Bringer Michelle R, Gerdts Cory J, Song Helen, Tice Joshua D, Ismagilov Rustem F
Department of Chemistry, The University of Chicago, 5735 S. Ellis Avenue, Chicago, IL 60637, USA.
Philos Trans A Math Phys Eng Sci. 2004 May 15;362(1818):1087-104. doi: 10.1098/rsta.2003.1364.
This paper reviews work on a microfluidic system that relies on chaotic advection to rapidly mix multiple reagents isolated in droplets (plugs). Using a combination of turns and straight sections, winding microfluidic channels create unsteady fluid flows that rapidly mix the multiple reagents contained within plugs. The scaling of mixing for a range of channel widths, flow velocities and diffusion coefficients has been investigated. Due to rapid mixing, low sample consumption and transport of reagents with no dispersion, the system is particularly appropriate for chemical kinetics and biochemical assays. The mixing occurs by chaotic advection and is rapid (sub-millisecond), allowing for an accurate description of fast reaction kinetics. In addition, mixing has been characterized and explicitly incorporated into the kinetic model.
本文综述了一种微流控系统的相关工作,该系统依靠混沌平流来快速混合隔离在液滴(栓塞)中的多种试剂。通过转弯和直通道的组合,蜿蜒的微流控通道产生不稳定的流体流动,从而快速混合栓塞内包含的多种试剂。研究了一系列通道宽度、流速和扩散系数下混合的尺度效应。由于混合速度快、样品消耗低且试剂传输无扩散,该系统特别适用于化学动力学和生化分析。混合通过混沌平流发生且速度很快(亚毫秒级),能够准确描述快速反应动力学。此外,混合已得到表征并明确纳入动力学模型。