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Fabrication and Analysis of Spatially Uniform Field Electrokinetic Flow Devices: Theory and Experiment

机译:空间均匀场电动流动装置的制造与分析:理论与实验

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摘要

A uniform-field design approach can improve the performance of microanalytical, chip-based devices for a number of applications, including separations and sample preparation. The faceted prism paradigm allows the design of microfluidic devices possessing spatially uniform fields in electrokinetically driven flows. We present the first quantitative study of the velocity fields obtained using faceted interfaces between deep and shallow channel sections. Electrokinetic flows were generated in a series of wet-etch fabricated microfluidic channels. The resulting velocity fields were analyzed by particle image velocimetry and compared with simulations of the two-dimensional Laplace equation using both the designed channel geometry and the as-fabricated channel geometry. This analysis found localized differences between the designed and observed flow fields that were directly attributable to the limitations of isotropic substrate etching. Simulations using the as-fabricated channel geometry reproduced the experimental electrokinetic velocity field, quantitatively accounting for speed field variations due to the limits of the fabrication method. The electrokinetic speed fields were also compared to corresponding pressure-driven speed fields.
机译:均匀场设计方法可以提高微分析,基于芯片的设备在许多应用中的性能,包括分离和样品制备。多面棱镜范例允许设计在电动驱动流中具有空间均匀场的微流体装置。我们提出了对使用深,浅通道段之间的多面界面获得的速度场的首次定量研究。在一系列湿蚀刻制造的微流体通道中产生电动流。通过粒子图像测速仪分析了所得的速度场,并使用设计的通道几何形状和预制的通道几何形状与二维拉普拉斯方程进行了仿真比较。该分析发现设计流场与观察到的流场之间存在局部差异,这直接归因于各向同性基板蚀刻的局限性。使用所制造的通道几何形状进行的模拟再现了实验性的电动速度场,定量地说明了由于制造方法的限制而导致的速度场变化。还将电动速度场与相应的压力驱动速度场进行了比较。

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