Centre for Microsystems and Photonics, EEE Department, University of Strathclyde, Glasgow G1 1XW, U.K.
Anal Chem. 2021 Feb 2;93(4):2411-2418. doi: 10.1021/acs.analchem.0c04360. Epub 2021 Jan 15.
Microsystem technologies allow a plethora of operations to be achieved for microemulsion- and microdroplet-based assays, providing miniaturized, yet large-throughput capabilities to assist experimentation in analytical chemistry, biology, and synthetic biology. Many of such approaches have been implemented on-chip, using microfluidic and lab-on-a-chip technologies. However, the microfabrication of such devices relies on expensive equipment and time-consuming methods, thus hindering their uptake and use by many research laboratories where microfabrication expertise is not available. Here, we demonstrate how fundamental water-in-oil microdroplet operations, such as droplet trapping, merging, diluting, and splitting, can be obtained using straightforward, inexpensive, and manually fabricated polymeric microtube modules. The modules are based on creating an angled tubing interface at the interconnection between two polymeric microtubes. We have characterized how the geometry and fluid dynamic conditions at this interface enabled different droplet operations to be achieved in a versatile and functional manner. We envisage this approach to be an alternative solution to expensive and laborious microfabrication protocols for droplet microfluidic applications.
微系统技术允许对基于微乳液和微滴的分析进行多种操作,为分析化学、生物学和合成生物学中的实验提供微型化但高通量的功能。许多此类方法已经在芯片上实现,使用微流控和芯片实验室技术。然而,这些设备的微制造依赖于昂贵的设备和耗时的方法,因此阻碍了许多没有微制造专业知识的研究实验室采用和使用它们。在这里,我们展示了如何使用简单、廉价且手动制造的聚合物微管模块获得基本的油包水微滴操作,如液滴捕获、合并、稀释和分裂。这些模块基于在两个聚合物微管之间的连接处以一定角度创建一个管接口。我们已经描述了该接口的几何形状和流体动力学条件如何以灵活和实用的方式实现不同的液滴操作。我们设想这种方法是昂贵且费力的微制造协议的替代方案,用于液滴微流控应用。