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Strong Light Confinement in Metal-Coated Si Nanopillars: Interplay of Plasmonic Effects and Geometric Resonance

机译:金属包覆的硅纳米柱中的强光限制:等离子体效应和几何共振的相互作用

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摘要

We investigated the influence of metal coating on the optical characteristics of Si nanopillar (NP) arrays with and without thin metal layers coated on the sample surface. The reflection dips of the metal-coated arrays were much broader and more pronounced than those of the bare arrays. The coated metal layers consisted of two parts—the metal disks on the Si NP top and the holey metal backreflectors on the Si substrate. The Mie-like geometrical resonance in the NPs, the localized surface plasmons in the metal disks, and the propagation of surface plasmon polariton along the backreflector/substrate interface could contribute to the reflection spectra. Finite-difference time-domain simulation results showed that the interplay of the plasmonic effects and the geometric resonance gave rise to significantly enhanced light confinement and consequent local absorption in the metal-Si hybrid nanostructures.
机译:我们研究了金属涂层对样品表面有无金属薄层的Si纳米柱(NP)阵列光学特性的影响。金属镀膜阵列的反射倾角比裸露阵列的反射倾角宽得多且更明显。涂层金属层由两部分组成-Si NP顶部的金属盘和Si基板上的带孔金属背反射器。 NP中的Mie形几何共振,金属盘中的局部表面等离激元以及表面等离激元极化子沿后向反射器/基板界面的传播可能有助于反射光谱。时域有限差分模拟结果表明,等离子体效应与几何共振的相互作用导致金属-硅杂化纳米结构中的光限制和由此引起的局部吸收显着增强。

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