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声学超材料中D类拓扑结构的观测

Observation of D-class topology in an acoustic metamaterial.

作者信息

Wu Shi-Qiao, Cheng Wenting, Liu Xiao-Yu, Wu Bing-Quan, Prodan Emil, Prodan Camelia, Jiang Jian-Hua

机构信息

School of Physical Science and Technology & Collaborative Innovation Center of Suzhou Nano Science and Technology, Soochow University, Suzhou 215006, China; School of Physics and Optoelectronic Engineering, Foshan University, Foshan 528000, China; Guangdong-Hong Kong-Macao Joint Laboratory for Intelligent Micro-Nano Optoelectronic Technology, Foshan University, Foshan 528000, China.

Department of Physics, University of Michigan, Ann Arbor MI 48109, USA.

出版信息

Sci Bull (Beijing). 2024 Apr 15;69(7):893-900. doi: 10.1016/j.scib.2024.01.041. Epub 2024 Feb 1.

Abstract

Topological materials and metamaterials opened new paradigms to create and manipulate phases of matter with unconventional properties. Topological D-class phases (TDPs) are archetypes of the ten-fold classification of topological phases with particle-hole symmetry. In two dimensions, TDPs support propagating topological edge modes that simulate the elusive Majorana elementary particles. Furthermore, a piercing of π-flux Dirac-solenoids in TDPs stabilizes localized Majorana excitations that can be braided for the purpose of topological quantum computation. Such two-dimensional (2D) TDPs have been a focus in the research frontier, but their experimental realizations are still under debate. Here, with a novel design scheme, we realize 2D TDPs in an acoustic crystal by synthesizing both the particle-hole and fermion-like time reversal symmetries for a wide range of frequencies. The design scheme leverages an enriched unit cell structure with real-valued couplings that emulate the targeted Hamiltonian of TDPs with complex hoppings: A technique that could unlock the realization of all topological classes with passive metamaterials. In our experiments, we realize a pair of TDPs with opposite Chern numbers in two independent sectors that are connected by an intrinsic fermion-like time-reversal symmetry built in the system. We measure the acoustic Majorana-like helical edge modes and visualize their robust topological transport, thus revealing the unprecedented D and DIII class topologies with direct evidence. Our study opens up a new pathway for the experimental realization of two fundamental classes of topological phases and may offer new insights in fundamental physics, materials science, and phononic information processing.

摘要

拓扑材料和超材料开创了新的范式,用于创造和操纵具有非常规特性的物质相。拓扑D类相(TDPs)是具有粒子-空穴对称性的拓扑相十重分类的原型。在二维中,TDPs支持传播的拓扑边缘模式,这些模式模拟了难以捉摸的马约拉纳基本粒子。此外,在TDPs中π通量狄拉克螺线管的穿透稳定了局域化的马约拉纳激发,这些激发可以为了拓扑量子计算的目的进行编织。这样的二维(2D)TDPs一直是研究前沿的焦点,但其实验实现仍存在争议。在此,通过一种新颖的设计方案,我们通过在很宽的频率范围内合成粒子-空穴对称性和类费米子时间反演对称性,在声学晶体中实现了2D TDPs。该设计方案利用了具有实值耦合的丰富晶胞结构,该结构用复跳迁来模拟TDPs的目标哈密顿量:一种可以通过无源超材料实现所有拓扑类别的技术。在我们的实验中,我们在两个独立的扇区中实现了一对具有相反陈数的TDPs,这两个扇区通过系统中固有的类费米子时间反演对称性相连。我们测量了声学类马约拉纳螺旋边缘模式,并可视化了它们稳健的拓扑输运,从而直接证明了前所未有的D类和DIII类拓扑。我们的研究为两类基本拓扑相的实验实现开辟了一条新途径,并可能在基础物理学、材料科学和声子信息处理方面提供新的见解。

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