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Linking in situ charge accumulation to electronic structure in doped SrTiO3 reveals design principles for hydrogen-evolving photocatalysts.
Moss, Benjamin; Wang, Qian; Butler, Keith T; Grau-Crespo, Ricardo; Selim, Shababa; Regoutz, Anna; Hisatomi, Takashi; Godin, Robert; Payne, David J; Kafizas, Andreas; Domen, Kazunari; Steier, Ludmilla; Durrant, James R.
Afiliação
  • Moss B; Department of Chemistry, Imperial College London, London, UK.
  • Wang Q; Centre for Processable Electronics, Imperial College London, London, UK.
  • Butler KT; Department of Chemical System Engineering, School of Engineering, The University of Tokyo, Tokyo, Japan.
  • Grau-Crespo R; Department of Chemistry, University of Cambridge, Cambridge, UK.
  • Selim S; SciML, Scientific Computing Division, Rutherford Appleton Laboratory, Harwell, UK.
  • Regoutz A; Department of Chemistry, University of Reading, Reading, UK.
  • Hisatomi T; Department of Chemistry, Imperial College London, London, UK.
  • Godin R; Centre for Processable Electronics, Imperial College London, London, UK.
  • Payne DJ; Department of Chemistry, University College London, London, UK.
  • Kafizas A; Research Initiative for Supra-Materials, Interdisciplinary Cluster for Cutting Edge Research, Shinshu University, Nagano, Japan.
  • Domen K; Department of Chemistry, Imperial College London, London, UK.
  • Steier L; Department of Chemistry, University of British Columbia, Kelowna, British Columbia, Canada.
  • Durrant JR; Department of Materials, Imperial College London, London, UK.
Nat Mater ; 20(4): 511-517, 2021 Apr.
Article em En | MEDLINE | ID: mdl-33432143
Recently, high solar-to-hydrogen efficiencies were demonstrated using La and Rh co-doped SrTiO3 (La,Rh:SrTiO3) incorporated into a low-cost and scalable Z-scheme device, known as a photocatalyst sheet. However, the unique properties that enable La,Rh:SrTiO3 to support this impressive performance are not fully understood. Combining in situ spectroelectrochemical measurements with density functional theory and photoelectron spectroscopy produces a depletion model of Rh:SrTiO3 and La,Rh:SrTiO3 photocatalyst sheets. This reveals remarkable properties, such as deep flatband potentials (+2 V versus the reversible hydrogen electrode) and a Rh oxidation state dependent reorganization of the electronic structure, involving the loss of a vacant Rh 4d mid-gap state. This reorganization enables Rh:SrTiO3 to be reduced by co-doping without compromising the p-type character. In situ time-resolved spectroscopies show that the electronic structure reorganization induced by Rh reduction controls the electron lifetime in photocatalyst sheets. In Rh:SrTiO3, enhanced lifetimes can only be obtained at negative applied potentials, where the complete Z-scheme operates inefficiently. La co-doping fixes Rh in the 3+ state, which results in long-lived photogenerated electrons even at very positive potentials (+1 V versus the reversible hydrogen electrode), in which both components of the complete device operate effectively. This understanding of the role of co-dopants provides a new insight into the design principles for water-splitting devices based on bandgap-engineered metal oxides.

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Nat Mater Ano de publicação: 2021 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Nat Mater Ano de publicação: 2021 Tipo de documento: Article