Department of Chemistry, University of Kansas, Lawrence, KS 66045, USA.
Lab Chip. 2013 Jan 21;13(2):267-73. doi: 10.1039/c2lc40906b. Epub 2012 Nov 16.
In this work we have investigated the integrated diaphragm micropump as an active fluidic control approach for the on-demand generation of droplets with precisely defined size, frequency and timing. In contrast to valve-actuated devices that only modulate the flow of the dispersed phase being continuously injected, this integrated micropump allows the combination of fluidic transport and modulation to achieve active control of droplet generation. A distinct characteristic of this method compared to the valve modulated droplet formation processes is that it enables independent control of droplet generation frequency by adjusting the pumping frequency and droplet size by flow conditions. We also demonstrated the generation of complex droplet patterns through programming the pumping configurations and the application to multi-volume digital PCR for precise and quantitative detection of genetic targets. Overall, our results suggest that the pump-based droplet microfluidics provide a robust platform for programmable active droplet generation which could facilitate the development of high-performance chemical and biological assays.
在这项工作中,我们研究了集成膜片微泵作为一种主动流控方法,用于按需生成具有精确定义的大小、频率和时间的液滴。与仅调节连续注入的分散相流量的阀驱动装置相比,这种集成微泵允许将流体输送和调制相结合,以实现液滴生成的主动控制。与阀调制液滴形成过程相比,这种方法的一个显著特点是,它可以通过调节泵送频率和液滴尺寸来独立控制液滴生成频率,从而实现液滴生成频率的独立控制。我们还通过编程泵送配置演示了复杂的液滴图案的生成,并将其应用于多体积数字 PCR 中,以实现对遗传靶标的精确和定量检测。总的来说,我们的结果表明,基于泵的液滴微流控技术为可编程主动液滴生成提供了一个强大的平台,这可能有助于开发高性能的化学和生物学分析。