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纳米尺度孔隙中离子库仑阻塞的表面效应。

Surface effects on ionic Coulomb blockade in nanometer-size pores.

机构信息

Toyota Central Research & Development Labs. Inc., Nagakute, Aichi 480 1192, Japan.

出版信息

Nanotechnology. 2018 Jan 12;29(2):025703. doi: 10.1088/1361-6528/aa9a14.

Abstract

Ionic Coulomb blockade in nanopores is a phenomenon that shares some similarities but also differences with its electronic counterpart. Here, we investigate this phenomenon extensively using all-atom molecular dynamics of ionic transport through nanopores of about one nanometer in diameter and up to several nanometers in length. Our goal is to better understand the role of atomic roughness and structure of the pore walls in the ionic Coulomb blockade. Our numerical results reveal the following general trends. First, the nanopore selectivity changes with its diameter, and the nanopore position in the membrane influences the current strength. Second, the ionic transport through the nanopore takes place in a hopping-like fashion over a set of discretized states caused by local electric fields due to membrane atoms. In some cases, this creates a slow-varying 'crystal-like' structure of ions inside the nanopore. Third, while at a given voltage, the resistance of the nanopore depends on its length, the slope of this dependence appears to be independent of the molarity of ions. An effective kinetic model that captures the ionic Coulomb blockade behavior observed in MD simulations is formulated.

摘要

离子库仑阻塞在纳米孔中是一种现象,它与电子学中的库仑阻塞有一些相似之处,但也有一些不同。在这里,我们使用大约 1 纳米直径和长达数纳米的纳米孔的全原子分子动力学,广泛地研究了这种现象。我们的目标是更好地了解原子粗糙度和孔壁结构在离子库仑阻塞中的作用。我们的数值结果揭示了以下一般趋势。首先,纳米孔的选择性随其直径而变化,并且纳米孔在膜中的位置会影响电流强度。其次,离子通过纳米孔的传输以跳跃的方式发生,这是由于膜原子引起的局部电场导致的一系列离散化状态。在某些情况下,这会在纳米孔内形成缓慢变化的“类似晶体”结构的离子。第三,虽然在给定的电压下,纳米孔的电阻取决于其长度,但这种依赖性的斜率似乎与离子的摩尔浓度无关。提出了一个有效的动力学模型,该模型捕获了 MD 模拟中观察到的离子库仑阻塞行为。

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