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用于水中超声亚波长成像的陷获空气超材料概念

Trapped air metamaterial concept for ultrasonic sub-wavelength imaging in water.

作者信息

Laureti Stefano, Hutchins David A, Astolfi Lorenzo, Watson Richard L, Thomas Peter J, Burrascano Pietro, Nie Luzhen, Freear Steven, Askari Meisam, Clare Adam T, Ricci Marco

机构信息

Department of Informatics, Modeling, Electronics and Systems Engineering, University of Calabria, Via Pietro Bucci, 87036, Arcavacata di Rende, CS, Italy.

School of Engineering, University of Warwick, Coventry, CV4 7AL, UK.

出版信息

Sci Rep. 2020 Jun 30;10(1):10601. doi: 10.1038/s41598-020-67454-z.

Abstract

Acoustic metamaterials constructed from conventional base materials can exhibit exotic phenomena not commonly found in nature, achieved by combining geometrical and resonance effects. However, the use of polymer-based metamaterials that could operate in water is difficult, due to the low acoustic impedance mismatch between water and polymers. Here we introduce the concept of "trapped air" metamaterial, fabricated via vat photopolymerization, which makes ultrasonic sub-wavelength imaging in water using polymeric metamaterials highly effective. This concept is demonstrated for a holey-structured acoustic metamaterial in water at 200-300 kHz, via both finite element modelling and experimental measurements, but it can be extended to other types of metamaterials. The new approach, which outperforms the usual designs of these structures, indicates a way forward for exploiting additive-manufacturing for realising polymer-based acoustic metamaterials in water at ultrasonic frequencies.

摘要

由传统基础材料构建的声学超材料能够展现出自然界中不常见的奇异现象,这是通过几何效应和共振效应相结合实现的。然而,由于水与聚合物之间的低声学阻抗失配,使用能够在水中工作的聚合物基超材料存在困难。在此,我们引入“捕获空气”超材料的概念,该超材料通过光固化3D打印制造,它使得在水中使用聚合物基超材料进行超声亚波长成像变得高效。通过有限元建模和实验测量,在200 - 300kHz频率下对水中的多孔结构声学超材料验证了这一概念,并且它可以扩展到其他类型的超材料。这种优于这些结构常规设计的新方法,为利用增材制造在超声频率下实现水中聚合物基声学超材料指明了方向。

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