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声学超材料中的合成赝自旋霍尔效应。

Synthetic Pseudo-Spin-Hall effect in acoustic metamaterials.

作者信息

Weiner Matthew, Ni Xiang, Alù Andrea, Khanikaev Alexander B

机构信息

Department of Electrical Engineering, Grove School of Engineering, City College of the City University of New York, New York, NY, USA.

Physics Program, Graduate Center of the City University of New York, New York, NY, USA.

出版信息

Nat Commun. 2022 Oct 25;13(1):6332. doi: 10.1038/s41467-022-34072-4.

Abstract

While vector fields naturally offer additional degrees of freedom for emulating spin, acoustic pressure field is scalar in nature, and it requires engineering of synthetic degrees of freedom by material design. Here we experimentally demonstrate the control of sound waves by using two types of engineered acoustic systems, where synthetic pseudo-spin emerges either as a consequence of the evanescent nature of the field or due to lattice symmetry. First, we show that evanescent sound waves in perforated films possess transverse angular momentum locked to their propagation direction which enables their directional excitation. Second, we demonstrate that lattice symmetries of an acoustic kagome lattice also enable a synthetic transverse pseudo-spin locked to the linear momentum, enabling control of the propagation of modes both in the bulk and along the edges. Our results open a new degree of control of radiation and propagation of acoustic waves thus offering new design approaches for acoustic devices.

摘要

虽然矢量场自然地为模拟自旋提供了额外的自由度,但声压场本质上是标量,需要通过材料设计来构建合成自由度。在此,我们通过实验展示了利用两种类型的工程声学系统对声波的控制,其中合成赝自旋的出现要么是由于场的倏逝性质,要么是由于晶格对称性。首先,我们表明穿孔薄膜中的倏逝声波具有锁定在其传播方向上的横向角动量,这使得它们能够被定向激发。其次,我们证明了声学 Kagome 晶格的晶格对称性也能使一个合成横向赝自旋锁定在线动量上,从而能够控制体模和沿边缘模式的传播。我们的结果开启了对声波辐射和传播的新控制程度,从而为声学器件提供了新的设计方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a252/9596417/76dd8ddbf888/41467_2022_34072_Fig1_HTML.jpg

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