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均匀二氧化硅纳米通道中通过浓度梯度的整流离子传输。

Rectified ion transport through concentration gradient in homogeneous silica nanochannels.

作者信息

Cheng Li-Jing, Guo L Jay

机构信息

Department of Electrical Engineering and Computer Science, The University of Michigan, Ann Arbor, Michigan 48109, USA.

出版信息

Nano Lett. 2007 Oct;7(10):3165-71. doi: 10.1021/nl071770c. Epub 2007 Sep 26.

Abstract

We investigate the ionic rectifying effect through 4 and 20 nm thick silica nanochannels placed between two ionic solutions of different concentrations. The effect was observed when only a single side of the channel has electric double-layer overlap. The calculation based on Poisson-Nernst-Planck (PNP) theory and a simplified model suggests that the phenomenon result from the accumulation and depletion of both cations and anions in the nanochannels responding to different bias polarities. The model also elucidates that the basis of the rectifying effects in the nanofluidic devices reported to date is due to the asymmetric cation/anion ratios or equivalently built-in potentials on the two sides of the nanochannels. The study benefits the design of nanofluidic devices for attoliter-scale chemical delivery.

摘要

我们通过置于两种不同浓度离子溶液之间的4纳米和20纳米厚的二氧化硅纳米通道研究离子整流效应。当通道仅一侧存在电双层重叠时观察到该效应。基于泊松-能斯特-普朗克(PNP)理论和简化模型的计算表明,该现象是由于纳米通道中阳离子和阴离子响应不同偏置极性而发生积累和耗尽所致。该模型还阐明,迄今为止报道的纳米流体装置中整流效应的基础是纳米通道两侧阳离子/阴离子比率不对称或等效的内置电位。这项研究有助于设计用于阿托升规模化学输送的纳米流体装置。

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