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在无流对称破缺超材料晶格中声学赝自旋多极子的拓扑产生

Topological Creation of Acoustic Pseudospin Multipoles in a Flow-Free Symmetry-Broken Metamaterial Lattice.

作者信息

Zhang Zhiwang, Wei Qi, Cheng Ying, Zhang Ting, Wu Dajian, Liu Xiaojun

机构信息

Key Laboratory of Modern Acoustics, Department of Physics and Collaborative Innovation Center of Advanced Microstructures, Nanjing University, Nanjing 210093, China.

State Key Laboratory of Acoustics, Chinese Academy of Science, Beijing 100190, China.

出版信息

Phys Rev Lett. 2017 Feb 24;118(8):084303. doi: 10.1103/PhysRevLett.118.084303. Epub 2017 Feb 23.

Abstract

The discovery of topological acoustics has revolutionized fundamental concepts of sound propagation, giving rise to strikingly unconventional acoustic edge modes immune to scattering. Because of the spinless nature of sound, the "spinlike" degree of freedom crucial to topological states in acoustic systems is commonly realized with circulating background flow or preset coupled resonator ring waveguides, which drastically increases the engineering complexity. Here we realize the acoustic pseudospin multipolar states in a simple flow-free symmetry-broken metamaterial lattice, where the clockwise (anticlockwise) sound propagation within each metamolecule emulates pseudospin down (pseudospin up). We demonstrate that tuning the strength of intermolecular coupling by simply contracting or expanding the metamolecule can induce the band inversion effect between the pseudospin dipole and quadrupole, which leads to a topological phase transition. Topologically protected edge states and reconfigurable topological one-way transmission for sound are further demonstrated. These results provide diverse routes to construct novel acoustic topological insulators with versatile applications.

摘要

拓扑声学的发现彻底改变了声音传播的基本概念,产生了对散射免疫的极其非常规的声学边缘模式。由于声音的无自旋性质,对于声学系统中的拓扑态至关重要的“类自旋”自由度通常通过循环背景流或预设的耦合谐振器环形波导来实现,这极大地增加了工程复杂性。在此,我们在一个简单的无流对称破缺超材料晶格中实现了声学赝自旋多极态,其中每个超分子内顺时针(逆时针)的声音传播模拟赝自旋向下(赝自旋向上)。我们证明,通过简单地收缩或扩展超分子来调节分子间耦合强度,可以诱导赝自旋偶极子和四极子之间的能带反转效应,从而导致拓扑相变。进一步展示了拓扑保护的边缘态和声音的可重构拓扑单向传输。这些结果为构建具有多种应用的新型声学拓扑绝缘体提供了多样的途径。

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