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Leveraging nanoscale plasmonic modes to achieve reproducible enhancement of light

机译:利用纳米等离子模式实现可再现的光增强

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摘要

The strongly enhanced and localized optical fields that occur within the gaps between metallic nanostructures can be leveraged for a wide range of functionality in nanophotonic and optical metamaterial applications. Here, we introduce a means of precise control over these nanoscale gaps through the application of a molecular spacer layer that is self-assembled onto a gold film, upon which gold nanoparticles (NPs) are deposited electrostatically. Simulations using a three-dimensional finite element model and measurements from single NPs confirm that the gaps formed by this process, between the NP and the gold film, are highly reproducible transducers of surface-enhanced resonant Raman scattering. With a spacer layer of roughly 1.6 nm, all NPs exhibit a strong Raman signal that decays rapidly as the spacer layer is increased.
机译:在金属纳米结构之间的间隙内发生的强烈增强的局部光场可用于纳米光子和光学超材料应用中的多种功能。在这里,我们通过应用分子间隔层来精确控制这些纳米级间隙,该分子间隔层会自组装到金膜上,然后静电沉积金纳米颗粒(NP)。使用三维有限元模型进行的仿真和来自单个NP的测量结果证实,由该过程形成的间隙,在NP和金膜之间,是表面增强共振拉曼散射的高度可再现的换能器。对于大约1.6 nm的间隔层,所有NP都显示出很强的拉曼信号,随着间隔层的增加,拉曼信号会迅速衰减。

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