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从头算分子动力学研究电场下水的解离。

Ab initio molecular dynamics study of dissociation of water under an electric field.

机构信息

IMPMC, CNRS-UMR 7590, Université P & M Curie, 75252 Paris, France.

出版信息

Phys Rev Lett. 2012 May 18;108(20):207801. doi: 10.1103/PhysRevLett.108.207801. Epub 2012 May 15.

Abstract

The behavior of liquid water under an electric field is a crucial phenomenon in science and engineering. However, its detailed description at a microscopic level is difficult to achieve experimentally. Here we report on the first ab initio molecular-dynamics study on water under an electric field. We observe that the hydrogen-bond length and the molecular orientation are significantly modified at low-to-moderate field intensities. Fields beyond a threshold of about 0.35  V/Å are able to dissociate molecules and sustain an ionic current via a series of correlated proton jumps. Upon applying even more intense fields (∼1.0  V/Å), a 15%-20% fraction of molecules are instantaneously dissociated and the resulting ionic flow yields a conductance of about 7.8  Ω-1 cm-1, in good agreement with experimental values. This result paves the way to quantum-accurate microscopic studies of the effect of electric fields on aqueous solutions and, thus, to massive applications of ab initio molecular dynamics in neurobiology, electrochemistry, and hydrogen economy.

摘要

电场下液态水的行为是科学和工程中的一个关键现象。然而,在微观水平上对其进行详细描述在实验上很难实现。在这里,我们报告了第一个关于电场下水的从头算分子动力学研究。我们观察到,在低至中等场强下,氢键长度和分子取向会发生显著变化。场强超过约 0.35 V/Å 的阈值时,通过一系列相关的质子跳跃能够使分子解离并维持离子电流。当施加更强的场(约 1.0 V/Å)时,有 15%-20%的分子会立即解离,由此产生的离子流产生约 7.8 Ω-1 cm-1 的电导率,与实验值吻合良好。这一结果为电场对水溶液影响的量子精确微观研究铺平了道路,从而使从头算分子动力学在神经生物学、电化学和氢能经济中有了广泛的应用。

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