催化作用
分子轨道
镍
过电位
光化学
选择性
轨道杂交
电解水
化学
电合成
材料科学
电解质
酞菁
化学工程
化学物理
金属
析氧
氢
过氧化氢
制氢
图层(电子)
分子
三吡啶
无机化学
佩多:嘘
氧气
轨道能级差
分解水
顺磁性
过渡金属
纳米技术
电子顺磁共振
多相催化
分子内力
物理化学
作者
Libo Sun,Yanjie Zhai,Dongxue Yu,Yuze Chen,Zhiqiang Liang,Zhen‐An Qiao,Xin Wang
摘要
ABSTRACT Hydrogen peroxide (H 2 O 2 ) electrosynthesis via the two‐electron oxygen reduction reaction (2e − ORR) is fundamentally challenged by both spin‐forbidden O 2 activation and sluggish proton‐coupled electron transfer. Herein, we move beyond conventional metal‐centered design and propose a dual‐regulation strategy that integrates molecular orbital engineering with control of the interfacial water network. Using nickel phthalocyanines as a platform, extended π ‐conjugation combined with polar methoxy (‐OCH 3 ) groups was introduced. It narrows the HOMO–LUMO gap and facilitates potential‐driven formation of a paramagnetic superoxide intermediate, while the methoxy groups further reorganize the interfacial water layer with moderate hydrogen‐bonding strength that enables efficient proton delivery for subsequent hydrogenation steps. This led to high H 2 O 2 selectivity (up to 96.49%) over a wide potential range, with stable performance in both flow cell and porous state electrolyte reactors for over 50 h. In situ spectroscopy and simulations reveal how molecular orbital regulation contributes to the catalytic process, and how the interfacial water layer facilitates hydrogenation. Our work provides a molecular orbital perspective on the cooperative roles of metal and ligand, establishing a design strategy that co‐regulates electronic and interfacial determinants for selective multi‐electron electrocatalysis.
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