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Self-referenced integrated plasmonic device based on engineered periodic nanostructures for sensing application

机译:基于工程周期纳米结构的自学式综合等离子体装置,用于检测应用

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A plasmonic device with a self-referenced capability that uses periodic nanostructures has been proposed and analyzed in terms of the spectral response. Aluminum-based periodic nanostructures that scatter incoming radiation towards a thin homogeneous metal layer, are used to excite Surface Plasmons (SP) for normal incident light. The rigorous coupled-wave analysis method is used to engineer the periodic nanostructures and evaluation of performance parameters. The sensitivity, figure of merit and reflective amplitude are considered as the main parameters for engineering the device. The electromagnetic field simulations reveal the presence of waveguide mode and two plasmonic modes, namely, SP mode and substrate mode with three different interactions in the device. The shift in SP mode is used to detect the minute changes in the refractive index of the analyte and the number of exciting waveguide modes is used to capture the changes in the thickness of the analyte. The presence of substrate mode adds the self-reference capability to the proposed plasmonic device due to the independence of any change in the refractive index and thickness of the analyte. The proposed device has been engineered to offer a competitive sensitivity of 1000 nm/RIU and figure of merit 300 RIU~(-1) with the fabrication constraints taken into account. Since the proposed structures work under normal incidence conditions which makes this design integrable to the end of an optical fiber that can be used both to excite SP and to interrogate the spectral reflectance.
机译:与使用周期构造一个自参考能力的等离激元装置已被提出并在光谱响应方面进行分析。铝基该散射朝向薄的均匀金属层入射的辐射周期构造,用于激励表面等离子体激元(SP),用于正常入射光。严格耦合波分析方法用于工程的性能参数的周期构造和评价。的敏感性,优点和反射振幅的数字都被认为作为工程设备的主要参数。电磁场仿真揭示的波导模式和两个等离激元模式,即,SP模式和衬底模式存在下,用在设备中三种不同的相互作用。在SP模式中的移位被用于检测在所述分析物和令人兴奋的波导模式的数量的折射率的微小变化是用来捕获中的分析物的厚度的变化。的基板模式的存在增加了自参考能力所提出的等离子体激元设备由于在分析物的折射率和厚度的任何变化的独立性。所提出的装置已被工程化以提供1000纳米/ RIU的与所考虑的制造约束的有竞争力的灵敏度和优点300 RIU〜图(-1)。由于所提出的结构的垂直入射条件下,这使得此设计可积的光纤可用于既激发SP和询问的分光反射率的末端下工作。

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