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具有高度可调集体特性的三维定向等离子体二聚体的厘米级超晶格。

Centimeter-Scale Superlattices of Three-Dimensionally Orientated Plasmonic Dimers with Highly Tunable Collective Properties.

作者信息

Ye Shunsheng, Zha Huaining, Xia Yifan, Dong Wenhao, Yang Fan, Yi Chenglin, Tao Jing, Shen Xiaoxue, Yang Dong, Nie Zhihong

机构信息

State Key Laboratory of Molecular Engineering of Polymers, Department of Macromolecular Science, Fudan University, Shanghai 200438, P. R. China.

Key Laboratory of Green Chemistry & Technology of Ministry of Education, College of Chemistry, Sichuan University, Chengdu 610064, P. R. China.

出版信息

ACS Nano. 2022 Mar 22;16(3):4609-4618. doi: 10.1021/acsnano.1c11219. Epub 2022 Feb 15.

Abstract

The precise organization and orientation of plasmonic molecules on substrates is crucial to their application in functional devices but still remains a grand challenge. This article describes a bottom-up strategy to efficiently fabricate centimeter-scale superlattices of three-dimensionally oriented plasmonic dimers with highly tunable collective optical properties on substrates. The in-plane (i.e., - plane) and out-of-plane (i.e., along -axis) orientation of the constituent plasmonic dimers can be precisely controlled by a combination of directional capillary force and supporting polymer film. Our experimental measurements and numerical simulations show that the macroscopic dimer superlattices exhibit polarization-dependent plasmon Fano resonances in air and multimodal surface lattice resonances with high quality factors in a homogeneous medium, owing to the high positional and orientational ordering of the subunits. Our strategy enables the fabrication of complex plasmonic nanostructures with precise configurations for advanced plasmonic devices such as plasmon nanolasing and metamaterials.

摘要

等离子体分子在基底上的精确排列和取向对其在功能器件中的应用至关重要,但仍然是一个巨大的挑战。本文描述了一种自下而上的策略,用于在基底上高效制备具有高度可调集体光学性质的三维取向等离子体二聚体的厘米级超晶格。组成等离子体二聚体的面内(即 - 平面)和面外(即沿 - 轴)取向可以通过定向毛细力和支撑聚合物膜的组合精确控制。我们的实验测量和数值模拟表明,由于亚基的高位置和取向有序性,宏观二聚体超晶格在空气中表现出偏振依赖的等离子体法诺共振,在均匀介质中表现出具有高品质因数的多模表面晶格共振。我们的策略能够制造具有精确配置的复杂等离子体纳米结构,用于诸如等离子体纳米激光和超材料等先进的等离子体器件。

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