Sonny Astani Department of Civil and Environmental Engineering, University of Southern California, Los Angeles, CA, 90089, USA.
Department of Mechanical Engineering, Massachusetts Institute of Technology, Cambridge, MA, 02139, USA.
Adv Mater. 2018 May;30(21):e1706348. doi: 10.1002/adma.201706348. Epub 2018 Apr 11.
Acoustic metamaterials with negative constitutive parameters (modulus and/or mass density) have shown great potential in diverse applications ranging from sonic cloaking, abnormal refraction and superlensing, to noise canceling. In conventional acoustic metamaterials, the negative constitutive parameters are engineered via tailored structures with fixed geometries; therefore, the relationships between constitutive parameters and acoustic frequencies are typically fixed to form a 2D phase space once the structures are fabricated. Here, by means of a model system of magnetoactive lattice structures, stimuli-responsive acoustic metamaterials are demonstrated to be able to extend the 2D phase space to 3D through rapidly and repeatedly switching signs of constitutive parameters with remote magnetic fields. It is shown for the first time that effective modulus can be reversibly switched between positive and negative within controlled frequency regimes through lattice buckling modulated by theoretically predicted magnetic fields. The magnetically triggered negative-modulus and cavity-induced negative density are integrated to achieve flexible switching between single-negative and double-negative. This strategy opens promising avenues for remote, rapid, and reversible modulation of acoustic transportation, refraction, imaging, and focusing in subwavelength regimes.
具有负本构参数(模量和/或质量密度)的声学超材料在各种应用中显示出巨大的潜力,包括声波隐身、异常折射和超透镜、噪声消除等。在传统的声学超材料中,负本构参数是通过具有固定几何形状的定制结构来设计的;因此,一旦结构制造完成,本构参数与声波频率之间的关系通常是固定的,形成二维相空间。在这里,通过磁活性晶格结构的模型系统,证明了响应性声超材料能够通过远程磁场快速且反复地切换本构参数的符号,将二维相空间扩展到三维。首次展示了通过理论预测的磁场调制晶格屈曲,在受控的频率范围内,可以在正和负之间可逆地切换有效模量。通过磁触发的负模量和腔诱导的负密度的集成,可以实现单负和双负之间的灵活切换。该策略为在亚波长范围内远程、快速和可逆地调制声波传输、折射、成像和聚焦开辟了广阔的前景。