微尺度化学
微流控
生物芯片
材料科学
弹道
声学
粒子(生态学)
声流
计算机科学
纳米技术
生物系统
行波
物理
超声波传感器
数学分析
数学教育
地质学
海洋学
生物
数学
天文
作者
Xiaolong Lu,Fernando Soto,Jinxing Li,Tianlong Li,Yuyan Liang,Joseph Wang
标识
DOI:10.1021/acsami.7b15237
摘要
Precise and reproducible manipulation of synthetic and biological microscale objects in complex environments is essential for many practical biochip and microfluidic applications. Here, we present an attractive acoustic topographical manipulation (ATM) method to achieve efficient and reproducible manipulation of diverse microscale objects. This new guidance method relies on the acoustically induced localized microstreaming forces generated around microstructures, which are capable of trapping nearby microobjects and manipulating them along a determined trajectory based on local topographic features. This unique phenomenon is investigated by numerical simulations examining the local microstreaming in the presence of microscale boundaries under the standing acoustic wave. This method can be used to manipulate a single microobject around a complex structure as well as collectively manipulate multiple objects moving synchronously along complicated shapes. Furthermore, the ATM can serve for automated maze solving by autonomously manipulating microparticles with diverse geometries and densities, including live cells, through complex maze-like topographical features without external feedback, particle modification, or adjustment of operational parameters.
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