Login / Signup

Using dopamine interlayers to construct Fe/Fe 3 C@FeNC microspheres of high N-content for bifunctional oxygen electrocatalysts of Zn-air batteries.

Naibao HuangWenjing DongYuan FengWei LiuLikui GuoJingnan XuXiannian Sun
Published in: Dalton transactions (Cambridge, England : 2003) (2023)
High activity bifunctional oxygen electrocatalysts are crucial for the development of high performing Zn-air batteries. Fe-N-C systems decorated with Fe/Fe 3 C nanoparticles have been identified as prospective candidates in which almost all the active sites need the presence of N. To anchor more N, an Fe 2 O 3 microsphere template was covered by a thin layer of polymerized dopamine (PDA) before it was mixed with a high N-content source of g-C 3 N 4 . The PDA interlayer not only provides a part of C and N but also serves as a buffer agent to hinder fast reactions between Fe 2 O 3 and g-C 3 N 4 during pyrolysis to avoid the destruction of the microsphere template. The prepared Fe/Fe 3 C@FeNC catalyst showed superior electrochemical performance, achieving a high half-wave potential of 0.825 V for ORR and a low overpotential of 1.450 V at 10 mA cm -2 for OER. The rechargeable Zn-air battery assembled with the as-obtained Fe/Fe 3 C@FeNC catalyst as a cathode offered a high peak energy density of 134.6 mW cm -2 , high specific capacity of 856.2 mA h g Zn -1 and excellent stability over 180 h at 5 mA cm -2 (10 min per cycle) with a small charge/discharge voltage gap of ∼0.851 V. This work presents a practical strategy for constructing nitrogen-rich catalysts with stable 3D structures.
Keyphrases
  • metal organic framework
  • visible light
  • highly efficient
  • aqueous solution
  • ionic liquid
  • climate change
  • mass spectrometry
  • uric acid
  • solid state
  • simultaneous determination