Acoustic resonances in non-Hermitian open systems

IF 44.8 1区 物理与天体物理 Q1 PHYSICS, APPLIED
Lujun Huang, Sibo Huang, Chen Shen, Simon Yves, Artem S. Pilipchuk, Xiang Ni, Seunghwi Kim, Yan Kei Chiang, David A. Powell, Jie Zhu, Ya Cheng, Yong Li, Almas F. Sadreev, Andrea Alù, Andrey E. Miroshnichenko
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Abstract

Acoustic resonances in open systems, which are usually associated with resonant modes characterized by complex eigenfrequencies, play a fundamental role in manipulating acoustic wave radiation and propagation. Notably, they are accompanied by considerable field enhancement, boosting interactions between waves and matter, and leading to various exciting applications. In the past two decades, acoustic metamaterials have enabled a high degree of control over tailoring acoustic resonances over a range of frequencies. Here, we provide an overview of recent advances in the area of acoustic resonances in non-Hermitian open systems, including Helmholtz resonators, metamaterials and metasurfaces, and discuss their applications in various acoustic devices, including sound absorbers, acoustic sources, vortex beam generation and imaging. We also discuss bound states in the continuum and their applications in boosting acoustic wave–matter interactions, active phononics and non-Hermitian acoustic resonances, including phononic topological insulators and the acoustic skin effect. Non-Hermitian acoustic resonances in open systems provide a versatile platform to manipulate sound–matter interaction. This Review article surveys the fundamental physics of various acoustic resonances and their uses in realizing different acoustic wave-based applications.

Abstract Image

Abstract Image

非厄米开系统中的声学共振
开放系统中的声共振通常与以复特征频率为特征的共振模式有关,在操纵声波的辐射和传播中起着重要作用。值得注意的是,它们伴随着相当大的场增强,促进波和物质之间的相互作用,并导致各种令人兴奋的应用。在过去的二十年里,声学超材料已经能够高度控制在一定频率范围内的声学共振。在这里,我们概述了非厄米开放系统中声学共振领域的最新进展,包括亥姆霍兹谐振器、超材料和超表面,并讨论了它们在各种声学器件中的应用,包括吸声器、声源、涡束产生和成像。我们还讨论了连续介质中的束缚态及其在促进声波-物质相互作用、有源声子和非厄米声学共振(包括声子拓扑绝缘体和声表皮效应)方面的应用。
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来源期刊
CiteScore
47.80
自引率
0.50%
发文量
122
期刊介绍: Nature Reviews Physics is an online-only reviews journal, part of the Nature Reviews portfolio of journals. It publishes high-quality technical reference, review, and commentary articles in all areas of fundamental and applied physics. The journal offers a range of content types, including Reviews, Perspectives, Roadmaps, Technical Reviews, Expert Recommendations, Comments, Editorials, Research Highlights, Features, and News & Views, which cover significant advances in the field and topical issues. Nature Reviews Physics is published monthly from January 2019 and does not have external, academic editors. Instead, all editorial decisions are made by a dedicated team of full-time professional editors.
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