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Fabrication and Characterization of Plasmonic Nanopores with Cavities in the Solid Support

机译:固体载体中具有空腔的等离子体纳米孔的制备与表征

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摘要

Plasmonic nanostructures are widely used for various sensing applications by monitoring changes in refractive index through optical spectroscopy or as substrates for surface enhanced Raman spectroscopy. However, in most practical situations conventional surface plasmon resonance is preferred for biomolecular interaction analysis because of its high resolution in surface coverage and the simple single-material planar interface. Still, plasmonic nanostructures may find unique sensing applications, for instance when the nanoscale geometry itself is of interest. This calls for new methods to prepare nanoscale particles and cavities with controllable dimensions and curvature. In this work, we present two types of plasmonic nanopores where the solid support underneath a nanohole array has been etched, thereby creating cavities denoted as ‘nanowells’ or ‘nanocaves’ depending on the degree of anisotropy (dry or wet etch). The refractometric sensitivity is shown to be enhanced upon removing the solid support because of an increased probing volume and a shift of the asymmetric plasmonic field towards the liquid side of the finite gold film. Furthermore, the structures exhibit different spectral changes upon binding inside the cavities compared to the gold surface, which means that the structures can be used for location-specific detection. Other sensing applications are also suggested.
机译:等离子体纳米结构通过光学光谱法监测折射率的变化或作为表面增强拉曼光谱法的基材,广泛用于各种传感应用。但是,在大多数实际情况下,传统的表面等离子体共振优选用于生物分子相互作用分析,因为它在表面覆盖范围内具有高分辨率,并且具有简单的单一材料平面界面。仍然,等离子纳米结构可能会找到独特的传感应用,例如,当纳米级几何本身本身受到关注时。这要求制备具有可控制的尺寸和曲率的纳米级颗粒和腔的新方法。在这项工作中,我们介绍了两种类型的等离子体纳米孔,其中纳米孔阵列下方的固体支持物已被蚀刻,从而根据各向异性的程度(干法或湿法蚀刻)产生称为“ nanowells”或“ nanocaves”的空腔。由于增加了探测体积和不对称等离子体场向有限金膜的液侧移动,因此在去除固相支持物后,折射灵敏度得以提高。此外,与金表面相比,这些结构在结合到型腔内后表现出不同的光谱变化,这意味着该结构可用于特定位置的检测。还建议了其他传感应用。

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