Published 2019 | Version v1
Journal article

Site dependent reactivity of Pt single atoms on anatase TiO2(101) in an aqueous environment

  • 1. Princeton University, NJ (United States)
  • 2. Beijing Computational Science Research Center, Beijing (China)
  • 3. Hunan University of Science and Technology, Xiangtan (China)
  • 4. Beihang University, Beijing (China)

Description

The TiO2–Pt–water interface is of great relevance in photocatalysis where Pt is widely used as a co-catalyst for The TiO2–Pt–water interface is of great relevance in photocatalysis where Pt is widely used as a co-catalyst for enhancing hydrogen evolution in aqueous TiO2. Using ab initio molecular dynamics, we investigated this interface focusing on Pt single atoms supported on anatase TiO2(101) in a water environment. Based on recent experiments showing a broad distribution of Pt coordination sites in TiO2, we examined six distinct single-Pt supported species with different nominal Pt oxidation states, namely: Pt, PtOH, and PtO2 species adsorbed on the stoichiometric surface; Pt adsorbed at a surface oxygen vacancy (Ov); and Pt substituting a surface Ti cation (PtTi), both without and with an accompanying Ov (PtTi + Ov). As found for the pristine anatase surface, interfacial water remained intact in the presence of a nearly neutral Pt adatom within the time duration of our simulations (~15 ps). Similarly, no (or only temporary) water dissociation was observed at the PtTi + Ov and PtO2 interfaces, due to the formation of very stable planar Pt coordination structures that interact only weakly with water. In contrast, water dissociated with OH (H+) on the Pt atom when this substituted a surface Ti (oxygen) ion as well as on PtOH. Lastly, the significant proton affinity of Pt atoms at surface oxygen vacancies suggests that negatively charged Pt species are particularly efficient at catalyzing hydrogen evolution in aqueous TiO2.hydrogen evolution in aqueous TiO2.

Availability note (English)

Available from https://www.osti.gov/servlets/purl/1594492; https://www.osti.gov/biblio/1594492; DOE Accepted Manuscript full text, or the publishers Best Available Version will be available free of charge after the embargo period

Additional details

Publishing Information

Journal Title
Physical Chemistry Chemical Physics. PCCP (Print)
Journal Volume
22
Journal Issue
19
Journal Page Range
p. 10455-10461
ISSN
1463-9076