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Influence of surface polarity on water dynamics at the water/rutile TiO_2(110) interface

机译:表面极性对水/金红石TiO_2(110)界面水动力学的影响

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We report molecular dynamics (MD) simulations of the water/clean rutile TiO_2 (110) interface using polarizable and non-surface polarity force field models. The effect of surface polarity on the water dynamics near the TiO_2(110) surface is addressed, specifically by calculating the water hydrogen bond and reorientational dynamics. The hydrogen bond lifetime of interfacial water molecules is several times longer than that of bulk water due to the strong water–TiO_2 interactions. A comparison of the dynamics simulated with the polarizable and nonsurface polarity models shows that, while the hydrogen bond lifetime between the interfacial water and TiO_2 surface is insensitive to the surface polarity, the reorientational dynamics around this hydrogen bond axis is significantly influenced by the surface polarity; the surface polarity of the TiO_2 increases the water–TiO_2 interactions, stabilizing the local structure of the interfacial water molecules and restricting their rotational motion. This reorientation occurs predominantly by rotation around the O–H group hydrogen bonded to the TiO_2 surface. Furthermore, we correlate the dynamics of the induced charge on the TiO_2 surface with the interfacial water dynamics. Our results show that the timescale of correlations of the atom charges induced by the local electric field in bulk water is influenced by the rotational motion, hydrogen bond rearrangement and translational motion, while the induced charge dynamics of the TiO_2 surface is governed primarily by the rotational dynamics of the interfacial water molecules. This study demonstrates that the solid surface polarity has a significant impact on the dynamics of water molecules near TiO_2 surfaces.
机译:我们报告使用可极化和非表面极性力场模型的水/清洁金红石TiO_2(110)界面的分子动力学(MD)模拟。解决了表面极性对TiO_2(110)表面附近水动力学的影响,特别是通过计算水氢键和方向性动力学来解决。界面水分子的氢键寿命比大量水的氢键寿命长几倍,这是由于水与TiO_2的强烈相互作用。用可极化和非表面极性模型模拟的动力学比较表明,尽管界面水和TiO_2表面之间的氢键寿命对表面极性不敏感,但围绕此氢键轴的重新定向动力学受表面极性的影响很大; TiO_2的表面极性增加了水与TiO_2的相互作用,稳定了界面水分子的局部结构并限制了其旋转运动。这种重新定向主要是通过绕键合到TiO_2表面的氢原子上的O–H基团旋转而发生的。此外,我们将TiO_2表面上感应电荷的动力学与界面水动力学相关联。我们的结果表明,散装水中局部电场感应的原子电荷相关性的时标受旋转运动,氢键重排和平移运动的影响,而TiO_2表面的感应电荷动力学主要受旋转运动的影响。界面水分子的动力学。这项研究表明,固体表面极性对TiO_2表面附近水分子的动力学有重大影响。

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