Paik Phil, Pamula Vamsee K, Pollack Michael G, Fair Richard B
Department of Electrical Engineering, Duke University, Durham, North Carolina 27708, USA.
Lab Chip. 2003 Feb;3(1):28-33. doi: 10.1039/b210825a. Epub 2003 Feb 3.
Mixing of analytes and reagents is a critical step in realizing a lab-on-a-chip. However, mixing of liquids is very difficult in continuous flow microfluidics due to laminar flow conditions. An alternative mixing strategy is presented based on the discretization of liquids into droplets and further manipulation of those droplets by electrowetting. The interfacial tensions of the droplets are controlled with the application of voltage. The droplets act as virtual mixing chambers, and mixing occurs by transporting the droplet across an electrode array. We also present an improved method for visualization of mixing where the top and side views of mixing are simultaneously observed. Microliters of liquid droplets are mixed in less than five seconds, which is an order of magnitude improvement in reported mixing times of droplets. Flow reversibility hinders the process of mixing during linear droplet motion. This mixing process is not physically confined and can be dynamically reconfigured to any location on the chip to improve the throughput of the lab-on-a-chip.
分析物与试剂的混合是实现芯片实验室的关键步骤。然而,由于层流条件,在连续流微流体中液体的混合非常困难。本文提出了一种基于将液体离散化为液滴并通过电润湿对这些液滴进行进一步操控的替代混合策略。通过施加电压来控制液滴的界面张力。液滴充当虚拟混合腔,通过将液滴传输穿过电极阵列来实现混合。我们还提出了一种改进的混合可视化方法,可同时观察混合的顶视图和侧视图。微升体积的液滴在不到五秒的时间内完成混合,这比已报道的液滴混合时间提高了一个数量级。流动可逆性会阻碍线性液滴运动过程中的混合进程。这种混合过程不受物理限制,可以动态重新配置到芯片上的任何位置,以提高芯片实验室的通量。