基于LSPR和SPPs强耦合的等离子体场增强激光与包含领结孔和圆柱孔的MIM纳米结构的相互作用

IF 2.2 4区 工程技术 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Mohsenifard Atefeh, Mohebbi Masoud
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引用次数: 0

摘要

本文提出了一种由领结孔和圆柱孔组成的金属-绝缘体-金属(MIM)阵列纳米结构作为场放大器。这种混合阵列包括一个由金制成的光栅薄膜,其中一些圆柱形孔被一个领结孔取代,蓝宝石衬底,最后是一个金属薄膜。作为二维光栅的圆柱孔阵列可以有效地激发沿金属薄膜传播的表面等离子激元偏振子模式,但其内部的电场增强相对较弱。另一方面,领结孔径由于其棱角锐利、间隙小,可以在其间隙内提供更大的强度增强因子。这两种MIM纳米结构的结合形成了传播和局域表面等离子体激元之间的强耦合,导致亚衍射极限弓形孔的场约束得到改善,其量级增加了115倍。这种有效的增强可用于等离子体传感器、激光器、SERS等应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Laser interaction with a MIM nanostructure including bowtie aperture and cylindrical holes for plasmonic field enhancement based on strong coupling of LSPR and SPPs

In this paper, a metal–insulator–metal (MIM) array nanostructure consisting of a bowtie aperture and cylindrical holes is proposed as a field amplifier. This hybrid array consists of a grating film made of gold in which some cylindrical holes are replaced with a bowtie aperture, sapphire substrate, and finally a metal film. The array of cylindrical holes acting as a two-dimensional grating can effectively excite propagating surface plasmon polariton modes along a metal film, but the electric field enhancement inside it is relatively weak. On the other hand, the bowtie aperture, with its sharp corners and small gap, can provide a greater intensity enhancement factor within its gap. The combination of these two MIM nanostructures forms a strong coupling between the propagating and localized surface plasmons, leading to an improvement in field confinement in the bowtie aperture in the sub-diffraction limit and its magnitude increase of 115 times. This effective enhancement can be used in plasmonic sensors, lasers, SERS, etc., applications.

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来源期刊
Journal of Computational Electronics
Journal of Computational Electronics ENGINEERING, ELECTRICAL & ELECTRONIC-PHYSICS, APPLIED
CiteScore
4.50
自引率
4.80%
发文量
142
审稿时长
>12 weeks
期刊介绍: he Journal of Computational Electronics brings together research on all aspects of modeling and simulation of modern electronics. This includes optical, electronic, mechanical, and quantum mechanical aspects, as well as research on the underlying mathematical algorithms and computational details. The related areas of energy conversion/storage and of molecular and biological systems, in which the thrust is on the charge transport, electronic, mechanical, and optical properties, are also covered. In particular, we encourage manuscripts dealing with device simulation; with optical and optoelectronic systems and photonics; with energy storage (e.g. batteries, fuel cells) and harvesting (e.g. photovoltaic), with simulation of circuits, VLSI layout, logic and architecture (based on, for example, CMOS devices, quantum-cellular automata, QBITs, or single-electron transistors); with electromagnetic simulations (such as microwave electronics and components); or with molecular and biological systems. However, in all these cases, the submitted manuscripts should explicitly address the electronic properties of the relevant systems, materials, or devices and/or present novel contributions to the physical models, computational strategies, or numerical algorithms.
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