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Trapping of sub-wavelength microparticles and cells in resonant cylindrical shells.

Authors :
Lin, Qin
Zhou, Wei
Cai, Feiyan
Li, Fei
Xia, Xiangxiang
Wang, Jieqiong
Zhao, Degang
Yan, Fei
Meng, Long
Zheng, Hairong
Source :
Applied Physics Letters. 8/3/2020, Vol. 117 Issue 5, p1-5. 5p. 1 Color Photograph, 1 Black and White Photograph, 3 Graphs.
Publication Year :
2020

Abstract

Acoustic tweezers based on the focused field hold the promise of contactless manipulation of microparticles. However, acoustic diffraction severely limits the trapping strength and the minimum size of the trapped particles in conventional diffraction-limited systems. Here, we propose and demonstrate a simple cylindrical shell structure for the trapping of microparticles with a radius as small as 1/400 of the corresponding acoustic wavelength, and its trapping ability is much stronger than that of the standing wave. This mechanism is attributed to the significantly enhanced acoustic radiation force originating from the resonant excitation of low order circumferential modes intrinsically existing in the cylindrical shell, which is a highly localized field around its surfaces. Cylindrical shell-based acoustic tweezers are simple, disposable, low cost, biocompatible, and functional, which may be of interest for nano-scale manufacturing and biomedical applications such as bio-printing, cell culturing, and tissue engineering. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00036951
Volume :
117
Issue :
5
Database :
Academic Search Index
Journal :
Applied Physics Letters
Publication Type :
Academic Journal
Accession number :
145072154
Full Text :
https://doi.org/10.1063/5.0019758