4.8 Article

Regulating Fe-spin state by atomically dispersed Mn-N in Fe-N-C catalysts with high oxygen reduction activity

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NATURE COMMUNICATIONS
卷 12, 期 1, 页码 -

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NATURE RESEARCH
DOI: 10.1038/s41467-021-21919-5

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资金

  1. National Natural Science Foundation of China [21875221, U1604123]
  2. Youth Talent Support Program of High-Level Talents Special Support Plan in Henan Province [ZYQR201810148]
  3. Creative talents in the Education Department of Henan Province [19HASTIT039]
  4. National Key Research and Development Program of China [2016YFB0101202]
  5. State Key Laboratory of Advanced Technology for Materials Synthesis and Processing (Wuhan University of Technology) [2019-KF-13]

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The research uncovered the mechanism of the oxygen reduction reaction on dual-metal atomically dispersed Fe,Mn/N-C catalyst, demonstrating its excellent performance and durability in fuel cells and metal-air batteries.
As low-cost electrocatalysts for oxygen reduction reaction applied to fuel cells and metal-air batteries, atomic-dispersed transition metal-nitrogen-carbon materials are emerging, but the genuine mechanism thereof is still arguable. Herein, by rational design and synthesis of dual-metal atomically dispersed Fe,Mn/N-C catalyst as model object, we unravel that the O-2 reduction preferentially takes place on Fe-III in the FeN4/C system with intermediate spin state which possesses one e(g) electron (t(2g)4e(g)1) readily penetrating the antibonding pi-orbital of oxygen. Both magnetic measurements and theoretical calculation reveal that the adjacent atomically dispersed Mn-N moieties can effectively activate the Fe-III sites by both spin-state transition and electronic modulation, rendering the excellent ORR performances of Fe, Mn/N-C in both alkaline and acidic media (halfwave positionals are 0.928 V in 0.1 M KOH, and 0.804 V in 0.1 M HClO4), and good durability, which outperforms and has almost the same activity of commercial Pt/C, respectively. In addition, it presents a superior power density of 160.8 mW cm(-2) and long-term durability in reversible zinc-air batteries. The work brings new insight into the oxygen reduction reaction process on the metal-nitrogen-carbon active sites, undoubtedly leading the exploration towards high effective low-cost non-precious catalysts.

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