
Acoustohydrodynamic tweezers via spatial arrangement of streaming vortices
Author(s) -
Haodong Zhu,
Peiran Zhang,
Zhanwei Zhong,
Jianping Xia,
Joseph Rich,
D. John,
Xingyu Su,
Zhenhua Tian,
Hunter Bachman,
Joseph Rufo,
Yuyang Gu,
Putong Kang,
Krishnendu Chakrabarty,
Thomas P. Witelski,
Tony Jun Huang
Publication year - 2021
Publication title -
science advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.928
H-Index - 146
ISSN - 2375-2548
DOI - 10.1126/sciadv.abc7885
Subject(s) - vortex , tweezers , optical tweezers , computer science , nanotechnology , acoustics , optics , physics , materials science , mechanics
Acoustics-based tweezers provide a unique toolset for contactless, label-free, and precise manipulation of bioparticles and bioanalytes. Most acoustic tweezers rely on acoustic radiation forces; however, the accompanying acoustic streaming often generates unpredictable effects due to its nonlinear nature and high sensitivity to the three-dimensional boundary conditions. Here, we demonstrate acoustohydrodynamic tweezers, which generate stable, symmetric pairs of vortices to create hydrodynamic traps for object manipulation. These stable vortices enable predictable control of a flow field, which translates into controlled motion of droplets or particles on the operating surface. We built a programmable droplet-handling platform to demonstrate the basic functions of planar-omnidirectional droplet transport, merging droplets, and in situ mixing via a sequential cascade of biochemical reactions. Our acoustohydrodynamic tweezers enables improved control of acoustic streaming and demonstrates a previously unidentified method for contact-free manipulation of bioanalytes and digitalized liquid handling based on a compact and scalable functional unit.