纳米粒子对镜面几何形状的形态学依赖性:准正态模态分析

IF 1.5 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY EPJ Applied Metamaterials Pub Date : 2022-01-01 DOI:10.1051/epjam/2022002
K. Bedingfield, E. Elliott, N. Kongsuwan, J. Baumberg, A. Demetriadou
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引用次数: 4

摘要

等离子体纳米天线能够通过将电磁场集中到亚波长体积中产生极大的增强。最近,最常用的纳米天线之一是镜面纳米粒子几何结构,它允许单分子在室温下强耦合。很少有研究提供近场模式分解的分析,它们主要集中在球面和/或圆柱面纳米颗粒在镜子上的几何形状上。完美的球形纳米颗粒并不容易制造,最近的出版物表明,由于金属纳米颗粒的结晶性质,菱形六面体是一种常见的纳米颗粒形状。本文对镜上菱形面纳米天线进行了准正态模态分析,并绘制了各模态的场分布。我们研究了腔的几何形状如何定义模态的近场分布和能量,并表明在某些情况下模态简并破坏。这对实验测量的各模式的辐射发射和远场分布有重要影响。了解实际的纳米天线几何形状在近场和远场中的表现有助于我们设计具有特定特性的天线,用于控制和传感等离子体系统中的量子发射器。
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Morphology dependence of nanoparticle-on-mirror geometries: A quasinormal mode analysis
Plasmonic nanoantennas are able to produce extreme enhancements by concentrating electromagnetic fields into sub-wavelength volumes. Recently, one of the most commonly used nanoantennas is the nanoparticle-on-mirror geometry, which allowed for the room temperature strong coupling of a single molecule. Very few studies offer analysis of near-field mode decompositions, and they mainly focus on spherical and/or cylindrically-faceted nanoparticle-on-mirror geometries. Perfectly spherical nanoparticles are not easy to fabricate, with recent publications revealing that a rhombicuboctahedron is a commonly occurring nanoparticle shape – due to the crystalline nature of metallic nanoparticles. In this paper, we perform a quasi-normal mode analysis for the rhombicuboctahedron-on-mirror nanoantenna and map the field distributions of each mode. We examine how the geometry of the cavity defines the near-field distribution and energies of the modes, and we show that in some cases the mode degeneracies break. This has a significant impact on the radiative emission and far-field profile of each mode, which are measured experimentally. Understanding how realistic nanoantenna geometries behave in the near-field and far-field helps us design antennas with specific properties for controlling and sensing quantum emitters in plasmonic systems.
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来源期刊
EPJ Applied Metamaterials
EPJ Applied Metamaterials MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
3.10
自引率
6.20%
发文量
16
审稿时长
8 weeks
期刊最新文献
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