金纳米六边形棱镜阵列中的多重表面晶格共振

IF 2.5 3区 物理与天体物理 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Lei Wang , Shu-Shuai Zhang , Xiang-Yu Yin , Ai-Song Zhu , Qi Wang
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引用次数: 0

摘要

多表面晶格共振在连接多波长的应用中显示出巨大的前景,因为它可以同时减少整个系统在多个共振点附近的辐射损失,改善光与物质之间的相互作用。由于六极局域表面等离子体共振(LSPR)模式在X和Y方向上都具有等效的偶极矩,因此它具有在平面X和Y方向上散射电磁波的能力,使得六极LSPR在两个正交方向上与瑞利异常耦合成为可能。提出了一种无需设计复杂聚合物结构就能激发多个表面晶格共振的金纳米六角形棱镜阵列结构。由于正六角形棱镜结构的特殊性,有针对性地引入尖端效应增强六角形LSPR模。数值模拟和模态场分析结果表明,金纳米六角形棱镜阵列结构的六角形LSPR可以在平面上与两个周期瑞利异常耦合,产生两个表面晶格共振峰。该结构还可以被入射光激发产生面外偶极子模式,该模式与瑞利异常耦合形成表面晶格共振峰。本工作通过详细介绍结构的三个表面晶格共振峰随结构参数变化的特性,为多表面晶格共振器件的设计提供了新的理解和数据支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multiple surface lattice resonances in gold nano-hexagonal prism arrays
Multiple surface lattice resonance exhibits great promise in applications connected to multi-wavelength because it can simultaneously decrease the radiation loss of the overall system near numerous resonance points, improving the interaction between light and matter. Since the hexapole localized surface plasmon resonance (LSPR) mode has equivalent dipole moments in the directions of both X and Y, it has the ability to disperse electromagnetic waves in the plane's X and Y directions, making it possible for the hexapole LSPR to couple with Rayleigh anomalies in two orthogonal directions. This paper proposes a gold nano-hexagonal prism array structure that can excite multiple surface lattice resonances without designing complex polymer structures. Due to the particularity of the regular hexagonal prism structure, the tip effect is introduced to enhance the hexagonal LSPR mode in a targeted manner. The numerical simulation and modal field analysis results show that the hexagonal LSPR of the gold nano-hexagonal prism array structure can couple with two periodic Rayleigh anomalies in the plane, resulting in two surface lattice resonance peaks. The structure can also be excited by incident light to generate an out-of-plane dipole mode, which couples with Rayleigh anomalies to form a surface lattice resonance peak. This work provides new understanding and data support for the design of multiple surface lattice resonance devices by presenting in detail the properties of the structure's three surface lattice resonance peaks varying with structural parameters.
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来源期刊
CiteScore
5.00
自引率
3.70%
发文量
77
审稿时长
62 days
期刊介绍: This journal establishes a dedicated channel for physicists, material scientists, chemists, engineers and computer scientists who are interested in photonics and nanostructures, and especially in research related to photonic crystals, photonic band gaps and metamaterials. The Journal sheds light on the latest developments in this growing field of science that will see the emergence of faster telecommunications and ultimately computers that use light instead of electrons to connect components.
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