Faculty of Engineering and the Environment, University of Southampton, Southampton, SO17 1BJ UK.
Lab Chip. 2017 Mar 14;17(6):1149-1157. doi: 10.1039/c6lc01479h.
Droplet microfluidics has recently emerged as a new engineering tool for biochemical analysis of small sample volumes. Droplet generation is most commonly achieved by introducing aqueous and oil phases into a T-junction or a flow focusing channel geometry. This method produces droplets that are sensitive to changes in flow conditions and fluid composition. Here, we present an alternative approach using a simple peristaltic micropump to deliver the aqueous and oil phases in antiphase pulses resulting in a robust "chopping"-like method of droplet generation. This method offers controllable droplet dynamics, with droplet volumes solely determined by the pump design, and is insensitive to liquid properties and flow rates. Importantly, sequences of droplets with controlled composition can be hardcoded into the pump, allowing chemical operations such as titrations and dilutions to be easily achieved. The push-pull pump is compact and can continuously collect samples, generating droplets close to the sampling site and with short stabilisation time. We envisage that this robust droplet generation method is highly suited for continuous in situ sampling and chemical measurement, allowing droplet microfluidics to step out of the lab and into field-deployable applications.
液滴微流控技术最近成为了一种生化分析小体积样本的新工程工具。液滴的生成通常通过将水相和油相引入 T 型接头或流聚焦通道几何结构来实现。这种方法产生的液滴对流动条件和流体组成的变化很敏感。在这里,我们提出了一种使用简单的蠕动微泵的替代方法,该方法以相反相位脉冲输送水相和油相,从而产生一种稳健的“切割”式液滴生成方法。该方法提供了可控的液滴动力学,液滴体积仅由泵的设计决定,并且对液体性质和流速不敏感。重要的是,可以将具有受控组成的液滴序列硬编码到泵中,从而可以轻松实现诸如滴定和稀释等化学操作。推挽泵紧凑,可以连续采集样品,在靠近采样点的位置生成液滴,并具有较短的稳定时间。我们设想这种稳健的液滴生成方法非常适合连续的原位采样和化学测量,使液滴微流控技术能够走出实验室,应用于现场部署的应用中。