4.8 Article

Subtle Structure Matters: The Vicinity of Surface Ti5c Cations Alters the Photooxidation Behaviors of Anatase and Rutile TiO2 under Aqueous Environments

Journal

ACS CATALYSIS
Volume 12, Issue 14, Pages 8242-8251

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acscatal.2c01339

Keywords

photocatalytic OER; water/TiO2 interface; ab initio molecular dynamics; microkinetic modeling; density functional theory

Funding

  1. National Key Research and Development Program of China [2018YFA0208602]
  2. National Natural Science Foundation of China [21903025, 21825301]
  3. Shanghai Science and Technology Development Funds [22QA1402900]

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This study investigates the significance of surface structures in altering the photooxidation functions of titanium dioxide (TiO2) in aqueous environments. By developing a solution simulation method, the researchers identify a complete mechanism for the photocatalytic oxygen evolution reaction (OER) and determine the leading reaction pathway based on the concentration of photoholes reaching the surface. The results also reveal the importance of proper surface structures in achieving efficient catalysis.
While the structure-function relationship is frequently referred in heterogeneous catalysis, the concept falls short of applications in photocatalysis owing to its complicated processes. Here, we take the photocatalytic oxygen evolution reaction (OER) as a case study and demonstrate the significance of subtle surface structures in altering the photooxidation functions of anatase and rutile TiO2 under aqueous environments. On the basis of our recent progresses in developing a solution simulation method and clarifying the photocatalytic OER process at rutile TiO2 (Nat. Catal. 2018, 1, 291-299), we successfully identified a complete OER mechanism at the water/anatase-TiO2(101) interface with an explicit involvement of photoholes/radicals and lattice oxygens. Kinetic analysis further revealed the leading reaction pathway varying with the concentration of surface-reaching photoholes (Ch+), as well as the most efficient way to boost the OER via enriching the Ch+ rather than lowering the reaction barriers (of water dissociation or O/O coupling). Anatase TiO2(101) generally shows poorer OER activity relative to the rutile TiO2(110) but much higher surface coverage of O-t(-) radicals under experimental conditions, rationalizing its good activity for photodegradation of organics. Such varied catalytic functions were found to be simply decided by the distance between two vicinal under-coordinated Ti cations on the surface that promotes or prohibits the key step of O/O coupling. These results not only provide essential understandings on the structure-function principles governing the photooxidation behaviors but also offer strategies to achieve efficient catalysis via matching proper surface structures with targeted reaction characteristics.

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