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利用反常材料色散增强表面等离子体光谱可调性

Enhancing Plasmonic Spectral Tunability with Anomalous Material Dispersion.

作者信息

Zheng Mengjie, Yang Yi, Zhu Di, Chen Yiqin, Shu Zhiwen, Berggren Karl K, Soljačić Marin, Duan Huigao

机构信息

College of Mechanical and Vehicle Engineering, State Key Laboratory of Advanced Design and Manufacturing for Vehicle Body, Hunan University, 410082 Changsha, China.

Jihua Laboratory, 528000 Foshan, China.

出版信息

Nano Lett. 2021 Jan 13;21(1):91-98. doi: 10.1021/acs.nanolett.0c03293. Epub 2020 Dec 21.

Abstract

The field confinement of plasmonic systems enables spectral tunability under structural variations or environmental perturbations, which is the principle for various applications including nanorulers, sensors, and color displays. Here, we propose and demonstrate that materials with anomalous dispersion, such as Ge in the visible, improve spectral tunability. We introduce our proposal with a semianalytical guided mode picture. Using Ge-based film (Ag/Au)-coupled gap plasmon resonators, we implement two architectures and demonstrate the improved tunability with single-particle dark-field scattering, ensemble reflection, and color generation. We observe three-fold enhancement of tunability with Ge nanodisks compared with that of Si, a normal-dispersion material in the visible. The structural color generation of large array systems, made of inversely fabricated Ge-Ag resonators, exhibits a wide gamut. Our results introduce anomalous material dispersion as an extra degree of freedom to engineer the spectral tunability of plasmonic systems, especially relevant for actively tunable plasmonics and metasurfaces.

摘要

等离子体系统的场限制能够在结构变化或环境扰动下实现光谱可调谐性,这是包括纳米尺、传感器和彩色显示器在内的各种应用的原理。在此,我们提出并证明,具有反常色散的材料,如可见光范围内的锗,可改善光谱可调谐性。我们用半解析导模图像介绍我们的提议。利用基于锗的薄膜(银/金)耦合间隙等离子体谐振器,我们实现了两种结构,并通过单粒子暗场散射、系综反射和颜色生成证明了可调谐性的改善。与可见光范围内的正常色散材料硅相比,我们观察到锗纳米盘的可调谐性提高了三倍。由反向制造的锗-银谐振器制成的大阵列系统的结构色生成展现出宽广的色域。我们的结果引入反常材料色散作为一种额外的自由度,以设计等离子体系统的光谱可调谐性,这对于主动可调谐等离子体和超表面尤其重要。

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