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通过线性和角动量耦合对纳米流体水进行电泵浦:理论基础与分子动力学模拟

Electropumping of nanofluidic water by linear and angular momentum coupling: theoretical foundations and molecular dynamics simulations.

作者信息

Daivis Peter J, Hansen J S, Todd B D

机构信息

School of Science, RMIT University, GPO Box 2476, Melbourne, Victoria 3001, Australia.

"Glass and Time", IMFUFA, Department of Science and Environment, Roskilde University, Roskilde 4000, Denmark.

出版信息

Phys Chem Chem Phys. 2021 Nov 17;23(44):25003-25018. doi: 10.1039/d1cp04139h.

Abstract

In this article we review the relatively new phenomenon of electropumping in nanofluidic systems, in which nonzero net flow results when polar molecules are rotated by external electric fields. The flow is a consequence of coupling of the spin angular momentum of molecules with their linear streaming momentum. By devising confining surfaces that are asymmetric - specifically one surface is more hydrophobic compared to the other - unidirectional flow results and so pumping can be achieved without the use of pressure gradients. We first cover the historical background to this phenomenon and follow that with a detailed theoretical description of the governing hydrodynamics. Following that we summarise work that has applied this phenomenon to pump water confined to planar nanochannels, semi-functionalised single carbon nanotubes and concentric carbon nanotubes. We also report on the energy efficiency of this pumping technique by comparisons with traditional flows of planar Couette and Poiseuille flow, with the surprising conclusion that electropumping at the nanoscale is some 4 orders of magnitude more efficient than pumping by Poiseuille flow.

摘要

在本文中,我们回顾了纳米流体系统中相对较新的电泵浦现象,即在外部电场作用下极性分子发生旋转时会产生非零净流。这种流动是分子的自旋角动量与其线性流动动量耦合的结果。通过设计不对称的限制表面——具体来说,一个表面比另一个表面更疏水——可以实现单向流动,从而无需使用压力梯度就能实现泵浦。我们首先介绍这一现象的历史背景,然后对其主导流体动力学进行详细的理论描述。在此之后,我们总结了将这一现象应用于泵送限制在平面纳米通道、半功能化单壁碳纳米管和同心碳纳米管中的水的相关工作。我们还通过与平面库埃特流和泊肃叶流的传统流动进行比较,报告了这种泵浦技术的能量效率,得出了令人惊讶的结论:纳米尺度下的电泵浦比泊肃叶流泵浦效率高约4个数量级。

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