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Tuning and Shielding Iridium Active Sites Through Tungsten Electron Buffer for Oxygen Evolution Catalysis
Wenjia Mao1,2, Yong Zhang3, Lijia Liu4
1Institute of Crystalline Materials, Institute of Molecular Science, Shanxi University, Taiyuan, China.
None:
Efficient and durable oxygen evolution reaction (OER) electrocatalysts under acidic conditions are pivotal for proton-exchange-membrane water electrolysis (PEMWE), yet Ir-based catalysts suffer from activity-stability trade-offs caused by facile over-oxidation and corrosion. Herein, IrOx nanoclusters decorated with W single atoms (W SAs) and supported on N-doped graphene (defined as W-IrOx/NG) are synthesized via solvothermal reaction and NH3-assisted pyrolysis process. In W-IrOx/NG, W SAs with W-N3O1 configuration are attached onto IrOx nanoclusters through W─O─Ir linkers, forming interfacial covalent connections for efficient charge transfer. W-IrOx/NG delivers an ultrahigh mass activity of 2998.91 A gIr -1 at 300 mV overpotential and maintains stable operation for over 250 h at 1 A cm-2 in a PEM electrolyzer with an ultralow Ir loading (0.25 mgIr cm-2). Mechanistic insight analysis uncovers that W atoms serve as electron buffer, donating and storing electrons to regulate the oxidation state of Ir during OER, thereby suppressing irreversible over-oxidation. Theoretical calculation demonstrates that W SAs with W─N3O1 sites modulate the d-band structure of Ir center, lowering the deprotonation barrier of *OH/*OOH intermediates and simultaneously weakening oxo-species adsorption strength, thus accelerating OER kinetics.
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