论文标题

扩散表面散射在非局部等离子体学中的作用

Role of diffusive surface scattering in nonlocal plasmonics

论文作者

Svendsen, Mark. K., Wolff, Christian, Jauho, Antti-Pekka, Mortensen, N. Asger, Tserkezis, Christos

论文摘要

分析了针对等离子体学的最新广义非局部光学响应(GNOR)理论,其主要输入参数,即复杂的流体动力对流 - 扩散 - 扩散常数,是根据增强的Landau阻尼而量化的,这是由于电子表面在金属表面上的扩散表面散射而导致的。除了源自诱导的电荷筛选的频移外,GNOR还成功地描述了等离子阻尼效应,这是通过现象电子扩散项实现在传统的非局部等离子体上的流体动力DRUDE模型中的。然而,它的微观推导和理由仍然缺失。在这里,我们讨论了如何在标准流体动力学中包含一个类似扩散的项,可以作为描述Landau阻尼的有效载体,而无需诉诸于计算要求的量子力学计算,并在该术语和Feibelman $ d $参数之间建立直接联系。我们的方法提供了一种将现象学基本GNOR参数连接到频率依赖的显微镜表面反应函数的配方。因此,我们解决了该模型的主要局限性之一,并进一步阐明了其有效性和局限性范围,从而促进了其在非经典等离子体框架中的适当应用。

The recent generalised nonlocal optical response (GNOR) theory for plasmonics is analysed, and its main input parameter, namely the complex hydrodynamic convection-diffusion constant, is quantified in terms of enhanced Landau damping due to diffusive surface scattering of electrons at the surface of the metal. GNOR has been successful in describing plasmon damping effects, in addition to the frequency shifts originating from induced-charge screening, through a phenomenological electron diffusion term implemented into the traditional hydrodynamic Drude model of nonlocal plasmonics. Nevertheless, its microscopic derivation and justification is still missing. Here we discuss how the inclusion of a diffusion-like term in standard hydrodynamics can serve as an efficient vehicle to describe Landau damping without resorting to computationally demanding quantum-mechanical calculations, and establish a direct link between this term and the Feibelman $d$ parameter for the centroid of charge. Our approach provides a recipe to connect the phenomenological fundamental GNOR parameter to a frequency-dependent microscopic surface-response function. We therefore tackle one of the principal limitations of the model, and further elucidate its range of validity and limitations, thus facilitating its proper application in the framework of nonclassical plasmonics.

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