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Hot-Volumes as Uniform and Reproducible SERS-Detection Enhancers in Weakly-Coupled Metallic Nanohelices

机译:弱耦合金属纳米螺旋中热体积作为均匀且可重现的SERS检测增强剂

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摘要

Reproducible and enhanced optical detection of molecules in low concentrations demands simultaneously intense and homogeneous electric fields acting as robust signal amplifiers. To generate such sophisticated optical near-fields, different plasmonic nanostructures were investigated in recent years. These, however, exhibit either high enhancement factor (EF) or spatial homogeneity but not both. Small interparticle gaps or sharp nanostructures show enormous EFs but no near-field homogeneity. Meanwhile, approaches using rounded and separated monomers create uniform near-fields with moderate EFs. Here, guided by numerical simulations, we show how arrays of weakly-coupled Ag nanohelices achieve both homogeneous and strong near-field enhancements, reaching even the limit forreproducible detection of individual molecules. The unique near-field distribution of a single nanohelix consists of broad hot-spots, merging with those from neighbouring nanohelices in specific array configurations and generating a wide and uniform detection zone (“hot-volume”). We experimentally assessed these nanostructures via surface-enhanced Raman spectroscopy, obtaining a corresponding EF of ~107 and a relative standard deviation <10%. These values demonstrate arrays of nanohelices as state-of-the-art substrates for reproducible optical detection as well as compelling nanostructures for related fields such as near-field imaging.
机译:低浓度分子的可重现和增强的光学检测需要同时充当强大信号放大器的强而均匀的电场。为了产生这种复杂的光学近场,近年来研究了不同的等离子体纳米结构。然而,这些表现出高增强因子(EF)或空间均匀性,但不能同时表现出两者。小的颗粒间间隙或尖锐的纳米结构显示出巨大的EF,但没有近场均匀性。同时,使用圆形和分离单体的方法会产生具有中等EF的均匀近场。在这里,在数值模拟的指导下,我们展示了微弱耦合的Ag纳米螺旋阵列如何实现均相和强近场增强,甚至达到了可重复检测单个分子的极限。单个纳米螺旋的独特近场分布由宽广的热点组成,这些热点与特定阵列配置中的相邻纳米螺旋的热点合并,并产生宽而均匀的检测区域(“热体积”)。我们通过表面增强拉曼光谱法对这些纳米结构进行了实验评估,获得了约10 7 的EF和相对标准偏差<10%的EF。这些值证明了纳米螺旋阵列可作为可重现的光学检测的最新技术,以及用于相关领域(如近场成像)的引人注目的纳米结构。

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