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利用表面声波实现微流控按需液滴合并

Microfluidic on-demand droplet merging using surface acoustic waves.

作者信息

Sesen Muhsincan, Alan Tuncay, Neild Adrian

机构信息

Department of Mechanical and Aerospace Engineering, Monash University, Clayton, VIC 3800, Australia.

出版信息

Lab Chip. 2014 Sep 7;14(17):3325-33. doi: 10.1039/c4lc00456f.

Abstract

Individual droplets can be isolated within microfluidic systems by use of an immiscible carrier layer. This type of two phase systems, often termed "digital microfluidics", find wide ranging applications in chemical synthesis and analysis. To conduct on-chip biochemical analysis, a key step is to be able to merge droplets selectively in order to initiate the required reactions. In this paper, a novel microfluidic chip integrating interdigital transducers is designed to merge multiple droplets on-demand. The approach uses surface acoustic wave induced acoustic radiation forces to immobilize droplets as they pass from a channel into a small expansion chamber, there they can be held until successive droplets arrive. Hence, no requirement is placed on the initial spacing between droplets. When the merged volume reaches a critical size, drag forces exerted by the flowing oil phase act to overcome the retaining acoustic radiation forces, causing the merged volume to exit the chamber. This will occur after a predetermined number of droplets have merged depending on the initial droplet size and selected actuation power.

摘要

通过使用不混溶的载体层,单个液滴可以在微流控系统中被隔离。这种两相系统,通常被称为“数字微流控”,在化学合成和分析中有广泛的应用。为了进行片上生化分析,一个关键步骤是能够选择性地合并液滴以引发所需的反应。在本文中,设计了一种集成叉指换能器的新型微流控芯片,用于按需合并多个液滴。该方法利用表面声波诱导的声辐射力在液滴从通道进入小膨胀室时将其固定,在那里它们可以被保持直到后续液滴到达。因此,对液滴之间的初始间距没有要求。当合并后的体积达到临界大小时,流动油相施加的拖曳力会克服保持声辐射力,使合并后的体积离开腔室。根据初始液滴大小和选定的驱动功率,在预定数量的液滴合并后会发生这种情况。

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