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Acoustofluidic black holes for multifunctional in-droplet particle manipulation.

作者信息

Liu Pengzhan, Tian Zhenhua, Yang Kaichun, Naquin Ty Downing, Hao Nanjing, Huang Huiyu, Chen Jinyan, Ma Qiuxia, Bachman Hunter, Zhang Peiran, Xu Xiahong, Hu Junhui, Huang Tony Jun

机构信息

Thomas Lord Department of Mechanical Engineering and Materials Science, Duke University, Durham, NC 27708, USA.

State Key Lab of Mechanics and Control of Mechanical Structures, Nanjing University of Aeronautics and Astronautics, Nanjing 210016, China.

出版信息

Sci Adv. 2022 Apr;8(13):eabm2592. doi: 10.1126/sciadv.abm2592. Epub 2022 Apr 1.

Abstract

Acoustic black holes offer superior capabilities for slowing down and trapping acoustic waves for various applications such as metastructures, energy harvesting, and vibration and noise control. However, no studies have considered the linear and nonlinear effects of acoustic black holes on micro/nanoparticles in fluids. This study presents acoustofluidic black holes (AFBHs) that leverage controlled interactions between AFBH-trapped acoustic wave energy and particles in droplets to enable versatile particle manipulation functionalities, such as translation, concentration, and patterning of particles. We investigated the AFBH-enabled wave energy trapping and wavelength shrinking effects, as well as the trapped wave energy-induced acoustic radiation forces on particles and acoustic streaming in droplets. This study not only fills the gap between the emerging fields of acoustofluidics and acoustic black holes but also leads to a class of AFBH-based in-droplet particle manipulation toolsets with great potential for many applications, such as biosensing, point-of-care testing, and drug screening.

摘要

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