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◆ Advanced Functional Materials2025-12-04· Catalysis

Mechanism‐Guided Design and Synthesis of Co/Fe Dual‐Sites for Highly Efficient and Selective Oxygen Reduction Reaction

Haonan Qin, Bin Wang, Yuan Pan, Xuan Wei, Rui Cao

原始摘要(英文原文)· Original abstract
Abstract Overcoming the intrinsic activity‐selectivity contradiction to achieve simultaneously high electrocatalytic activity and near‐unity four‐electron (4e − ) selectivity in the oxygen reduction reaction (ORR) is critical for advancing the efficiency of metal‐air batteries. Transition metal catalysts exhibit divergent ORR behaviors governed by distinct π * d‐orbital occupancies, a phenomenon known as the “oxo‐wall” effect, which dictates the stability of critical terminal metal oxo/oxyl intermediates. The synergistic integration of pre‐ and post‐oxo‐wall metal sites offers a promising strategy to overcome the limitation, while there is a lack of relevant research and understanding of the dual‐site cooperation. Herein, the design and synthesis of a covalently immobilized Co/Fe‐porphyrin catalyst are reported to validate a dual‐site cascade mechanism: O 2 undergoes initial two‐electron (2e − ) reduction at post‐oxo‐wall Co sites exhibiting high activity but low 4e − selectivity, followed by sequential H 2 O 2 reduction to H 2 O at pre‐oxo‐wall Fe sites with high 4e − selectivity. Spatial isolation enforced by porphyrin ligands and covalent grafting prevents inter‐sites interference. This architecture successfully circumvents the activity‐selectivity contradiction, delivering enhanced ORR performance with a half‐wave potential of 0.79 V vs RHE alongside high 4e − selectivity. The work provides molecular‐level insights into decoupling activity‐selectivity trade‐offs, establishing a dual‐site design paradigm for energy conversion electrocatalysts.
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