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金属纳米粒子 Lamb 模式的共振低频 Raman 散射机制。

Mechanisms of resonant low frequency Raman scattering from metallic nanoparticle Lamb modes.

机构信息

Institut Lumière Matière, Université de Lyon, Université Claude Bernard Lyon 1, UMR CNRS 5306, 69622 Villeurbanne, France.

出版信息

J Chem Phys. 2017 May 21;146(19):194201. doi: 10.1063/1.4983119.

Abstract

The low frequency Raman scattering from gold nanoparticle bimodal assemblies with controlled size distributions has been studied. Special care has been paid to determining the size dependence of the Raman intensity corresponding to the quadrupolar Lamb mode. Existing models based on a microscopic description of the scattering mechanism in small particles (bond polarizability, dipole induced dipole models) predict, for any Raman-active Lamb modes, an inelastic intensity scaling as the volume of the nanoparticle. Surprisingly experimental intensity ratios are found to be anomalously much greater than theoretical ones, calling into question this scaling law. To explain these discrepancies, a simple mechanism of Raman scattering, based on the density fluctuations in the nanoparticles induced by the Lamb modes, is introduced. This modeling, in which the nanoparticle is described as an elastic isotropic continuous medium-as in Lamb theory, successfully explains the major features exhibited by low frequency Raman modes. Moreover this model provides a unified picture for any material, suitable for handling both small and large size ranges, as well as non-resonant and resonant excitation conditions in the case of metallic species.

摘要

本文研究了具有可控尺寸分布的金纳米粒子双模组装体的低频 Raman 散射。特别注意确定对应于四极 Lamb 模的 Raman 强度的尺寸依赖性。基于小颗粒散射机制的微观描述的现有模型(键极化率、偶极诱导偶极模型)预测,对于任何 Raman 活性 Lamb 模,非弹性强度与纳米粒子的体积成比例。令人惊讶的是,实验强度比理论强度大得多,这对该标度律提出了质疑。为了解释这些差异,引入了一种基于 Lamb 模引起的纳米颗粒中密度涨落的简单 Raman 散射机制。这种建模将纳米颗粒描述为 Lamb 理论中的各向同性弹性连续介质,成功地解释了低频 Raman 模式表现出的主要特征。此外,该模型为任何材料提供了一个统一的图像,适用于处理金属物种的小尺寸和大尺寸范围以及非共振和共振激发条件。

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