层形态对sno2基光纤传感器灵敏度的影响

M. Consales, M. Pisco, P. Pilla, A. Cusano, A. Buosciolo, M. Giordano, R. Viter, V. Smyntyna
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引用次数: 2

摘要

最近,基于SnO2的二氧化硅光纤(SOF)传感器首次在水环境中检测室温下氨的能力被证实[1-3]。通过简单、低成本的静电喷雾热解技术(ESP)将sofc探针沉积到光纤端,该技术允许通过改变沉积参数来改变层的特征。在这里,实验证明了当敏感覆盖层呈现出与光波长(1.55 μ m)相当的峰值时,光学近场行为会发生变化。此外,还初步研究了水环境下SnO2层形貌对氨室温传感性能的影响。为此,在进行氨吸附测量之前,通过能够同时进行原子力显微镜(AFM)和扫描近场光学显微镜(SNOM)成像的非常复杂的仪器,分析了不同sno2传感器的形貌和光学近场剖面。
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Influence of Layers Morphology on the Sensitivity of SnO2-based Optical Fiber Sensors
Recently, the capability of a SnO2 based silica optical fiber (SOF) sensors to detect ammonia at room temperature in water environment has been for the first time demonstrated [1-3]. The SOF probes were deposited onto the fiber end by the simple and low cost Electrostatic Spray Pyrolysis technique (ESP), which allows to change the layers features by changing the deposition parameters. Here, it is experimentally demonstrated that modifications of the optical near field behavior occur when the sensitive overlay exhibits peaks with dimensions comparable with the light wavelength (1.55 mum). In addition, the influence of the SnO2 layers morphology on the room temperature sensing performances against ammonia, in water environment, is preliminarily investigated. To the aim, before performing the ammonia adsorption measurements, the topography and the optical near field profile for different SnO2-based sensors have been analyzed by a very complex instrumentation able to perform simultaneous atomic force microscopy (AFM) and scanning near-field optical microscopy (SNOM) imaging.
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