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Non-plasmonic nanoantennas for surface enhanced spectroscopies with ultra-low heat conversion

机译:非等离子体纳米天线,用于具有超低热转换的表面增强光谱

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摘要

Nanoplasmonics has recently revolutionized our ability to control light on the nanoscale. Using metallic nanostructures with tailored shapes, it is possible to efficiently focus light into nanoscale field 'hot spots'. High field enhancement factors have been achieved in such optical nanoantennas, enabling transformative science in the areas of single molecule interactions, highly enhanced nonlinearities and nanoscale waveguiding. Unfortunately, these large enhancements come at the price of high optical losses due to absorption in the metal, severely limiting real-world applications. Via the realization of a novel nanophotonic platform based on dielectric nanostructures to form efficient nanoantennas with ultra-low light-into-heat conversion, here we demonstrate an approach that overcomes these limitations. We show that dimer-like silicon-based single nanoantennas produce both high surface enhanced fluorescence and surface enhanced Raman scattering, while at the same time generating a negligible temperature increase in their hot spots and surrounding environments.
机译:纳米等离子体技术最近彻底改变了我们控制纳米级光的能力。使用具有定制形状的金属纳米结构,可以有效地将光聚焦到纳米级场“热点”上。在这种光学纳米天线中已经实现了高场增强因子,从而可以在单分子相互作用,高度增强的非线性和纳米级波导领域进行转换科学。不幸的是,由于金属中的吸收,这些大的增强是以高光学损失为代价的,严重地限制了实际应用。通过基于介电纳米结构的新型纳米光子平台的实现,以形成具有超低光热转换的高效纳米天线,我们在此展示了克服这些局限性的方法。我们表明二聚体状的基于硅的单个纳米天线会产生高表面增强的荧光和表面增强的拉曼散射,同时在其热点和周围环境中产生的温度升高可忽略不计。

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