Biomedical Engineering, School of Engineering , University of Glasgow , Glasgow G12 8LT , United Kingdom.
Université de Bordeaux, CNRS, Centre de Recherche Paul Pascal , Unité Mixte de Recherche 5031 , Pessac 33600 , France.
Anal Chem. 2019 Nov 5;91(21):13978-13985. doi: 10.1021/acs.analchem.9b03521. Epub 2019 Oct 11.
We present an acoustofluidic device for fluorescently triggered merging of surfactant-stabilized picoliter droplet pairs at high throughput. Droplets that exceed a preset fluorescence threshold level are selectively merged by a traveling surface acoustic wave (T-SAW) pulse. We characterize the operation of our device by analyzing the merging efficiency as a function of acoustic pulse position, duration, and acoustic pressure amplitude. We probe droplet merging at different droplet rates and find that efficient merging occurs above a critical acoustic power level. Our results indicate that the efficiency of acoustically induced merging of surfactant stabilized droplets is correlated with acoustic streaming velocity. Finally, we discuss how both time-averaged and instantaneous acoustic pressure fields can affect the integrity of surfactant layers. Our technique, by allowing the merging of up to 10 droplets per hour, shows great potential for integration into microfluidic systems for high-throughput and high-content screening applications.
我们提出了一种声流装置,用于以高通量对荧光触发的表面活性剂稳定的皮升级液滴对进行合并。超过预设荧光阈值水平的液滴通过行进表面声波(T-SAW)脉冲被选择性地合并。我们通过分析声脉冲位置、持续时间和声压幅度对合并效率的影响来表征我们装置的操作。我们在不同的液滴速率下探测液滴的合并,发现只有在超过临界声功率水平时才会发生有效的合并。我们的结果表明,声诱导的表面活性剂稳定液滴合并的效率与声流速度有关。最后,我们讨论了时均和瞬时声压场如何影响表面活性剂层的完整性。我们的技术,通过允许每小时合并多达 10 个液滴,显示出了在用于高通量和高内涵筛选应用的微流控系统中进行集成的巨大潜力。