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Phosphorus‐Doped Single Atom Copper Catalyst as a Redox Mediator in the Cathodic Reduction of Quinazolinones

Xinyu WangDepartment of Chemistry Northeastern University Shenyang 110004 ChinaWan‐Jie WeiState Key Laboratory for Chemistry and Molecular Engineering of Medicinal Resources, Key Laboratory for Chemistry and Molecular Engineering of Medicinal Resources (Ministry of Education of China), Collaborative Innovation Center for Guangxi Ethnic Medicine, School of Chemistry and Pharmaceutical Sciences Guangxi Normal University Guilin 541004 ChinaSiyu ZhouState Key Laboratory for Chemistry and Molecular Engineering of Medicinal Resources, Key Laboratory for Chemistry and Molecular Engineering of Medicinal Resources (Ministry of Education of China), Collaborative Innovation Center for Guangxi Ethnic Medicine, School of Chemistry and Pharmaceutical Sciences Guangxi Normal University Guilin 541004 ChinaYong-Zhou PanDepartment of Chemistry Northeastern University Shenyang 110004 ChinaJiarui YangDepartment of Chemistry Tsinghua University Beijing 100084 ChinaTao GanShanghai Synchrotron Radiation Facility Shanghai Advanced Research Institute Chinese Academy of Sciences Shanghai 201204 ChinaZechao ZhuangDepartment of Chemical Engineering Columbia University New York NY 10027 USAWenhao LiDepartment of Chemistry Northeastern University Shenyang 110004 ChinaXia ZhangDepartment of Chemistry Northeastern University Shenyang 110004 ChinaYing‐Ming PanDepartment of Chemistry Northeastern University Shenyang 110004 ChinaHaitao TangState Key Laboratory for Chemistry and Molecular Engineering of Medicinal Resources, Key Laboratory for Chemistry and Molecular Engineering of Medicinal Resources (Ministry of Education of China), Collaborative Innovation Center for Guangxi Ethnic Medicine, School of Chemistry and Pharmaceutical Sciences Guangxi Normal University Guilin 541004 ChinaDingsheng WangDepartment of Chemistry Tsinghua University Beijing 100084 China
2025en
ABI

Аннотация

Abstract The use of clean electric energy to activate inert compounds has garnered significant attention. Homogeneous redox mediators (RMs) in organic electrosynthesis are effective platforms for this purpose. However, understanding the RM's electronic structure under operational conditions, electron transport processes at the electrode surface, and substrate adsorption‐desorption dynamics remains challenging. Here, we synthesized a Cu single‐atom catalyst (SAC, named Cu─N─P@NC) with a CuN 3 P 1 micro‐coordination structure, employing it as a unique cathode redox mediator. Introducing phosphine atoms into the coordination system allowed modulation of the SAC's electronic metal‐support interaction, optimizing catalyst‐substrate adsorption‐desorption dynamics and accelerating electrochemical reactions. Utilizing the heterogeneous SAC strategy, we achieved a novel electro‐reduction coupling ring‐opening reaction of inert quinazolinone frameworks. The Cu‐SAC exhibited exceptionally high catalytic activity and substrate compatibility, operating smoothly at gram‐scale production. Additionally, we applied the SAC to modify 11 natural product molecules. Integrating micro‐coordination environment regulation and theoretical adsorption models elucidated the significant influence of electrode‐RMs‐substrate interactions on reaction kinetics and catalytic efficiency‐a feat challenging for homogeneous RMs. This approach offers a novel pathway for advancing efficient organic electrosynthesis reactions and provides critical insights for mechanistic studies.

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