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Gold nanoparticle dimer plasmonics: finite element method calculations of the electromagnetic enhancement to surface-enhanced Raman spectroscopy

机译:金纳米粒子二聚体等离子体:表面增强拉曼光谱电磁增强的有限元方法计算

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Finite element method calculations were carried out to determine extinction spectra and the electromagnetic (EM) contributions to surface-enhanced Raman spectroscopy (SERS) for 90-nm Au nanoparticle dimers modeled after experimental nanotags. The calculations revealed that the EM properties depend significantly on the junction region, specifically the distance between the nanoparticles for spacings of less than 1 nm. For extinction spectra, spacings below 1 nm lead to maxima that are strongly red-shifted from the 600-nm plasmon maximum associated with an isolated nanoparticle. This result agrees qualitatively well with experimental transmission electron microscopy images and localized surface plasmon resonance spectra that are also presented. The calculations further revealed that spacings below 0.5 nm, and especially a slight fusing of the nanoparticles to give tiny crevices, leads to EM enhancements of 1010 or greater. Assuming a uniform coating of SERS molecules around both nanoparticles, we determined that regardless of the separation, the highest EM fields always dominate the SERS signal. In addition, we determined that for small separations less than 3% of the molecules always contribute to greater than 90% of the signal.
机译:进行了有限元方法计算,以确定了根据实验纳米标签建模的90纳米金纳米颗粒二聚体的消光光谱和电磁(EM)对表面增强拉曼光谱(SERS)的贡献。计算结果表明,EM特性很大程度上取决于结区,特别是纳米粒子之间的距离小于1 nm。对于消光光谱,低于1 nm的间距会导致最大值,该最大值从与孤立的纳米粒子相关的600 nm等离子体最大极大地红移。该结果在质量上与实验透射电子显微镜图像和局部表面等离振子共振光谱也很好地吻合。计算结果进一步表明,小于0.5 nm的间距,尤其是纳米颗粒的轻微融合会产生细小的缝隙,会导致EM增强1010 或更大。假设两个纳米粒子周围均均匀覆盖了SERS分子,我们确定无论分离如何,最高的EM场始终主导着SERS信号。此外,我们确定,对于小的分离,少于3%的分子始终会贡献大于90%的信号。

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