Oxygen-bridged Fe–Ni heterointerfaces confined in hierarchical MoxC/N-doped carbon enable bifunctional pathway for efficient oxygen evolution

Citations

WEB OF SCIENCE

0
Citations

SCOPUS

0

초록

The oxygen evolution reaction (OER) suffers from slow multistep kinetics, requiring catalysts capable of providing efficient charge transfer and robust active sites. Here, we report a highly efficient O-bridged Fe–Ni heterointerface confined within hollow hierarchical molybdenum carbide/nitrogen-doped carbon (MoxC/NC) microspheres. The hierarchical MoxC/NC scaffold, derived from a metal-polydopamine complex, prevents metal sintering during high-temperature conversion and stabilizes ultrasmall NiO domains. Subsequent Fe treatment anchors FeOOH species onto surface-exposed NiO, generating abundant O-bridged Fe–Ni heterointerfaces. X-ray photoelectron and absorption spectroscopy reveal the formation of strongly coupled Ni–O–Fe linkages, while operando Raman spectroscopy confirms their transformation into FeOOH–NiOOH active species under OER conditions. These O-bridged interfaces promote a bifunctional pathway in which Fe acts as the primary oxygen-evolving center and Ni serves as the proton-accepting center, thereby accelerating OER kinetics. As a result, FeOOH–NiO@MoxC/NC achieves an overpotential of 374 mV at 100 mA cm−2, a Tafel slope of 77.8 mV dec−1, and a turnover frequency of 2.69 s−1 at 350 mV, outperforming RuO2. Furthermore, the catalyst maintains over 300 hours of stable operation at 500 mA cm−2 in anion-exchange membrane electrolyzers. This work highlights a rational interfacial-engineering strategy that leverages O-bridged Fe–Ni heterointerfaces to achieve highly active and durable OER electrocatalysts.

키워드

OXIDATIONOXIDE
제목
Oxygen-bridged Fe–Ni heterointerfaces confined in hierarchical MoxC/N-doped carbon enable bifunctional pathway for efficient oxygen evolution
저자
Kim, Cheol JuHa, SeungjoonLee, Yun JaeKim, Yun MinKim, Hyun JinJang, HaeseongLee, SeunghwaPark, Seung-Keun
DOI
10.1039/d6ta01090c
발행일
2026
유형
Article; Early Access
저널명
Journal of Materials Chemistry A
14
32
페이지
21200 ~ 21211