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用于在水-气界面完美传输和定制操控声波的混合超表面。

Hybrid Metasurfaces for Perfect Transmission and Customized Manipulation of Sound Across Water-Air Interface.

机构信息

Department of Mechanics, School of Mechanical Engineering, Tianjin University, Tianjin, 300350, China.

Institute of Engineering Mechanics, Beijing Jiaotong University, Beijing, 100044, China.

出版信息

Adv Sci (Weinh). 2023 Jul;10(19):e2207181. doi: 10.1002/advs.202207181. Epub 2023 Apr 20.

Abstract

Extreme impedance mismatch causes sound insulation at water-air interfaces, limiting numerous cross-media applications such as ocean-air wireless acoustic communication. Although quarter-wave impedance transformers can improve transmission, they are not readily available for acoustics and are restricted by the fixed phase shift at full transmission. Here, this limitation is broken through impedance-matched hybrid metasurfaces assisted by topology optimization. Sound transmission enhancement and phase modulation across the water-air interface are achieved independently. Compared to the bare water-air interface, it is experimentally observed that the average transmitted amplitude through an impedance-matched metasurface at the peak frequency is enhanced by ≈25.9 dB, close to the limit of the perfect transmission 30 dB. And nearly 42 dB amplitude enhancement is measured by the hybrid metasurfaces with axial focusing function. Various customized vortex beams are experimentally realized to promote applications in ocean-air communication. The physical mechanisms of sound transmission enhancement for broadband and wide-angle incidences are revealed. The proposed concept has potential applications in efficient transmission and free communication across dissimilar media.

摘要

极端的阻抗失配导致水-气界面的隔音,限制了许多跨介质应用,如海洋-空气无线声通信。尽管四分之一波长阻抗变换器可以改善传输,但它们不适用于声学,并且受到全传输时固定相移的限制。在这里,通过拓扑优化辅助的阻抗匹配混合超表面打破了这一限制。声传输增强和在水-气界面的相位调制可以独立实现。与裸露的水-气界面相比,实验观察到在峰值频率下通过阻抗匹配超表面的平均透射幅度增强了约 25.9 dB,接近完美传输 30 dB 的极限。并且具有轴向聚焦功能的混合超表面测量到近 42 dB 的幅度增强。各种定制的涡旋光束被实验实现,以促进海洋-空气通信中的应用。揭示了宽带和宽入射角下增强声传输的物理机制。所提出的概念在不同介质之间的高效传输和自由通信方面具有潜在的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a5a5/10323646/1c19b792f34e/ADVS-10-2207181-g001.jpg

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