化学
吡嗪
电合成
催化作用
组合化学
单线态氧
电化学
过氧化氢
选择性
光化学
纳米技术
分子工程
酞菁
配体(生物化学)
邻苯二甲酸锌
环境友好型
均相催化
法拉第效率
分子
咔唑
葡萄糖氧化酶
多相催化
紧身衣
超分子化学
制氢
极化(电化学)
作者
Libo Sun,Yanjie Zhai,Zhiying Wu,Dongxue Yu,Zhiqiang Liang,Zhen‐An Qiao,Hua Zhang,Xin Wang
摘要
Abstract The electrochemical two-electron oxygen reduction reaction (2e– ORR) provides a sustainable route for hydrogen peroxide (H2O2) production. However, its efficiency is fundamentally constrained by the spin-forbidden activation of triplet O2 and the subsequent proton-coupled electron-transfer steps required to form singlet H2O2. Herein, we report a pyrazine-functionalized nickel phthalocyanine catalyst (NiPNPC) that overcomes these constraints and achieves exceptional selectivity for H2O2 (up to 97.15%). In situ spectroscopic and computational studies reveal that the pyrazine units within the macrocyclic ligand promote a dynamic spin-crossover at the Ni center from a low-spin to a high-spin under cathodic polarization for O2 activation, thereby resolving the intrinsic spin mismatch. Concurrently, the pyrazine units facilitate the reorganization of a well-defined hydrogen-bonding network at the electrolyte-catalyst interface. This network ensures efficient proton delivery to the active center and thereby efficient H2O2 formation. The synergy between dynamic spin-state modulation and interfacial hydrogen-bond engineering provides a mechanistic understanding for selective H2O2 formation and establishes a new design paradigm for advanced molecular electrocatalysts in sustainable synthesis.
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