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Mg(0001)/水界面的结构与相互作用:一项从头算研究。

Structure and interactions at the Mg(0001)/water interface: An ab initio study.

作者信息

Fogarty R M, Li B X, Harrison N M, Horsfield A P

机构信息

Department of Materials and Thomas Young Centre, Imperial College London, South Kensington Campus, London SW7 2AZ, United Kingdom.

出版信息

J Chem Phys. 2022 Jun 28;156(24):244702. doi: 10.1063/5.0093562.

Abstract

A molecular level understanding of metal/bulk water interface structure is key for a wide range of processes, including aqueous corrosion, which is our focus, but their buried nature makes experimental investigation difficult and we must mainly rely on simulations. We investigate the Mg(0001)/water interface using second generation Car-Parrinello molecular dynamics (MD) to gain structural information, combined with static density functional theory calculations to probe the atomic interactions and electronic structure (e.g., calculating the potential of zero charge). By performing detailed structural analyses of both metal-surface atoms and the near-surface water, we find that, among other insights: (i) water adsorption causes significant surface roughening (the planar distribution for top-layer Mg has two peaks separated by ≈0.6Å), (ii) strongly adsorbed water covers only ≈14 of available surface sites, and (iii) adsorbed water avoids clustering on the surface. Static calculations are used to gain a deeper understanding of the structuring observed in MD. For example, we use an energy decomposition analysis combined with calculated atomic charges to show that adsorbate clustering is unfavorable due to Coulombic repulsion between adsorption site surface atoms. Results are discussed in the context of previous simulations carried out on other metal/water interfaces. The largest differences for the Mg(0001)/water system appear to be the high degree of surface distortion and the minimal difference between the metal work function and metal/water potential of zero charge (at least compared to other interfaces with similar metal-water interaction strengths). The structural information, in this paper, is important for understanding aqueous Mg corrosion, as the Mg(0001)/water interface is the starting point for key reactions. Furthermore, our focus on understanding the driving forces behind this structuring leads to important insights for general metal/water interfaces.

摘要

从分子层面理解金属/大量水的界面结构是许多过程的关键,包括我们所关注的水相腐蚀,但它们的隐蔽性质使得实验研究困难重重,我们主要依赖模拟。我们使用第二代Car-Parrinello分子动力学(MD)研究Mg(0001)/水界面以获取结构信息,并结合静态密度泛函理论计算来探究原子间相互作用和电子结构(例如,计算零电荷电势)。通过对金属表面原子和近表面水进行详细的结构分析,我们发现,除其他见解外:(i)水吸附会导致显著的表面粗糙度增加(顶层Mg的平面分布有两个相隔约0.6Å的峰),(ii)强吸附水仅覆盖约1/4的可用表面位点,以及(iii)吸附水避免在表面聚集。使用静态计算来更深入地理解MD中观察到的结构。例如,我们使用能量分解分析并结合计算出的原子电荷,以表明由于吸附位点表面原子之间的库仑排斥,吸附质聚集是不利的。结果在先前对其他金属/水界面进行的模拟背景下进行了讨论。Mg(0001)/水体系的最大差异似乎在于高度的表面畸变以及金属功函数与金属/水零电荷电势之间的最小差异(至少与具有相似金属 - 水相互作用强度的其他界面相比)。本文中的结构信息对于理解镁的水相腐蚀很重要,因为Mg(0001)/水界面是关键反应的起点。此外,我们对理解这种结构背后驱动力的关注为一般金属/水界面带来了重要见解。

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