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仿生图案化气泡实现宽频带低频声阻挡。

Bioinspired Patterned Bubbles for Broad and Low-Frequency Acoustic Blocking.

机构信息

Key Laboratory of Green Printing, CAS Research/Education Center for Excellence in Molecular Sciences, Institute of Chemistry , Chinese Academy of Sciences (ICCAS), Beijing Engineering Research Center of Nanomaterials for Green Printing Technology, Beijing National Laboratory for Molecular Sciences (BNLMS) , Beijing 100190 , P. R. China.

School of Chemistry and Chemical Engineering , University of Chinese Academy of Sciences , Beijing 100049 , P. R. China.

出版信息

ACS Appl Mater Interfaces. 2020 Jan 8;12(1):1757-1764. doi: 10.1021/acsami.9b15683. Epub 2019 Dec 23.

Abstract

Bubble crystals in water are expected to achieve the broad and low-frequency acoustic band gaps that are crucial for acoustic blocking. However, preparing patterned bubble crystals in water remains a challenge because of the instability of bubbly liquids. Here, inspired by biological superhydrophobic systems, we report a simple and rapid approach to prepare patterned bubble arrays in water and their applications in low-frequency acoustic blocking. Patterned bubbles with the desired size, shape, and position can be prepared. Single-layer bubble arrays can block the sounds at low frequencies because of local resonance. By varying the size and distance of the bubbles without changing the thickness, the operating frequency can change from 9 to 1756 kHz. Besides, by preparing multilayer bubbles, broad and low-frequency acoustic band gaps can be achieved, with the generalized width of γ (ratio of the bandgap width to its start frequency) reaching 1.26. This method provides a feasible strategy to control acoustic waves at low frequencies for applications such as acoustic blocking, focusing, imaging, and detecting.

摘要

水中的气泡晶体有望实现宽带低频声隙,这对于声阻挡至关重要。然而,由于泡沫液体的不稳定性,在水中制备图案化气泡晶体仍然是一个挑战。在这里,受生物超疏水系统的启发,我们报告了一种简单而快速的方法来制备水中的图案化气泡阵列及其在低频声阻挡中的应用。可以制备具有所需尺寸、形状和位置的图案化气泡。由于局部共振,单层气泡阵列可以阻挡低频声音。通过改变气泡的大小和距离而不改变厚度,可以将工作频率从 9 kHz 改变到 1756 kHz。此外,通过制备多层气泡,可以实现宽带低频声隙,广义带宽γ(带隙宽度与其起始频率的比值)达到 1.26。该方法为低频声波控制提供了一种可行的策略,可用于声阻挡、聚焦、成像和检测等应用。

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