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Molecular structure, dynamics and adsorption behavior of water molecules and ions on [0 1 0] surface of γ-FeOOH: A molecular dynamics approach

机译:γ-FeOOH[0 1 0]表面上水分子和离子的分子结构,动力学和吸附行为:一种分子动力学方法

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The interaction between chloride ions and passivate film of steel bars determines the corrosion resistance of iron materials. In this study, the molecular structure, dynamics properties and adsorption behavior of water molecules and ions on passivate film surface is systematically investigated by molecular dynamics simulation method. This interfacial model is constructed for NaCl solution with 1.5 mol/L near the gamma-FeOOH [0 1 0] surface. The FeO6 octahedron, exhibiting strong hydrophilic nature within the surface, provides a large amounts of oxygen sites to form H-bonds with the neighboring water molecules. The surface water molecules, distributed in the first adsorbed layer, not only show a comparably high magnitude of dipole moment but also tend to develop an H-down orientation with respect to the gamma-FeOOH substrate. Solid oxygen and hydrogen atoms in the gamma-FeOOH substrate, which replace the surrounding water molecules, change the hydration structure of ions and the adsorbed ions mobility. Furthermore, the sodium and chloride ions can be adsorbed by the iron hydroxyl surface in different ways. On the one hand, by forming Na-O bond with solid oxygen in the iron hydroxyl, the sodium ions can penetrate into the vacancy areas between the neighboring FeO6 octahedrons. On the other hand, chloride ions form H-bonds with the neighboring Fe-OH groups and associate with sodium ions on the surface to form the cation-anion ionic pairs. Both H-bond connection and the cation-anion ionic pairs restrict the chloride ions in the gamma-FeOOH substrate. Additionally, due to the attraction of the solid substrate, the diffusion coefficient of solution species within the surface dramatically decrease by 70% and the resident time of water and ions in the vicinity of gamma-FeOOH substrate is elongated more than twice as compared with that in bulk solution. Hopefully, this paper can provide valuable insights and interpret the corrosion mechanism of iron materials at the molecular level. (C) 2019 Elsevier Ltd. All rights reserved.
机译:氯离子与钢筋钝化膜之间的相互作用决定了铁材料的耐腐蚀性。通过分子动力学模拟方法,系统研究了水分子和离子在钝化膜表面的分子结构,动力学性质和吸附行为。该界面模型是针对在γ-FeOOH[0 1 0]表面附近具有1.5 mol / L的NaCl溶液构建的。 FeO6八面体在表面内表现出很强的亲水性,可提供大量的氧位,与相邻的水分子形成H键。分布在第一吸附层中的表面水分子不仅表现出相当高的偶极矩量,而且还趋于相对于γ-FeOOH底物形成H向下取向。 γ-FeOOH基质中的固体氧和氢原子取代了周围的水分子,改变了离子的水合结构和吸附的离子迁移率。此外,钠和氯离子可以不同的方式被羟基铁表面吸附。一方面,通过与铁羟基中的固体氧形成Na-O键,钠离子可以渗入相邻的FeO6八面体之间的空位区域。另一方面,氯离子与相邻的Fe-OH基形成氢键,并与表面的钠离子缔合,形成阳离子-阴离子对。 H键连接和阳离子阴离子离子对都限制了γ-FeOOH底物中的氯离子。另外,由于固体基质的吸引,溶液种类在表面内的扩散系数急剧降低了70%,并且水和离子在γ-FeOOH基质附近的停留时间是其的两倍以上。在批量解决方案中。希望本文可以提供有价值的见解,并在分子水平上解释铁材料的腐蚀机理。 (C)2019 Elsevier Ltd.保留所有权利。

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