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用于等离子体激元学的粒子与纳米空隙

Particles and nanovoids for plasmonics.

作者信息

Sierra-Martin Benjamin, Fernandez-Barbero Antonio

机构信息

Applied Physics Section, University of Almeria, 04120 Almeria, Spain.

Applied Physics Section, University of Almeria, 04120 Almeria, Spain; Institute of Applied Chemical Sciences, Universidad Autonoma de Chile, 8320000 Santiago, Chile.

出版信息

Adv Colloid Interface Sci. 2021 Apr;290:102394. doi: 10.1016/j.cis.2021.102394. Epub 2021 Feb 27.

Abstract

This article reviews and compares the optical properties of metallic nanoparticles and nanovoids, which have received great attention due to their ability to generate and control plasmon resonances. These systems are capable of concentrating and manipulating the fields at nanometer scale, being very attractive as building blocks for emerging applications. Metal particles and nanovoids present different plasmonics modes, strongly dependent on the size, shape and nature of the metal and dielectric. Specific geometrical features, as the presence of rims, make the nanovoids very promising structures to design exotic band spectra because of the coupling between different resonant modes.

摘要

本文回顾并比较了金属纳米颗粒和纳米孔洞的光学性质,它们因其产生和控制等离子体共振的能力而备受关注。这些系统能够在纳米尺度上集中和操纵场,作为新兴应用的构建模块非常有吸引力。金属颗粒和纳米孔洞呈现出不同的等离子体模式,这强烈依赖于金属和电介质的尺寸、形状及性质。特定的几何特征,如边缘的存在,由于不同共振模式之间的耦合,使得纳米孔洞成为设计奇异能带光谱的非常有前景的结构。

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