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等离子体超材料阵列中的边缘态

Edge states in plasmonic meta-arrays.

作者信息

Yan Qiuchen, Cao En, Hu Xiaoyong, Du Zhuochen, Ao Yutian, Chu Saisai, Sun Quan, Shi Xu, Chan C T, Gong Qihuang, Misawa Hiroaki

机构信息

State Key Laboratory for Mesoscopic Physics and Department of Physics, Collaborative Innovation Center of Quantum Matter & Frontiers Science Center for Nano-optoelectronics, Beijing Academy of Quantum Information Sciences, Peking University, Beijing 100871, P. R. China.

Research Institute for Electronic Science, Hokkaido University, Sapporo 001-0021, Japan.

出版信息

Nanophotonics. 2022 Jul 7;11(15):3495-3507. doi: 10.1515/nanoph-2022-0258. eCollection 2022 Aug.

Abstract

Photonic edge states provide a novel platform to control and enhance light-matter interactions. Recently, it becomes increasing popular to generate such localized states using the bulk-edge correspondence of topological photonic crystals. While the topological approach is elegant, the design and fabrication of these complex photonic topological crystals is tedious. Here, we report a simple and effective strategy to construct and steer photonic edge state in a plasmonic meta-array, which just requires a small number of plasmonic nanoparticles to form a simple lattice. To demonstrate the idea, different lattice configurations, including square, triangular, and honeycomb lattices of meta-arrays, are fabricated and measured by using an ultrahigh spatial resolution photoemission electron microscopy. The properties of edge states depend on the geometric details such as the row and column number of the lattice, as well as the gap distance between the particles. Moreover, numerical simulations show that the excited edge states can be used for the generation of the quantum entanglement. This work not only provides a new platform for the study of nanoscale photonic devices, but also open a new way for the fundamental study of nanophotonics based on edge states.

摘要

光子边缘态为控制和增强光与物质的相互作用提供了一个新颖的平台。最近,利用拓扑光子晶体的体边对应来产生这种局域态变得越来越流行。虽然拓扑方法很巧妙,但这些复杂的光子拓扑晶体的设计和制造却很繁琐。在这里,我们报告了一种简单有效的策略,用于在等离子体元阵列中构建和操控光子边缘态,该策略只需要少量的等离子体纳米颗粒就能形成一个简单的晶格。为了验证这一想法,我们制造了不同的晶格构型,包括元阵列的正方形、三角形和蜂窝晶格,并使用超高空间分辨率光发射电子显微镜进行了测量。边缘态的性质取决于几何细节,如晶格的行数和列数,以及颗粒之间的间隙距离。此外,数值模拟表明,激发的边缘态可用于产生量子纠缠。这项工作不仅为纳米尺度光子器件的研究提供了一个新平台,也为基于边缘态的纳米光子学基础研究开辟了一条新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bf5d/11501916/51bc2b5be81b/j_nanoph-2022-0258_fig_001.jpg

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