Issue 41, 2025, Issue in Progress

Fe–N–C catalyst with atomic Fe dispersion and hierarchical porosity via PVP-assisted MOF synthesis for ORR in acidic media

Abstract

Iron–nitrogen–carbon (Fe–N–C) catalysts have emerged as leading non-precious metal catalyst (NPMC) candidates for the oxygen reduction reaction (ORR) in acidic media, yet challenges persist in achieving high activity, durability, and atomic-scale Fe dispersion. Here, we report Fe-ZIF-8-PVP-1000, a high-performance Fe–N–C catalyst synthesized via a polyvinylpyrrolidone (PVP)-assisted metal–organic framework (MOF) strategy. PVP functions as a morphology stabilizer, nitrogen dopant, and metal dispersant, producing atomically dispersed Fe–Nx sites within a hierarchically porous, nitrogen-rich carbon matrix. The catalyst achieves a half-wave potential (E1/2) of 0.865 V vs. RHE in 0.5 M H2SO4, surpassing commercial 28.6 wt% Pt/C (E1/2 ≈ 0.855 V) and rivaling the best Fe–N–C catalysts reported to date. With a BET surface area of 1579.8 m2 g−1 and a micropore volume of 0.54 cm3 g−1, it provides abundant accessible active sites; electrochemical analysis further revealed an electron transfer number of n ≈ 3.96 with minimal H2O2 yield, confirming a highly selective four-electron ORR pathway. The catalyst retained approximately 84% of its current after 10 h and exhibited only an 11 mV negative shift in E1/2 after 30 000 cycles, demonstrating outstanding stability. This scalable synthesis provides acid-tolerant, high-performance NPMCs with optimized structural and electronic properties.

Graphical abstract: Fe–N–C catalyst with atomic Fe dispersion and hierarchical porosity via PVP-assisted MOF synthesis for ORR in acidic media

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Article information

Article type
Paper
Submitted
03 Aug 2025
Accepted
15 Sep 2025
First published
22 Sep 2025
This article is Open Access
Creative Commons BY license

RSC Adv., 2025,15, 34524-34536

Fe–N–C catalyst with atomic Fe dispersion and hierarchical porosity via PVP-assisted MOF synthesis for ORR in acidic media

M. Shoaib, S. Ishtiaque, A. A. Ghani, Z. Awan, A. Ali, A. Rubab and M. Akhtar, RSC Adv., 2025, 15, 34524 DOI: 10.1039/D5RA05653E

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