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Published on: February 23, 2017
Multicenter Electronic Interactions Driving Active Phase Formation in NiFe-MOFs for Anion-Exchange Membrane Water
Jinzhi Jia1, Yongyu Cha1,2, Junfeng Huang1
1State Key Laboratory of Natural Product Chemistry, College of Chemistry and Chemical Engineering, School of Materials and Energy, Lanzhou University, Lanzhou 730000, P.R. China.
Abstract:
Multimetal doping is widely employed to enhance oxygen evolution reaction electrocatalysis; however, the underlying mechanism remains poorly understood due to the complex interplay. Herein, we rationally integrate rare-earth Ce and transition-metal Ru into NiFe-MOFs (Ce,Ru-NiFe-MOFs) to achieve orbital complementarity between localized 4f and delocalized 4d states, thereby enabling a fundamentally distinct electronic regulation strategy beyond conventional charge transfer. This coupling effect fundamentally alters the dynamic evolution of the catalyst by accelerating the transformation of NiFe-MOFs into active NiFeOOH species. We further demonstrate that Ce/Ru codoping induces oxygen-bridged multicenter orbital coupling (3d-4d-4f), as evidenced by soft- and hard-X-ray absorption spectroscopy and aberration-corrected high-angle annular dark-field scanning transmission electron microscopy, together with density functional theory calculations, thereby establishing nonadditive electronic interactions and multilevel electron-transfer pathways. Consequently, the reconstructed catalyst exhibits an optimized electronic structure with enhanced OH- adsorption, suppressed proton-induced corrosion, and reduced energy barrier for the rate-determining step. Therefore, the catalyst delivers an overpotential of 199 mV at 10 mA cm-2 and outstanding durability exceeding 1600 h at 400 mA cm-2. Additionally, when integrated into an anion-exchange membrane water electrolysis system, it achieves a low cell voltage of 1.747 V at 1000 mA cm-2 (meeting the U.S. DOE 2026 target) and maintains stable operation for over 95 h at 500 mA cm-2. This work establishes a clear mechanistic framework linking orbital-level coupling, reconstruction kinetics, and catalytic performance, and provides a general design principle for engineering advanced electrocatalysts via multicenter orbital interactions.
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