4.5 Article

Influence of surface polarity on water dynamics at the water/rutile TiO2(110) interface

Journal

JOURNAL OF PHYSICS-CONDENSED MATTER
Volume 26, Issue 24, Pages -

Publisher

IOP PUBLISHING LTD
DOI: 10.1088/0953-8984/26/24/244102

Keywords

titanium dioxide; liquid/solid interface; interfacial water dynamics; charge response kernel; surface polarity

Funding

  1. Scientific Research on Innovative Areas, a MEXT [25104724]
  2. Japan Society for the Promotion of Science
  3. Grants-in-Aid for Scientific Research [25110009, 26104522, 25104724] Funding Source: KAKEN

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We report molecular dynamics (MD) simulations of the water/clean rutile TiO2 (110) interface using polarizable and non-surface polarity force field models. The effect of surface polarity on the water dynamics near the TiO2(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-TiO2 interactions. A comparison of the dynamics simulated with the polarizable and non-surface polarity models shows that, while the hydrogen bond lifetime between the interfacial water and TiO2 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 TiO2 increases the water-TiO2 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 TiO2 surface. Furthermore, we correlate the dynamics of the induced charge on the TiO2 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 TiO2 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 TiO2 surfaces.

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