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Water Structure in the First Layers on TiO$_2$: A Key Factor for Boosting Solar-Driven Water-Splitting Performances

Verduci, Rosaria; Creazzo, Fabrizio; Tavella, Francesco; Abate, Salvatore; Ampelli, Claudio; Luber, Sandra; Perathoner, Siglinda; Cassone, Giuseppe; Centi, Gabriele; D’Angelo, Giovanna (2024). Water Structure in the First Layers on TiO$_2$: A Key Factor for Boosting Solar-Driven Water-Splitting Performances. Journal of the American Chemical Society, 146(26):18061-18073.

Abstract

The water hydrogen-bonded network is strongly perturbed in the first layers in contact with the semiconductor surface. Even though this aspect influences the outer-sphere electron transfer, it was not recognized that it is a crucial factor impacting the solar-driven water-splitting performances. To fill this gap, we have selected two TiO2 anatase samples (with and without B-doping), and by extensive experimental and computational investigations, we have demonstrated that the remarkable 5-fold increase in water-splitting photoactivity of the B-doped sample cannot be ascribed to effects typically associated to enhanced photocatalytic properties, such as band gap, heterojunctions, crystal facets, and other aspects. Studying these samples by combining FTIR measurements under controlled humidity with first-principles simulations sheds light on the role and nature of the first-layer water structure in contact with the photocatalyst surfaces. It turns out that the doping hampers the percolation of tetrahedrally coordinated water molecules while enhancing the population of topological H-bond defects forming approximately linear H-bonded chains. This work unveils how doping the semiconductor surface affects the local electric field, determining the water splitting rate by influencing the H-bond topologies in the first water layers. This evidence opens new prospects for designing efficient photocatalysts for water splitting.

Additional indexing

Item Type:Journal Article, refereed, original work
Communities & Collections:07 Faculty of Science > Department of Chemistry
Dewey Decimal Classification:540 Chemistry
Scopus Subject Areas:Physical Sciences > Catalysis
Physical Sciences > General Chemistry
Life Sciences > Biochemistry
Physical Sciences > Colloid and Surface Chemistry
Language:English
Date:3 July 2024
Deposited On:09 Feb 2025 14:52
Last Modified:10 Feb 2025 21:04
Publisher:American Chemical Society (ACS)
ISSN:0002-7863
OA Status:Closed
Publisher DOI:https://doi.org/10.1021/jacs.4c05042
PubMed ID:38909313
Project Information:
  • Funder: H2020
  • Grant ID: 810182
  • Project Title: SCOPE - Surface-COnfined fast-modulated Plasma for process and Energy intensification in small molecules conversion
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