催化作用
化学
过氧化氢
氧气
卟啉
选择性
碳纳米管
吡啶
分子间力
金属
纳米技术
氮气
氮氧化物
化学工程
氢
组合化学
分子动力学
工作(物理)
材料科学
燃料电池
电催化剂
氢键
碳纤维
氧还原
活性氧
作者
Fang Zhu,Rui Guo,Zhen Liu,Payam Ahmadian Koudakan,Yang Hu,Laichun Zhao,Can Wu,Chang Peng,Fei Xie,Shuaijun Pan
摘要
Abstract Selective two‐electron oxygen reduction reaction (ORR) provides a sustainable route for hydrogen peroxide production, with broad industrial and environmental applications. However, controlling over ORR selectivity remains challenging due to the competing four‐electron pathway (i.e., over‐reduction of oxygen to water). We propose optimizing catalytic performance by tuning cohesive interactions using pyridine‐based porphyrin catalysts. The positioning of pyridine nitrogen ( ortho ‐, meta ‐, and para ‐N) modulates intra‐ and intermolecular interactions through metal coordination and/or support incorporation. Metal coordination fine‐tunes the catalytic center's electronic structure, significantly enhancing two‐electron selectivity, while carbon nanotube integration boosts activity to industrially relevant current densities. The optimized system demonstrates robust stability in a flow cell prototype, maintaining high performance without degradation. Techno‐economic analysis reveals low production costs (~60% market price), confirming practical viability and profitability. This work advances molecular‐level design principles for microenvironment and cohesive interaction engineering in electrocatalysis.
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