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Elucidating Synergies of Single-Atom Catalysts in a Model Thin Film Photoelectrocatalyst to Maximize Hydrogen Evolution Reaction.
Zhao, Zichu; Law, Cheryl Suwen; Zhao, Yanzhang; Baron Jaimez, Jairo Alberto; Talebian-Kiakalaieh, Amin; Li, Haobo; Ran, Jingrun; Jiao, Yan; Abell, Andrew D; Santos, Abel.
Affiliation
  • Zhao Z; School of Chemical Engineering, The University of Adelaide, Adelaide, South Australia, 5005, Australia.
  • Law CS; Institute for Photonics and Advanced Sensing (IPAS), The University of Adelaide, Adelaide, South Australia, 5005, Australia.
  • Zhao Y; School of Chemical Engineering, The University of Adelaide, Adelaide, South Australia, 5005, Australia.
  • Baron Jaimez JA; Institute for Photonics and Advanced Sensing (IPAS), The University of Adelaide, Adelaide, South Australia, 5005, Australia.
  • Talebian-Kiakalaieh A; School of Chemical Engineering, The University of Adelaide, Adelaide, South Australia, 5005, Australia.
  • Li H; School of Chemical Engineering, The University of Adelaide, Adelaide, South Australia, 5005, Australia.
  • Ran J; Institute for Photonics and Advanced Sensing (IPAS), The University of Adelaide, Adelaide, South Australia, 5005, Australia.
  • Jiao Y; School of Chemical Engineering, The University of Adelaide, Adelaide, South Australia, 5005, Australia.
  • Abell AD; School of Chemical Engineering, The University of Adelaide, Adelaide, South Australia, 5005, Australia.
  • Santos A; School of Chemical Engineering, The University of Adelaide, Adelaide, South Australia, 5005, Australia.
Adv Sci (Weinh) ; : e2407598, 2024 Sep 04.
Article in En | MEDLINE | ID: mdl-39231320
ABSTRACT
Realization of the full potential of single-atom photoelectrocatalysts in sustainable energy generation requires careful consideration of the design of the host material. Here, a comprehensive methodology for the rational design of photoelectrocatalysts using anodic titanium dioxide (TiO2) nanofilm as a model platform is presented. The properties of these nanofilms are precisely engineered to elucidate synergies across structural, chemical, optoelectronic, and electrochemical properties to maximize the efficiency of the hydrogen evolution reaction (HER). These findings clearly demonstrate that thicker TiO2 nanofilms in anatase phase with pits on the surface can accommodate single-atom platinum catalysts in an optimal configuration to increase HER performance. It is also evident that the electrolyte temperature can further enhance HER output through thermochemical effect. A judicious design incorporating all these factors into one system gives rise to a ten-fold HER enhancement. However, the reusability of the host photoelectrocatalyst is limited by the leaching of the Pt atom, worsening HER. Density-functional theory calculations have provided insights into the mechanism underlying the experimental observations in terms of moderate hydrogen adsorption and enhanced gas generation. This improved understanding of the critical factors determining HER performance in a model photoelectrocatalyst paves the way for future advances in scalable and translatable photoelectrocatalyst technologies.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Adv Sci (Weinh) / Advanced science (Weinheim) Year: 2024 Document type: Article Affiliation country: Country of publication:

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Adv Sci (Weinh) / Advanced science (Weinheim) Year: 2024 Document type: Article Affiliation country: Country of publication: