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水的扩散是通过氢键跳跃交换机制进行的。

Water Diffusion Proceeds via a Hydrogen-Bond Jump Exchange Mechanism.

机构信息

PASTEUR, Department of Chemistry, École normale supérieure, PSL University, Sorbonne Université, CNRS, 75005 Paris, France.

Department of Chemistry, University of Kansas, Lawrence, Kansas 66045, United States.

出版信息

J Phys Chem Lett. 2022 Jun 2;13(21):4660-4666. doi: 10.1021/acs.jpclett.2c00825. Epub 2022 May 23.

Abstract

The self-diffusion of water molecules plays a key part in a broad range of essential processes in biochemistry, medical imaging, material science, and engineering. However, its molecular mechanism and the role played by the water hydrogen-bond network rearrangements are not known. Here we combine molecular dynamics simulations and analytic modeling to determine the molecular mechanism of water diffusion. We establish a quantitative connection between the water diffusion coefficient and hydrogen-bond jump exchanges, and identify the features that determine the underlying energetic barrier. We thus provide a unified framework to understand the coupling between translational, rotational, and hydrogen-bond dynamics in liquid water. It explains why these different dynamics do not necessarily exhibit identical temperature dependences although they all result from the same hydrogen-bond exchange events. The consequences for the understanding of water diffusion in supercooled conditions and for water transport in complex aqueous systems, including ionic, biological, and confined solutions, are discussed.

摘要

水分子的自扩散在生物化学、医学成像、材料科学和工程等广泛的重要过程中起着关键作用。然而,其分子机制以及水氢键网络重排所起的作用尚不清楚。在这里,我们结合分子动力学模拟和分析建模来确定水扩散的分子机制。我们在水的扩散系数和氢键跳跃交换之间建立了定量联系,并确定了决定潜在能量障碍的特征。因此,我们提供了一个统一的框架来理解液体水中的平动、转动和氢键动力学之间的耦合。这解释了为什么尽管所有这些动力学都来自相同的氢键交换事件,但它们并不一定表现出相同的温度依赖性。我们还讨论了该研究结果对过冷条件下水扩散以及包括离子、生物和受限溶液在内的复杂水相体系中水分子输运的理解的意义。

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