Molecular Bridging Enables Isolated Iron Atoms on Stereoassembled Carbon Framework To Boost Oxygen Reduction for Zinc-Air Batteries

Wenqing Wang, Kun Rui, Kaili Wu, Yisha Wang, Longwei Ke, Xin Wang, Feng Xu, Yan Lu, Jixin Zhu

Research output: Contribution to journalArticlepeer-review

4 Scopus citations

Abstract

Realizing the synergy between active site regulation and rational structural engineering is essential in the electrocatalysis community but still challenging. Here, a matrix-confined co-pyrolysis strategy based on molecular bridging is demonstrated to realize highly dispersed Fe atoms on stereoassembled carbon framework. Both polyacrylonitrile matrix and organic linker from metal–organic frameworks (MOFs) provide sufficient N-anchoring sites for the generation of Fe−N4 moieties. A high Fe loading of 2.9 wt.% is readily achieved based on the scalable approach without post-treatment. Owing to the presence of highly exposed Fe−N−C sites and well-tuned pore structures, isolated Fe atoms on porous carbon nanofiber framework (Fe−SA/NCF) exhibits decent oxygen reduction activity and stability in alkaline conditions via a near four-electron path, demonstrating superior performance as air cathode for zinc-air batteries (ZABs) to commercial Pt/C catalyst.

Original languageEnglish
Article numbere202200789
JournalChemistry - A European Journal
Volume28
Issue number40
DOIs
StatePublished - 15 Jul 2022

Keywords

  • MOFs
  • electrospinning
  • oxygen reduction reaction
  • single atoms
  • zinc-air battery

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