首页> 美国卫生研究院文献>Sensors (Basel Switzerland) >Substrate Oxide Layer Thickness Optimization for a Dual-Width Plasmonic Grating for Surface-Enhanced Raman Spectroscopy (SERS) Biosensor Applications
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Substrate Oxide Layer Thickness Optimization for a Dual-Width Plasmonic Grating for Surface-Enhanced Raman Spectroscopy (SERS) Biosensor Applications

机译:用于表面增强拉曼光谱(SERS)生物传感器应用的双宽度等离子光栅的基底氧化物层厚度优化

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摘要

This work investigates a new design for a plasmonic SERS biosensor via computational electromagnetic models. It utilizes a dual-width plasmonic grating design, which has two different metallic widths per grating period. These types of plasmonic gratings have shown larger optical enhancement than standard single-width gratings. The new structures have additional increased enhancement when the spacing between the metal decreases to sub-10 nm dimensions. This work integrates an oxide layer to improve the enhancement even further by carefully studying the effects of the substrate oxide thickness on the enhancement and reports ideal substrate parameters. The combined effects of varying the substrate and the grating geometry are studied to fully optimize the device’s enhancement for SERS biosensing and other plasmonic applications. The work reports the ideal widths and substrate thickness for both a standard and a dual-width plasmonic grating SERS biosensor. The ideal geometry, comprising a dual-width grating structure atop an optimal SiO2 layer thickness, improves the enhancement by 800%, as compared to non-optimized structures with a single-width grating and a non-optimal oxide thickness.
机译:这项工作通过计算电磁模型研究了等离子体SERS生物传感器的新设计。它采用了双宽度等离子体激元光栅设计,每个光栅周期具有两种不同的金属宽度。这些类型的等离激元光栅比标准的单宽度光栅显示出更大的光学增强。当金属之间的间距减小到10 nm以下时,新结构的增强效果进一步增强。通过仔细研究衬底氧化物厚度对增强的影响,这项工作集成了一层氧化层,以进一步改善增强效果,并报告了理想的衬底参数。研究了改变基板和光栅几何形状的综合效果,以充分优化该设备对SERS生物传感和其他等离子体应用的增强效果。这项工作报告了标准和双宽度等离激元光栅SERS生物传感器的理想宽度和基板厚度。与具有单宽度光栅和非最佳氧化物厚度的非优化结构相比,理想的几何结构包括在最佳SiO2层厚度之上的双宽度光栅结构,可将增强提高800%。

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