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Probing Dynamically Tunable Localized Surface Plasmon Resonances of Film-Coupled Nanoparticles by Evanescent Wave Excitation

机译:探测通过渐逝波激励探测膜耦合纳米粒子的动态可调局部等离子体共振

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摘要

The localized surface plasmon resonance (LSPR) spectrum associated with a gold nanoparticle (NP) coupled to a gold film exhibits extreme sensitivity to the nano-gap region where the fields are tightly localized. The LSPR of an ensemble of film-coupled NPs can be observed using an illumination scheme similar to that used to excite the surface plasmon resonance (SPR) of a thin metallic film; however, in the present system, the light is used to probe the highly sensitive distance-dependent LSPR of the gaps between NPs and film rather than the delocalized SPR of the film. We show that the SPR and LSPR spectral contributions can be readily distinguished, and we compare the sensitivities of both modes to displacements in the average gap between a collection of NPs and the gold film. The distance by which the NPs are suspended in solution above the gold film is fixed via a thin molecular spacer layer, and can be further modulated by subjecting the NPs to a quasistatic electric field. The observed LSPR spectral shifts triggered by the applied voltage can be correlated with Angstrom scale displacements of the NPs, suggesting the potential for chip-scale or flow-cell plasmonic nanoruler devices with extreme sensitivity.
机译:与耦合到金膜的金纳米粒子(NP)相关的局部表面等离子体共振(LSPR)光谱对纳米间隙区域具有极端敏感性,其中田间是紧密局部的。使用类似于用于激发薄金属膜的表面等离子体共振(SPR)的照明方案,可以观察到膜耦合NPS的集合的LSPR;然而,在本系统中,光用于探测NPS和胶片之间的间隙的高敏感距离依赖性LSP,而不是薄膜的薄层化SP。我们表明SPR和LSPR光谱贡献可以容易地区分,并且我们将两种模式的敏感性与位于NPS和金膜的集合之间的平均间隙中的位移进行比较。通过薄的分子间隔层固定,NPS悬浮在金膜上的溶液中的距离,并且可以通过使NPS经受Quasistatic电场来进一步调节。由施加电压触发的观察到的LSPR光谱移位可以与NPS的抗埃垢位移相关,表明芯片秤或流量 - 细胞等级纳米具有极端灵敏度的潜力。

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