Electrochemical–Chemical Cascade Catalysis for Green Synthesis of Phenols Over a Three‐Dimensional Hexaazatrinaphthalene‐Based Covalent Organic Framework

T Tao Yang F Fantao Kong (State Key Laboratory of High Performance Ceramics) A Aiguo Kong (School of Chemistry and Molecular Engineering) X Xiangzhi Cui (School of Chemistry and Materials Science, Hangzhou Institute for Advanced Study) J Jianlin Shi (State Key Laboratory of High Performance Ceramics, Shanghai Institute of Ceramics)

Abstract

ABSTRACT Phenols are essential intermediates widely used in chemical and pharmaceutical industries, yet conventional synthetic routes typically demand energy‐intensive conditions and multi‐step procedures. Herein, we report a green and efficient cascade strategy for phenol synthesis that integrates in situ electrochemical hydrogen peroxide (H 2 O 2 ) generation with chemical oxidation of arylboronic acids using molecular oxygen under mild conditions. This approach demonstrates excellent functional‐group tolerance and broad substrate scope (20 examples), achieving high conversion and selectivity without employing toxic solvents. A three‐dimensional covalent organic framework (3D COF) with hexaazatrinaphthalene (HATN) building units and htp topology is designed as a robust electrocatalyst, delivering a remarkable H 2 O 2 production rate of ∼7.0 mol g cat −1 h −1 . Mechanistic studies reveal that the abundant nitrogen sites in the COF backbone act as hydrogen‐bond acceptors, which facilitate proton transfer, promote a well‐matched proton‐coupled electron transfer (PCET) process, and stabilize the key *OOH intermediate, thereby collectively enhancing the selectivity and activity of the 2e − oxygen reduction reaction. Techno‐economic (TEA) analysis further validates the potential economic feasibility of this integrated route based on laboratory scale. This work highlights the potential of rationally engineered 3D COFs to bridge electrosynthesis and synthetic chemistry, offering a mild and sustainable alternative to conventional energy‐intensive phenols production.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 30, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (5)

T

Tao Yang

F

Fantao Kong

State Key Laboratory of High Performance Ceramics

A

Aiguo Kong

School of Chemistry and Molecular Engineering

X

Xiangzhi Cui

School of Chemistry and Materials Science, Hangzhou Institute for Advanced Study

J

Jianlin Shi

State Key Laboratory of High Performance Ceramics, Shanghai Institute of Ceramics