微流控
传感器
材料科学
测距
纳米技术
声学
声波
气泡
压电
计算机科学
物理
电信
并行计算
作者
Xiaoming Liu,Yuyang Li,Fengyu Liu,Qing Shi,Lixin Dong,Qiang Huang,Tatsuo Arai,Toshio Fukuda
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2025-03-28
卷期号:11 (13)
标识
DOI:10.1126/sciadv.ads8167
摘要
Micromanipulation is crucial for operating and analyzing microobjects in advanced biomedical applications. However, safe, low-cost, multifunctional micromanipulation for operating bio-objects across scales and modalities remains inaccessible. Here, we propose a versatile micromanipulation method driven by acoustic gas-liquid-solid interactions, named μSonic-hand. The bubble contained at the end of a micropipette and the surrounding liquid form a gas-liquid multiphase system susceptible to acoustic waves. Driven by a piezoelectric transducer, the oscillating gas-liquid interface induces acoustic microstreaming, markedly increasing the mass transfer efficiency. It enables multiple liquid micromanipulations, including mixing, dispersion, enhancing cell membrane permeability, and harvesting selected cells. Furthermore, a controllable three-dimensional axisymmetric vortex in an open environment overcomes the constraints of microfluidic chip, enabling stable trapping, rapid transportation, and multidirectional rotation of HeLa cells, embryos, and other bio-objects ranging from micrometers to millimeters. A variety of applications demonstrate that the μSonic-hand, with its wide-range capabilities, inherent biocompatibility, and extremely low cost could remarkably advance biomedical science.
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