...
首页> 外文期刊>Analytical chemistry >Electrokinetic Transport in Nanochannels. 2. Experiments
【24h】

Electrokinetic Transport in Nanochannels. 2. Experiments

机译:纳米通道中的电动传输。 2.实验

获取原文
获取原文并翻译 | 示例
           

摘要

We present an experimental study of nanoscale electrokinetic transport in custom-fabricated quartz nanochan-nels using quantitative epifluorescence imaging and current monitoring techniques. One aim is to yield insight into electrical double layer physics and study the applicability of continuum theory to nanoscale electrokinetic systems. A second aim is to explore a new separation modality offered by nanoscale electrophoretic separations. We perform parametric variations of applied electric field, channel depth, background buffer concentration, and species valence to impose variations on zeta potential, effective mobility, and Debye length among other parameters. These measurements were used to validate a continuum theory-based analytical model presented in the first of this two-paper series. Our results confirm the usefulness of continuum theory in predicting electrokinetic transport and electrophoretic separations in nano-channels. Our model leverages independent measurements of zeta potential performed in a microchannel system at electrolyte concentrations of interest. These data yield a zeta potential versus concentration relation that is used as a boundary condition for the nanochannel electrokinetic transport model. The data and model comparisons together show that the effective mobility governing electrophoretic transport of charged species in nanochannels depends not only on ion mobility values but also on the shape of the electric double layer and analyte ion valence. We demonstrate a method we term electrokinetic separation by ion valence, whereby both ion valence and mobility may be determined independently from a comparison of micro- and nanoscale transport measurements.
机译:我们提出了使用定量落射荧光成像和电流监测技术在定制石英纳米通道中进行纳米级电动迁移的实验研究。一个目标是深入了解双电层物理学,研究连续谱理论在纳米级电动系统中的适用性。第二个目的是探索纳米级电泳分离提供的新分离方式。我们对施加的电场,通道深度,背景缓冲液浓度和物种化合价进行参数化更改,以在zeta电位,有效迁移率和Debye长度等其他参数上施加变化。这些测量值用于验证在两篇论文系列的第一篇中介绍的基于连续论的分析模型。我们的结果证实了连续谱理论在预测纳米通道中的电动迁移和电泳分离中的作用。我们的模型利用了微通道系统中感兴趣的电解质浓度下zeta电位的独立测量值。这些数据产生了ζ电势与浓度的关系,其被用作纳米通道电动迁移模型的边界条件。数据和模型比较在一起表明,控制纳米通道中带电物质电泳迁移的有效迁移率不仅取决于离子迁移率值,还取决于双电层的形状和分析物离子价。我们展示了一种我们称为通过离子价进行电动分离的方法,其中离子价和迁移率都可以独立于微尺度和纳米尺度传输测量的比较来确定。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号