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◆ Journal of the American Chemical Society2026-04-03· Non-blocking I/O

Plasma-Engineered Hydroxyl Defects in NiO: A DFT-Supported-Spectroscopic Analysis of Oxygen-Hole States and Implications for Water Oxidation

Harol Moreno Fernández, Mohammad Amirabbasi, Crizaldo Mempin, Alessia Trapletti, Garlef Wartner, Marc F. Tesh, Esmaeil Adabifiroozjaei, Thokozile A. Kathyola, Carlo Castellano, Leopoldo Molina‐Luna, Jan P. Hofmann

原始摘要(英文原文)· Original abstract
Controlling lattice-oxygen reactivity in earth-abundant OER catalysts requires precise tuning of defect chemistry in the oxide lattice. Here, we combine DFT + U calculations with plasma-assisted synthesis to show how O 2 and H 2 O in the discharge govern vacancy formation, electronic structure, and catalytic predisposition in NiO thin films. Oxygen-rich plasmas generate isolated and clustered Ni vacancies that stabilize oxygen-ligand-hole states and produce shallow O 2p–Ni 3d hybrid levels, enhancing Ni–O covalency. In contrast, introducing H 2 O during growth drives local hydroxylation that compensates vacancy-induced Ni 3+ centers, restoring Ni 2+ -like coordination, suppressing deep divacancy-derived in-gap states, and introducing shallow Ni–O–H–derived valence-band tails. EXAFS confirms that hydroxylation perturbs only the local environment while preserving the medium-range NiO lattice, and Ni L-edge spectroscopy shows a persistent but redistributed ligand-hole population. These complementary vacancy- and hydroxylation-driven pathways provide a plasma-controlled route to predefine electronic defect landscapes in NiO and to tune its activation toward OER-relevant NiOOH formation.
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Plasma-Engineered Hydroxyl Defects in NiO: A DFT-Supported-Spectroscopic Analysis of Oxygen-Hole States and Implications for Water Oxidation — 科研速览 Science Skim