3D Flower-Like FeWO4/CeO2 Hierarchical Architectures on rGO for Durable and High-Performance Microalgae Biophotovoltaic Fuel Cells

Appl Biochem Biotechnol. 2020 Nov;192(3):751-769. doi: 10.1007/s12010-020-03352-4. Epub 2020 Jun 17.

Abstract

A facile chemical reduction approach is adopted for the synthesis of iron tungstate (FeWO4)/ceria (CeO2)-decorated reduced graphene oxide (rGO) nanocomposite. Surface morphological studies of rGO/FeWO4/CeO2 composite reveal the formation of hierarchical FeWO4 flower-like microstructures on rGO sheets, in which the CeO2 nanoparticles are decorated over the FeWO4 microstructures. The distinct anodic peaks observed for the cyclic voltammograms of studied electrodes under light/dark regimes validate the electroactive proteins present in the microalgae. With the cumulative endeavors of three-dimensional FeWO4 microstructures, phase effect between rGO sheet and FeWO4/CeO2, highly exposed surface area, and light harvesting property of CeO2 nanoparticles, the relevant rGO/FeWO4/CeO2 nanocomposite demonstrates high power and stable biophotovoltaic energy generation compared with those of previous reports. Thus, these findings construct a distinct horizon to tailor a ternary nanocomposite with high electrochemical activity for the construction of cost-efficient and environmentally benign fuel cells.

Keywords: Biophotovoltaic fuel cell; Green energy; Microalgae; Microflower; Ternary nanocomposite.

MeSH terms

  • Bioelectric Energy Sources*
  • Cerium / chemistry*
  • Electrochemistry
  • Electrodes
  • Graphite / chemistry*
  • Microalgae / metabolism*
  • Molecular Conformation
  • Nanocomposites / chemistry
  • Nanoparticles / chemistry

Substances

  • graphene oxide
  • Cerium
  • ceric oxide
  • Graphite