Department of Physics and Institute for Advanced Study, Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong, China.
Sci Adv. 2016 Feb 26;2(2):e1501595. doi: 10.1126/sciadv.1501595. eCollection 2016 Feb.
Within a time span of 15 years, acoustic metamaterials have emerged from academic curiosity to become an active field driven by scientific discoveries and diverse application potentials. This review traces the development of acoustic metamaterials from the initial findings of mass density and bulk modulus frequency dispersions in locally resonant structures to the diverse functionalities afforded by the perspective of negative constitutive parameter values, and their implications for acoustic wave behaviors. We survey the more recent developments, which include compact phase manipulation structures, superabsorption, and actively controllable metamaterials as well as the new directions on acoustic wave transport in moving fluid, elastic, and mechanical metamaterials, graphene-inspired metamaterials, and structures whose characteristics are best delineated by non-Hermitian Hamiltonians. Many of the novel acoustic metamaterial structures have transcended the original definition of metamaterials as arising from the collective manifestations of constituent resonating units, but they continue to extend wave manipulation functionalities beyond those found in nature.
在 15 年的时间跨度内,声学超材料已经从学术好奇心发展成为一个活跃的领域,这得益于科学发现和多样化的应用潜力。本综述追溯了声学超材料的发展历程,从局域共振结构中质量密度和体弹性模量的频散的最初发现,到负本构参数值视角带来的多样化功能,以及它们对声波行为的影响。我们调查了最近的发展,包括紧凑的相位调控结构、超吸收和主动可控超材料,以及在流动流体、弹性和机械超材料中声波传输的新方向、基于石墨烯的超材料,以及那些特征最好由非厄米哈密顿量来描述的结构。许多新型声学超材料结构已经超越了超材料作为组成谐振单元集体表现的最初定义,但它们继续扩展了波的操控功能,超越了自然界中发现的功能。