Electron‐Deficient Linkers Enhance H 2 O 2 Electrosynthesis in Covalent Organic Frameworks

ABSTRACT Electrocatalytic hydrogen peroxide (H 2 O 2 ) production through the two‐electron oxygen reduction reaction (2e − ORR) offers a promising route for sustainable H 2 O 2 synthesis under ambient conditions. However, the development of electrocatalysts that simultaneously exhibit high activity, selectivity, and stability remains challenging. Specifically, achieving precise control over catalytic centers remains challenging. Herein, an electron‐deficient linker engineering approach based on π‐conjugation tuning is proposed to tailor the electronic structure of nickel phthalocyanine (Ni−N 4 ) active sites in covalent organic frameworks (COFs). Three dianhydride derivatives (i.e., benzene‐1,2,4,5‐tetracarboxylic dianhydride (PMDA), 1,4,5,8‐naphthalenetetracarboxylic dianhydride (NTDA), and perylene‐3,4,9,10‐tetracarboxylic dianhydride (PTDA)) were utilized to synthesize NiPc‐PMDA, NiPc‐NTDA, and NiPc‐PTDA COFs. Benefiting from the π‐conjugation‐tuned linker electronic properties, NiPc‐PTDA demonstrates an outstanding 2e − ORR selectivity of 92% and a high H 2 O 2 production rate of 34.8 mol g cat −1 h −1 in a two‐electrode flow cell. Combined theoretical and experimental results support a correlation between linker electronic properties, the electronic state of the Ni centers, Ni–*OOH interaction, and the thermodynamic branching between H 2 O 2 release and further *OOH reduction. This work highlights the role of linker electronic properties in regulating catalytic centers and provides a π‐conjugation‐guided linker‐design approach for selective H 2 O 2 electrosynthesis in NiPc‐based COFs.

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Publication Details

Journal
Advanced Functional Materials
Published
2026-09-13
DOI
https://doi.org/10.1002/adfm.78307
Primary Topic
Covalent Organic Framework Applications
Type
article
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article

Electron‐Deficient Linkers Enhance H 2 O 2 Electrosynthesis in Covalent Organic Frameworks

Shuaijun Pan, Omid Mazaheri, Yang Hu, Rui Guo et al.
Advanced Functional Materials
Covalent Organic Framework Applications
article

Electron‐Deficient Linkers Enhance H 2 O 2 Electrosynthesis in Covalent Organic Frameworks

Shuaijun Pan, Omid Mazaheri, Yang Hu, Rui Guo, Zhen Liu, Hongye Xie, Laichun Zhao, Bufeng Zhang
article en

Abstract

ABSTRACT Electrocatalytic hydrogen peroxide (H 2 O 2 ) production through the two‐electron oxygen reduction reaction (2e − ORR) offers a promising route for sustainable H 2 O 2 synthesis under ambient conditions. However, the development of electrocatalysts that simultaneously exhibit high activity, selectivity, and stability remains challenging. Specifically, achieving precise control over catalytic centers remains challenging. Herein, an electron‐deficient linker engineering approach based on π‐conjugation tuning is proposed to tailor the electronic structure of nickel phthalocyanine (Ni−N 4 ) active sites in covalent organic frameworks (COFs). Three dianhydride derivatives (i.e., benzene‐1,2,4,5‐tetracarboxylic dianhydride (PMDA), 1,4,5,8‐naphthalenetetracarboxylic dianhydride (NTDA), and perylene‐3,4,9,10‐tetracarboxylic dianhydride (PTDA)) were utilized to synthesize NiPc‐PMDA, NiPc‐NTDA, and NiPc‐PTDA COFs. Benefiting from the π‐conjugation‐tuned linker electronic properties, NiPc‐PTDA demonstrates an outstanding 2e − ORR selectivity of 92% and a high H 2 O 2 production rate of 34.8 mol g cat −1 h −1 in a two‐electrode flow cell. Combined theoretical and experimental results support a correlation between linker electronic properties, the electronic state of the Ni centers, Ni–*OOH interaction, and the thermodynamic branching between H 2 O 2 release and further *OOH reduction. This work highlights the role of linker electronic properties in regulating catalytic centers and provides a π‐conjugation‐guided linker‐design approach for selective H 2 O 2 electrosynthesis in NiPc‐based COFs.

Advanced Functional Materials
The University of Melbourne (AU), Hunan University (CN)
Responsible consumption and production
Openalex Percentile: Top 24%
Covalent Organic Framework Applications
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