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聚二甲基硅氧烷微流控器件中除气驱动流动的系统特性描述。

Systematic characterization of degas-driven flow for poly(dimethylsiloxane) microfluidic devices.

出版信息

Biomicrofluidics. 2011 Jun;5(2):24108. doi: 10.1063/1.3584003. Epub 2011 Jun 2.

DOI:10.1063/1.3584003
PMID:21716807
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3124517/
Abstract

Degas-driven flow is a novel phenomenon used to propel fluids in poly(dimethylsiloxane) (PDMS)-based microfluidic devices without requiring any external power. This method takes advantage of the inherently high porosity and air solubility of PDMS by removing air molecules from the bulk PDMS before initiating the flow. The dynamics of degas-driven flow are dependent on the channel and device geometries and are highly sensitive to temporal parameters. These dependencies have not been fully characterized, hindering broad use of degas-driven flow as a microfluidic pumping mechanism. Here, we characterize, for the first time, the effect of various parameters on the dynamics of degas-driven flow, including channel geometry, PDMS thickness, PDMS exposure area, vacuum degassing time, and idle time at atmospheric pressure before loading. We investigate the effect of these parameters on flow velocity as well as channel fill time for the degas-driven flow process. Using our devices, we achieved reproducible flow with a standard deviation of less than 8% for flow velocity, as well as maximum flow rates of up to 3 nL∕s and mean flow rates of approximately 1-1.5 nL∕s. Parameters such as channel surface area and PDMS chip exposure area were found to have negligible impact on degas-driven flow dynamics, whereas channel cross-sectional area, degas time, PDMS thickness, and idle time were found to have a larger impact. In addition, we develop a physical model that can predict mean flow velocities within 6% of experimental values and can be used as a tool for future design of PDMS-based microfluidic devices that utilize degas-driven flow.

摘要

推注式驱替是一种新颖的现象,用于在不依赖任何外部动力的情况下推动聚二甲基硅氧烷(PDMS)基微流控装置中的流体。这种方法利用 PDMS 固有地高孔隙率和空气溶解度,在开始流动之前从大块 PDMS 中去除空气分子。推注式驱替的动力学取决于通道和器件的几何形状,并且对时间参数高度敏感。这些依赖性尚未得到充分表征,这阻碍了推注式驱替作为微流控泵送机制的广泛应用。在这里,我们首次对各种参数对推注式驱替流动动力学的影响进行了表征,包括通道几何形状、PDMS 厚度、PDMS 暴露面积、真空脱气时间以及在加载前在大气压下的空闲时间。我们研究了这些参数对驱替流动过程中流速以及通道填充时间的影响。使用我们的设备,我们实现了流速标准偏差小于 8%的可重复流动,最大流速高达 3 nL∕s,平均流速约为 1-1.5 nL∕s。发现诸如通道表面积和 PDMS 芯片暴露面积等参数对推注式驱替流动动力学几乎没有影响,而通道横截面积、脱气时间、PDMS 厚度和空闲时间则具有更大的影响。此外,我们开发了一种物理模型,该模型可以预测平均流速,误差在 6%以内,可用于未来设计利用推注式驱替的 PDMS 基微流控器件。