Cooperative Catalytic Effect of ZrO2 and α-Fe2 O3 Nanoparticles on BiVO4 Photoanodes for Enhanced Photoelectrochemical Water Splitting

ChemSusChem. 2016 Oct 6;9(19):2779-2783. doi: 10.1002/cssc.201600890. Epub 2016 Sep 1.

Abstract

Photoelectrochemical water splitting with metal oxide semiconductors offers a cost-competitive alternative for the generation of solar fuels. Most of the materials studied so far suffer from poor charge-transfer kinetics at the semiconductor/liquid interface, making compulsory the use of catalytic layers to overcome the large overpotentials required for the water oxidation reaction. Herein, we report a very soft electrolytic synthesis deposition method, which allows remarkably enhanced water oxidation kinetics of BiVO4 photoanodes by the sequential addition of Zr and Fe precursors. Upon a heat treatment cycle, these precursors are converted into monoclinic ZrO2 and α-Fe2 O3 nanoparticles, which mainly act as catalysts, leading to a five-fold increase of the water oxidation photocurrent of BiVO4 . This method provides a versatile platform that is easy to apply to different semiconductor materials, fully reproducible, and facile to scale-up on large area conductive substrates with attractive implications for technological deployment.

Keywords: electrolytic synthesis; nanoparticles; photoanode; water oxidation kinetics; water splitting.

MeSH terms

  • Bismuth / chemistry*
  • Catalysis
  • Electrochemical Techniques
  • Electrodes*
  • Ferric Compounds / chemistry*
  • Metal Nanoparticles / chemistry*
  • Microscopy, Electron, Scanning
  • Microscopy, Electron, Transmission
  • Photochemical Processes
  • Semiconductors
  • Vanadates / chemistry*
  • Water / chemistry*
  • Zirconium / chemistry*

Substances

  • Ferric Compounds
  • Water
  • bismuth vanadium tetraoxide
  • ferric oxide
  • Vanadates
  • Zirconium
  • zirconium oxide
  • Bismuth