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Electromagnetic interactions of dye molecules surrounding a nanosphere

机译:染料分子的电磁相互作用围绕nanosphere

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摘要

Enhanced interaction between light and molecules adsorbed on metallic nanoparticles is a cornerstone of plasmonics and surface-enhanced spectroscopies. Recent experimental access to the electronic absorption spectrum of dye molecules on silver colloids at low molecular coverage has revealed subtle changes in the spectral shape that may be attributed to a combination of factors, from a chemical modification of the molecule in contact with a metal surface to electromagnetic dye-dye and dye-metal interactions. Here we develop an original model to rigorously address the electromagnetic effects. The dye molecules are described as coupled anisotropic polarisable dipoles and their interaction with the core metal particle is described using a generalised Mie theory. The theory is readily amenable to numerical implementation and yields far-field optical cross-sections that can be compared to experimental results. We apply this model to specific adsorption geometries of practical interest to highlight the effect of molecular orientation on predicted spectral shifts and enhancement factors, as a function of surface coverage. These are compared to experimental results and reproduce the measured spectral changes as a function of concentration. These results have direct implications for the interpretation of surface selection rules and enhancement factors in surface-enhanced spectroscopies, and of orientation and coverage effects in molecular/plasmonic resonance coupling experiments.
机译:增强的光和分子的相互作用吸附在金属纳米粒子是一种等离子和表面增强的基石光谱学。染料分子的电子吸收光谱在低银胶体分子报道透露细微变化的光谱形状这可能归因于的组合的因素,从化学改性分子与金属表面接触电磁dye-dye和dye-metal交互。严格处理电磁效果。耦合的各向异性可极化的偶极子和他们与核心交互金属粒子描述使用普遍米氏理论。理论很容易适合数值实现和收益率远场光学截面可以相比实验结果。特定的实际吸附几何图形利益突出分子的影响预测光谱变化和方向增强因素,表面的函数报道。结果和实测光谱繁殖改变浓度的函数。结果有直接影响面选择的规则和解释增强因素表面增强光谱学、取向和覆盖率分子/电浆共振耦合的影响实验。

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