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光子人工微结构中的拓扑相和非厄米拓扑

Topological phases and non-Hermitian topology in photonic artificial microstructures.

作者信息

Liu Hui, Lai Pengtao, Wang Haonan, Cheng Hua, Tian Jianguo, Chen Shuqi

机构信息

The Key Laboratory of Weak Light Nonlinear Photonics, Ministry of Education, Smart Sensing Interdisciplinary Science Center, Renewable Energy Conversion and Storage Center, School of Physics and TEDA Institute of Applied Physics, Nankai University, Tianjin 300071, China.

The Collaborative Innovation Center of Extreme Optics, Shanxi University, Taiyuan, Shanxi 030006, China.

出版信息

Nanophotonics. 2023 Feb 16;12(13):2273-2294. doi: 10.1515/nanoph-2022-0778. eCollection 2023 Jun.

Abstract

In the past few decades, the discovery of topological matter states has ushered in a new era in topological physics, providing a robust framework for strategically controlling the transport of particles or waves. Topological photonics, in particular, has sparked considerable research due to its ability to construct and manipulate photonic topological states via photonic artificial microstructures. Although the concept of topology originates from condensed matter, topological photonics has given rise to new fundamental ideas and a range of potential applications that may lead to revolutionary technologies. Here, we review recent developments in topological photonics, with a focus on the realization and application of several emerging research areas in photonic artificial microstructures. We highlight the research trend, spanning from the photonic counterpart of topological insulator phases, through topological semimetal phases, to other emerging non-Hermitian topologies.

摘要

在过去几十年里,拓扑物态的发现开创了拓扑物理学的新纪元,为策略性地控制粒子或波的输运提供了一个坚实的框架。特别是拓扑光子学,因其能够通过光子人工微结构来构建和操纵光子拓扑态而引发了大量研究。尽管拓扑概念起源于凝聚态物质,但拓扑光子学催生了新的基础理念以及一系列可能带来变革性技术的潜在应用。在此,我们回顾拓扑光子学的近期进展,重点关注光子人工微结构中几个新兴研究领域的实现与应用。我们突出了研究趋势,涵盖从拓扑绝缘体相的光子对应物,到拓扑半金属相,再到其他新兴的非厄米拓扑。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b72b/11502100/2aef317f5249/j_nanoph-2022-0778_fig_001.jpg

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