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      Free energy of proton transfer at the water–TiO 2 interface from ab initio deep potential molecular dynamics†

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      , , , ,
      Chemical Science
      The Royal Society of Chemistry

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          Abstract

          TiO 2 is a widely used photocatalyst in science and technology and its interface with water is important in fields ranging from geochemistry to biomedicine. Yet, it is still unclear whether water adsorbs in molecular or dissociated form on TiO 2 even for the case of well-defined crystalline surfaces. To address this issue, we simulated the TiO 2–water interface using molecular dynamics with an ab initio-based deep neural network potential. Our simulations show a dynamical equilibrium of molecular and dissociative adsorption of water on TiO 2. Water dissociates through a solvent-assisted concerted proton transfer to form a pair of short-lived hydroxyl groups on the TiO 2 surface. Molecular adsorption of water is Δ F = 8.0 ± 0.9 kJ mol −1 lower in free energy than the dissociative adsorption, giving rise to a 5.6 ± 0.5% equilibrium water dissociation fraction at room temperature. Due to the relevance of surface hydroxyl groups to the surface chemistry of TiO 2, our model might be key to understanding phenomena ranging from surface functionalization to photocatalytic mechanisms.

          Abstract

          TiO 2 is a widely used photocatalyst in science and technology and its interface with water is important in fields ranging from geochemistry to biomedicine.

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          Water orientation and hydrogen-bond structure at the water–fluorite interface

          Khatib (2016)
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            Water orientation and hydrogen-bond structure at the water–fluorite interface

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              Author and article information

              Journal
              Chem Sci
              Chem Sci
              SC
              CSHCBM
              Chemical Science
              The Royal Society of Chemistry
              2041-6520
              2041-6539
              28 January 2020
              7 March 2020
              28 January 2020
              : 11
              : 9
              : 2335-2341
              Affiliations
              [a] Department of Chemistry, Princeton University Princeton NJ 08544 USA aselloni@ 123456princeton.edu
              [b] Program in Applied and Computational Mathematics, Princeton University Princeton NJ 08544 USA
              Author information
              https://orcid.org/0000-0001-8630-7393
              https://orcid.org/0000-0003-1619-6514
              https://orcid.org/0000-0001-5896-3158
              Article
              c9sc05116c
              10.1039/c9sc05116c
              8157430
              34084393
              d7546d54-2c4b-43b3-ad4b-ae76cfa74246
              This journal is © The Royal Society of Chemistry
              History
              : 10 October 2019
              : 27 January 2020
              Page count
              Pages: 7
              Funding
              Funded by: Basic Energy Sciences, doi 10.13039/100006151;
              Award ID: DE-SC0007347
              Award ID: DE-SC0019394
              Award ID: DE-AC02-05cH11231
              Funded by: Conselho Nacional de Desenvolvimento Científico e Tecnológico, doi 10.13039/501100003593;
              Award ID: Unassigned
              Categories
              Chemistry
              Custom metadata
              Paginated Article

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