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Structural Reconstruction and Electronic Microenvironment of Active FeCoNiOOH Support Optimized by Single Mo Atoms for Lattice Oxygen Evolution
期刊文章

Structural Reconstruction and Electronic Microenvironment of Active FeCoNiOOH Support Optimized by Single Mo Atoms for Lattice Oxygen Evolution

C.-Y. Lin, C.-C. Wang, W.-H. Huang, Y.-C. Shao, C.-W. Pao, Y.-R. Lu, T.-S. Chan, F.-T. Tsai 和 W.-F. Liaw
Small, 卷.22(42)
2026
Web of Science ID: WOS:001787074000001

摘要

catalysis electronic structure intramolecular force ligand molybdate octahedron overpotential oxygen evolution Atomization Atoms Catalyst supports Cobalt compounds Decay (organic) Dynamics Iron Iron compounds Molybdenum Molybdenum compounds Oxygen Reconstruction (structural) Titanium compounds hydroxide molybdic acid olmutinib oxygen oxygen 18 Catalyse Electronic.structure Intramolecular forces Metal-support interactions Microenvironments Molybdate Octahedron Overpotential Oxygen evolution Single-atoms adsorption article atom catalysis catalyst controlled study dissolution kinetics microenvironment nebulization oxygen evolution pH Catalysis Electronic structure
To figure out the function of single atoms in modulating electro-active support, the fundamental study on how single atoms manage reconstruction dynamics and optimize the electronic structure of the support is imperative to provide advanced cognition of activity origin for decent OER kinetics. With FeCoNi(OH)x and Mo-ensemble FeCoNi(OH)x as the proof-of-concept precatalysts, we demonstrate the defects created by molybdate dissolution-redeposition dynamic equilibrium (Mo ensemble atomization), ready for favorite hydroxide adsorption triggers self-adaptive structure reconstruction, and electronic metal support interaction (EMSI) improves bonding covalency of the edge-shared octahedral Co4+/Ni4+ dual-site motifs for direct intramolecular Olattice−Olattice radical coupling. Orchestrated with pH-dependent CV experiments and 18O-labelled catalyst coupled with in situ GC-MS measurements, O K-edge, Mo/Fe/Co/Ni K-edge/L-edge XAS, and KPFM combined with XPS valence band analyses unravel that atomization and EMSI effects work together to in situ optimize electronic microenvironment to initiate ligand (O 2p πnb band) to metal (d band) charge transfer, actualizing the oxygen hole with radical character in O 2p πnb band and realizing highly catalytic stability of LOM-active FeCoNiOOH support. Accordingly, the SA-Mo-FeCoNiOOH catalyst affords 500 mA/cm2 at an overpotential of 394 mV and exhibits high stability at 1000 mA/cm2 over 100 days with a potential decay rate as 40.8 µV/h. © 2026 Wiley-VCH GmbH.

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https://www.scopus.com/inward/record.uri?eid=2-s2.0-105041234347&doi=10.1002%2fsmll.74110&partnerID=40&md5=69b1171449502ccda6bfaee6c003e25c檢視

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合作類型
機構合作
引用書目主題
2 Chemistry
2.62 Electrochemistry
2.62.76 Electrocatalysis
Web Of Science研究領域
Chemistry, Multidisciplinary
Chemistry, Physical
Materials Science, Multidisciplinary
Nanoscience & Nanotechnology
Physics, Applied
Physics, Condensed Matter
ESI研究領域
Materials Science

聯合國永續發展目標(SDGs)

此研究成果有助於達成以下目標:

#7 Affordable and Clean Energy

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