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Stacked and Tunable Large-Scale Plasmonic Nanoparticle Arrays for Surface-Enhanced Raman Spectroscopy

机译:用于表面增强拉曼光谱的堆叠式可调谐大规模等离子纳米粒子阵列

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摘要

Surface-enhanced Raman spectroscopy takes advantage of plasmonic substrates that sustain resonances at tunable frequencies with a reproducibly extraordinary field enhancement. Low-cost and large-scale fabrication of these substrates is further required. Here, we present stacked large-scale arrays of strongly coupled gold nanoparticles as promising candidates for such substrates. These arrays are fabricated by bottom-up techniques that fulfill the aforementioned requirements. The distance between adjacent arrays in the stack is controlled with high precision using a discrete number of monolayers of molecules that enable the spectral position of the plasmonic resonances to be tuned. Although the nanoparticles are randomly arranged in each array, the spatial proximity of the stacked arrays enables a strong coupling among nanoparticles to be achieved in adjacent arrays. The huge field enhancements due to these strongly coupled gold nanoparticles are shown to enhance the Raman signal. We show that effectively the optical response from these stacked arrays and the Raman signals can be understood in a simplifying picture where only an individual nanoparticle dimer is considered. The possibility to tune the plasmonic resonances of the substrate across the visible spectrum makes our material a plasmonic substrate of choice for many applications where light—matter interactions need to be intensified.
机译:表面增强拉曼光谱利用等离子体衬底在可调谐频率上维持共振,并具有可再现的非凡场增强。进一步需要这些衬底的低成本和大规模制造。在这里,我们提出强耦合金纳米粒子的堆叠大型阵列,作为此类基板的有前途的候选者。这些阵列通过满足上述要求的自底向上技术制造。使用离散数量的分子单分子层,可以高精度地控制堆叠中相邻阵列之间的距离,从而使等离子体共振的光谱位置得以调整。尽管纳米颗粒随机排列在每个阵列中,但是堆叠阵列的空间接近性使得能够在相邻阵列中实现纳米颗粒之间的强耦合。由于这些强耦合的金纳米颗粒而产生的巨大场增强显示出增强了拉曼信号。我们表明,在仅考虑单个纳米颗粒二聚体的简化图中,可以有效地理解来自这些堆叠阵列和拉曼信号的光学响应。可以在可见光谱范围内调节基板的等离子体共振的可能性使我们的材料成为需要加强光与物质相互作用的许多应用的等离子体基板。

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