Revealing the enhancing mechanisms of Fe-Cu bimetallic catalysts for the Fenton-like degradation of phenol

Chemosphere. 2022 Feb:289:133195. doi: 10.1016/j.chemosphere.2021.133195. Epub 2021 Dec 6.

Abstract

To develop a heterogeneous Fenton-like catalyst with desirable activity and reusability remains a great challenge for the practical degradation of environmental remediation. Herein, we demonstrate a dendritic Fe-Cu bimetallic catalyst consisted of a Cu/Fe3O4 shell and a FeCu core (E100). In comparisons of single Cu, Fe and Fe3O4, E100 performs far better performance for the Fenton-like degradation of phenol, and its dominant Fenton-like active centers are Fe species under acidic pH or Cu species under neutral pH. Particularly, Cu-based Fenton-like reactions are greatly accelerated by galvanic micro-cells effects that come from the special co-existence of Cu/Fe3O4 shell, and subsequently, owing to the Cu leaching from the shell, the inner FeCu core of E100 is able to be exposed and further strengthen Fe-based Fenton-like reactions. Overall, the appropriate synergistic effects endow E100 with superior catalytic activity and reusability than other catalysts. Our work pushes forward a step for understanding the catalytic mechanism of Fe-Cu bimetallic catalysts and provides new sights for fabricating efficient Fenton-like catalysts for environmental remediation.

Keywords: Fe-Cu bimetallic Catalysts; Fenton-like active centers; Galvanic micro-cells; Phenol degradation; Synergistic effect.

MeSH terms

  • Catalysis
  • Environmental Restoration and Remediation*
  • Hydrogen Peroxide
  • Iron
  • Phenol*

Substances

  • Phenol
  • Hydrogen Peroxide
  • Iron