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Modeling Surface-Enhanced Spectroscopy With Perturbation Theory

机译:用微扰理论对表面增强光谱建模

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摘要

Theoretical modeling of surface-enhanced Raman scattering (SERS) is of central importance for unraveling the interplay of underlying processes and a predictive design of SERS substrates. In this work we model the plasmonic enhancement mechanism of SERS with perturbation theory. We consider the excitation of plasmonic modes as an integral part of the Raman process and model SERS as higher-order Raman scattering. Additional resonances appear in the Raman cross section which correspond to the excitation of plasmons at the wavelengths of the incident and the Raman-scattered light. The analytic expression for the Raman cross section can be used to explain the outcome of resonance Raman measurements on SERS analytes as we demonstrate by comparison to experimental data. We also implement the theory to calculate the optical absorption cross section of plasmonic nanoparticles. From a comparison to experimental cross sections, we show that the coupling matrix elements need to be renormalized by a factor that accounts for the depolarization by the bound electrons and interband transitions in order to obtain the correct magnitude. With model calculations we demonstrate that interference of different scattering channels is key to understand the excitation energy dependence of the SERS enhancement for enhancement factors below 103.
机译:表面增强拉曼散射(SERS)的理论模型对于揭示潜在过程之间的相互作用以及SERS基底的预测设计至关重要。在这项工作中,我们用扰动理论模拟了SERS的等离子体增强机理。我们将等离子体激元模式的激发视为拉曼过程的组成部分,而将SERS模型视为高阶拉曼散射。在拉曼横截面中会出现其他共振,这与在入射和拉曼散射光波长处的等离激元激发有关。拉曼横截面的解析表达式可用于解释SERS分析物的共振拉曼测量结果,正如我们通过与实验数据进行比较所证明的那样。我们还采用该理论来计算等离子体纳米颗粒的光吸收截面。从与实验横截面的比较中,我们表明,耦合矩阵元素需要通过考虑束缚电子和带间跃迁的去极化的因素来重新归一化,以获得正确的幅度。通过模型计算,我们证明了对于低于10 3 的增强因子,不同散射通道的干扰是理解SERS增强的激发能量依赖性的关键。

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