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几何纳米流体二极管中的受限控制整流

Confinement-controlled rectification in a geometric nanofluidic diode.

作者信息

Dal Cengio S, Pagonabarraga I

机构信息

Department of Condensed Matter, Universitat de Barcelona, Martí i Franqués 1, 08028 Barcelona, Spain.

出版信息

J Chem Phys. 2019 Jul 28;151(4):044707. doi: 10.1063/1.5108723.

Abstract

Recent experiments with electrolytes driven through conical nanopores give evidence of strong rectified current response. In such devices, the asymmetry in the confinement is responsible for the non-Ohmic response, suggesting that the interplay of entropic and enthalpic forces plays a major role. Here, we propose a theoretical model to shed light on the physical mechanism underlying ionic current rectification. By use of an effective description of the ionic dynamics, we explore the system's response in different electrostatic regimes. We show that the rectification efficiency, as well as the channel selectivity, is driven by the surface-to-bulk conductivity ratio Dukhin length rather than the electrical double layer overlap.

摘要

最近对通过锥形纳米孔的电解质进行的实验证明了强烈的整流电流响应。在这类装置中,限制条件的不对称性导致了非欧姆响应,这表明熵力和焓力的相互作用起着主要作用。在此,我们提出一个理论模型来阐明离子电流整流背后的物理机制。通过对离子动力学的有效描述,我们探索了系统在不同静电状态下的响应。我们表明,整流效率以及通道选择性是由表面与本体电导率之比(杜金长度)驱动的,而不是由电双层重叠驱动的。

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