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EXPERIMENTAL STUDY OF CONCENTRATION POLARIZATION AT A MICROCHANNEL-NANOCHANNEL INTERFACE

机译:微通道-纳米通道界面浓度极化的实验研究

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Recent advances in fabrication methods allow us to study and leverage the unique flow regimes offered by nano-scale fluidic channels, [1-3] and recent work suggests that the physics of microchannelanochannel interfaces present opportunities for novel methods of sample preconcentration and analysis. [4-6] In nanochannels, channel height is of the same order of the electric double layer (EDL) thickness, leading to a decreased electrical resistance relative to the fluidic resistance of the channel. More importantly, analyte molecules undergoing electrophoresis spend a significant amount of time within EDLs. This has a profound effect on the interfaces between micro- and nanochannels. In particular, for negatively charged walls and a nanochannel in series with two microchannels, the concentration of ions (of both signs) increases on the cathodic side of the nanochannel and decreases on the anodic side. This phenomenon is called concentration polarization (CP) or the exclusion enrichment effect. [4, 5] There is a dearth of basic studies of these phenomena and the coupling of electroosmotic flow with concentration polarization. We present experimental validation of a computational model which predicts the development of concentration polarization. Furthermore, we will show preliminary results demonstrating focusing and separation of analyte anions in the cathodic side microchannel. This focusing is due to a balance of advection and electrophoretic migration. Anionic analytes focus and separate according to electrophoretic mobility.
机译:制备方法的最新进展使我们能够研究和利用纳米级流体通道提供的独特流动方式,[1-3],最新工作表明,微通道/纳米通道界面的物理性质为样品预富集和分析的新方法提供了机会。 [4-6]在纳米通道中,通道高度与双电层(EDL)厚度处于同一数量级,从而导致相对于通道的流体阻力而言,电阻降低了。更重要的是,进行电泳的分析物分子在EDL中花费了大量时间。这对微通道和纳米通道之间的界面产生了深远的影响。特别地,对于带负电的壁和与两个微通道串联的纳米通道,离子(两个符号)的浓度在纳米通道的阴极侧增加而在阳极侧降低。这种现象称为浓度极化(CP)或排斥富集效应。 [4,5]缺乏对这些现象以及电渗流与浓度极化耦合的基础研究。我们目前对预测浓度极化发展的计算模型进行实验验证。此外,我们将显示初步结果,展示在阴极侧微通道中分析物阴离子的聚焦和分离。这种聚焦是由于平流和电泳迁移之间的平衡。阴离子分析物根据电泳迁移率进行聚焦和分离。

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