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二氧化硅纳米流体通道中的电动流致电流

Electrokinetic flow-induced currents in silica nanofluidic channels.

作者信息

Choi Yong Seok, Kim Sung Jin

机构信息

School of Mechanical, Aerospace & Systems Engineering, Korea Advanced Institute of Science and Technology, Daejeon, 305-701, Republic of Korea.

出版信息

J Colloid Interface Sci. 2009 May 15;333(2):672-8. doi: 10.1016/j.jcis.2009.01.061. Epub 2009 Jan 31.

Abstract

Electrokinetic flow-induced currents inside slit-shaped silica nanochannels are investigated. The unusual features observed experimentally in silica nanochannels are described successfully using a new theoretical framework. First, a simple and reliable physicochemical boundary condition at the interface between the channel surface and the solution is suggested. It accounts for the surface conduction effect through the Stern layer and the dependence of the surface charge on the salt concentration and pH, which were commonly neglected in previous studies. Second, the proposed boundary condition is then incorporated into the traditional Poisson-Boltzmann and Nernst-Planck models to complete the self-consistent model. Model predictions are validated by comparison with experimental data. It is found that the direct numerical predictions of the concentration polarization and the induced potential or pressure field are possible, and these allow us to describe the dependence of currents on the solution properties in the nanofluidic channel more accurately than the models proposed in previous studies.

摘要

研究了狭缝形二氧化硅纳米通道内的电动流动感应电流。使用一个新的理论框架成功地描述了在二氧化硅纳米通道中实验观察到的异常特征。首先,提出了通道表面与溶液界面处简单可靠的物理化学边界条件。它考虑了通过斯特恩层的表面传导效应以及表面电荷对盐浓度和pH值的依赖性,而这些在以前的研究中通常被忽略。其次,将提出的边界条件纳入传统的泊松-玻尔兹曼和能斯特-普朗克模型,以完成自洽模型。通过与实验数据比较验证了模型预测。结果发现,可以直接对浓度极化以及感应电位或压力场进行数值预测,并且这些预测使我们能够比以前研究中提出的模型更准确地描述纳米流体通道中电流对溶液性质的依赖性。

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