为传感元件的传感器,一方面融合了微型探头,在线监测和遥感的优势,另一方面又具有稳定性,高灵敏度和选择性,坚固性以及低成本等优点。 (c)2015年美国眼镜学会

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