Nonlocal Hydrodynamic Response of Plasmonic Structures at Deep-nanometer Scale

M. Kupresak, Tomislav Marinović, Xuezhi Zheng, G. Vandenbosch, V. Moshchalkov
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引用次数: 1

Abstract

The electromagnetic properties of plasmonic nano-antennas and scatterers with the characteristic dimensions at deep-nanometer scale, governed by quantum mechanical effects, have been extensively studied by a hydrodynamic approach. Several hydrodynamic models, together with additional boundary conditions, have been proposed to deal with the collective motion of the free electron gas in metals. In this work, four hydrodynamic models, namely the hard-wall hydrodynamic model, the curl-free hydrodynamic model, the shear forces hydrodynamic model, and the quantum hydrodynamic model are employed. The study is performed for a deep-nanometer metal core–dielectric shell sphere, excited by a plane wave. It is demonstrated that the far field characteristics of the core–shell nanosphere are largely affected by the choice of a specific hydrodynamic model.
深度纳米尺度等离子体结构的非局部水动力响应
采用流体力学方法对具有深度纳米尺度特征尺寸的等离子体纳米天线和散射体在量子力学作用下的电磁特性进行了广泛研究。为了处理金属中自由电子气体的集体运动,提出了几种流体力学模型和附加的边界条件。本文采用了四种流体力学模型,即硬壁流体力学模型、无旋流流体力学模型、剪力流体力学模型和量子流体力学模型。对平面波激励下的深纳米金属核-介电壳球进行了研究。结果表明,核壳纳米球的远场特性受特定水动力模型选择的影响较大。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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