Harnett Cindy K, Templeton Jeremy, Dunphy-Guzman Katherine A, Senousy Yehya M, Kanouff Michael P
University of Louisville, Louisville, Kentucky 40292, USA.
Lab Chip. 2008 Apr;8(4):565-72. doi: 10.1039/b717416k. Epub 2008 Feb 29.
Mixing chemical or biological samples with reagents for chemical analysis is one of the most time consuming operations on microfluidic platforms. This is primarily due to the low rate of diffusive transport in liquid systems. Additionally, much research has focused on detection, rather than sample preparation. In response, we describe a mixer for microfluidic sample preparation based on the electrokinetic phenomenon of induced-charge-electroosmosis (ICEO). ICEO creates microvortices within a fluidic channel by application of alternating current (AC) electric fields. The microvortices are driven by electrostatic forces acting on the ionic charge induced by the field near polarizable materials. By enabling mixing to be turned on or off within a channel of fixed volume, these electronically controlled mixers prevent sample dilution-a common problem with other strategies. A three-dimensional model based on the finite volume method was developed to calculate the electric field, fluid flow, and mass transport in a multi-species liquid. After preliminary experiments, the model was used to rapidly prototype a wide range of designs. A new microfabrication process was developed for devices with vertical sidewalls having conductive metal coatings and embedded electrodes. Mixing experiments were carried out in the devices and the results were compared to the model.
将化学或生物样品与用于化学分析的试剂混合是微流控平台上最耗时的操作之一。这主要是由于液体系统中扩散传输速率较低。此外,许多研究都集中在检测上,而非样品制备。作为回应,我们描述了一种基于感应电荷电渗(ICEO)这一电动现象的用于微流控样品制备的混合器。ICEO通过施加交流(AC)电场在流体通道内产生微涡旋。微涡旋由作用于可极化材料附近电场感应出的离子电荷上的静电力驱动。通过在固定体积的通道内实现混合的开启或关闭,这些电控混合器可防止样品稀释——这是其他策略中常见的问题。开发了一个基于有限体积法的三维模型,用于计算多组分液体中的电场、流体流动和质量传输。经过初步实验后,该模型被用于快速制作各种设计的原型。针对具有导电金属涂层和嵌入式电极的垂直侧壁器件,开发了一种新的微制造工艺。在这些器件中进行了混合实验,并将结果与模型进行了比较。