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表面电荷调节对流体纳米通道中电导率的影响。

The effect of surface charge regulation on conductivity in fluidic nanochannels.

机构信息

Department of Chemical and Nuclear Engineering, University of New Mexico, Albuquerque, NM 87131, United States.

Department of Chemical and Nuclear Engineering, University of New Mexico, Albuquerque, NM 87131, United States; Sandia National Laboratories, P.O. Box 5800, Albuquerque, NM 87185, United States.

出版信息

J Colloid Interface Sci. 2014 Feb 15;416:105-11. doi: 10.1016/j.jcis.2013.10.051. Epub 2013 Nov 9.

Abstract

The precise electrostatic potential distribution is very important for the electrokinetic transport in fluidic channels. This is especially valid for small nanochannels where the electric double layers formed at the walls are comparable to the channel width. It can be expected that due to the large surface to volume ratio in such systems, they will exhibit properties that are not detectable in larger channels, capillaries and pores. We present a detailed numerical analysis of the current transport in fluidic nanochannels. It is based on solving the Poisson-Boltzmann equation with charge regulation boundary conditions that account for the surface-aqueous solution chemical equilibria. The focus is on studying the effect of the pH on the current transport. The pH is varied by adding either HCl or KOH. The analysis predicts non-monotonous and sometimes counterintuitive dependence of the conductivity on the pH. The channel conductivity exhibits practically no change over a range of pH values due to a buffering exerted by the chemical groups at the walls. An unexpected drop of the conductivity is observed around the wall isoelectric point and also in the vicinity of pH=7 even though the concentration of ions in the channel increases. These observations are explained in the framework of charge regulation theory.

摘要

精确的静电势分布对于流体通道中的电动输运非常重要。这对于小的纳米通道尤其有效,因为在壁上形成的双电层与通道宽度相当。可以预期,由于此类系统的表面积与体积比很大,它们将表现出在较大通道、毛细管和孔隙中无法检测到的性质。我们对流体纳米通道中的电流输运进行了详细的数值分析。它基于求解泊松-玻尔兹曼方程,并采用考虑表面-水溶液化学平衡的电荷调节边界条件。重点研究 pH 值对电流输运的影响。通过添加 HCl 或 KOH 来改变 pH 值。分析预测了电导率随 pH 值的非单调和有时违反直觉的依赖性。由于壁上的化学基团的缓冲作用,通道电导率在 pH 值范围内几乎没有变化。在壁等电点附近以及在 pH=7 附近观察到电导率的意外下降,尽管通道中的离子浓度增加。这些观察结果在电荷调节理论的框架内得到了解释。

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