催化作用
选择性
化学
自旋态
过氧化氢
电化学
氢
酞菁
光化学
分子轨道
无机化学
氧气
产量(工程)
自旋(空气动力学)
物理化学
电催化剂
反应机理
电子顺磁共振
光谱学
钴
制氢
过渡金属
氧化态
电子结构
轨道能级差
作者
X Y Li,Jiaqi Xiang,Haonan Cui,L X Qin,Yan Xu,Le Chen,John Tressel,Maoyu Wang,Hua Zhou,Zhenxing Feng,Xiaoqing Qiu,Shaowei Chen,Shanyong Chen
摘要
ABSTRACT Oxygen reduction reaction (ORR) represents a critical process in advanced electrochemical energy technologies. Yet, the fundamental mechanism of ORR selectivity has remained largely elusive. Herein, electron spin state is identified as the underlying factor governing ORR selectivity for hydrogen peroxide (H 2 O 2 ) production using model‐definite and site‐identical molecular catalysts as testing platforms. Experimentally, a series of cobalt phthalocyanine (CoPc) derivatives are synthesized, and an explicit correlation is found between the Co spin state and ORR selectivity, where H 2 O 2 production increases with elevated spin states. Combined theoretical orbital analysis and in situ spectroscopy investigations unveil that the spin state transition and subtle d ‐orbital rearrangements optimize multiple orbital hybridization with key intermediates and facilitate the selective two‐electron ORR. Among the series, tetra‐hydroxyl modified CoPc with a high spin state achieves a two‐electron ORR performance in neutral media superior to those of low‐spin state CoPc and previously reported catalysts, with H 2 O 2 selectivity over 95% within the potential range of +0.1 to +0.42 V and a remarkable H 2 O 2 yield of 191.22 mg cm −2 h −1 at −350 mA cm −2 . These findings advance the fundamental understanding of the electronic structure effect on catalytic behaviors.
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