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荷电锥形纳米孔中浓度梯度依赖的离子电流整流。

Concentration-gradient-dependent ion current rectification in charged conical nanopores.

机构信息

State Key Laboratory of Nuclear Physics and Technology, Peking University, Beijing 100871, PR China.

出版信息

Langmuir. 2012 Jan 31;28(4):2194-9. doi: 10.1021/la203837q. Epub 2011 Dec 16.

Abstract

Ion current rectification (ICR) in negatively charged conical nanopores is shown to be controlled by the electrolyte concentration gradient depending on the direction of ion diffusion. The degree of ICR is enhanced with the increasing forward concentration difference. An unusual rectification inversion is observed when the concentration gradient is reversely applied. A numerical simulation based on the coupled Poisson and Nernst-Planck (PNP) equations is proposed to solve the ion distribution and ionic flux in the charged and structurally asymmetric nanofluidic channel with diffusive ion flow. Simulation results qualitatively describe the diffusion-induced ICR behavior in conical nanopores suggested by the experimental data. The concentration-gradient-dependent ICR enhancement and inversion is attributed to the cooperation and competition between geometry-induced asymmetric ion transport and the diffusive ion flow. The present study improves our understanding of the ICR in asymmetric nanofluidic channels associated with the ion concentration difference and provides insight into the rectifying biological ion channels.

摘要

带负电的圆锥形纳米孔中的离子电流整流(ICR)被证明取决于离子扩散方向的电解质浓度梯度的控制。随着正向浓度差的增加,ICR 的程度增强。当浓度梯度反向施加时,观察到异常的整流反转。提出了一种基于耦合泊松和能斯特-普朗克(PNP)方程的数值模拟,以解决具有扩散离子流的带电和结构不对称纳米流体通道中的离子分布和离子通量。模拟结果定性地描述了实验数据所建议的圆锥形纳米孔中扩散诱导的 ICR 行为。浓度梯度依赖性的 ICR 增强和反转归因于几何诱导的不对称离子输运与扩散离子流之间的合作和竞争。本研究提高了我们对与离子浓度差相关的不对称纳米流体通道中 ICR 的理解,并为整流生物离子通道提供了深入的了解。

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