Molecular Space-Charge Layering in Ionic Covalent Organic Frameworks for Unidirectional Charge Transfer toward Efficient H2O2 Photosynthesis

Abstract Solar-driven hydrogen peroxide (H2O2) production over covalent organic frameworks (COFs) represents a promising sustainable paradigm, yet its efficiency is severely restricted by formidable exciton recombination. Herein, we employed a solvent-free melt polymerization method to synthesize a highly crystalline sp2 carbon-linked ionic COF, designated as TMB-COF-Br. Incorporating N+-functionalized pyridine units constructed as electron-withdrawing centers, a robust molecular space-charge layer was successfully engineered within the pristine skeleton. The tailored electrostatic environment functioned as an intramolecular charge-rectifying valve along the sp2 carbon-linked conjugation, which significantly promoted electron/hole dissociation and enabled directional charge transport, thereby markedly boosting photocatalytic H2O2 production. Furthermore, the localized electropositive microenvironment effectively stabilized the crucial *OOH intermediate via electrostatic interactions. Consequently, TMB-COF-Br achieved a remarkable H2O2 photosynthesis rate of 5770 μmol·g–1·h–1 at pH = 3 without any sacrificial agents, markedly outperforming the nonionized COF. This work unveils the fundamental role of molecular space-charge layers in gating charge transfer in supramolecular systems, providing a powerful paradigm for designing high-efficiency photocatalysts.

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Journal
ACS Nano
Published
2026-10-01
DOI
https://doi.org/10.1021/acsnano.6c11167
Primary Topic
Covalent Organic Framework Applications
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article
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article

Molecular Space-Charge Layering in Ionic Covalent Organic Frameworks for Unidirectional Charge Transfer toward Efficient H2O2 Photosynthesis

Gaoyi Xie, Jiamin Liu, Li’an Hou, Huiyin Li et al.
ACS Nano
Covalent Organic Framework Applications
article

Molecular Space-Charge Layering in Ionic Covalent Organic Frameworks for Unidirectional Charge Transfer toward Efficient H2O2 Photosynthesis

Gaoyi Xie, Jiamin Liu, Li’an Hou, Huiyin Li, Linxiao Hou, Bin Wang, Chao Yang, Jiahui Yan
article en

Abstract

Abstract Solar-driven hydrogen peroxide (H2O2) production over covalent organic frameworks (COFs) represents a promising sustainable paradigm, yet its efficiency is severely restricted by formidable exciton recombination. Herein, we employed a solvent-free melt polymerization method to synthesize a highly crystalline sp2 carbon-linked ionic COF, designated as TMB-COF-Br. Incorporating N+-functionalized pyridine units constructed as electron-withdrawing centers, a robust molecular space-charge layer was successfully engineered within the pristine skeleton. The tailored electrostatic environment functioned as an intramolecular charge-rectifying valve along the sp2 carbon-linked conjugation, which significantly promoted electron/hole dissociation and enabled directional charge transport, thereby markedly boosting photocatalytic H2O2 production. Furthermore, the localized electropositive microenvironment effectively stabilized the crucial *OOH intermediate via electrostatic interactions. Consequently, TMB-COF-Br achieved a remarkable H2O2 photosynthesis rate of 5770 μmol·g–1·h–1 at pH = 3 without any sacrificial agents, markedly outperforming the nonionized COF. This work unveils the fundamental role of molecular space-charge layers in gating charge transfer in supramolecular systems, providing a powerful paradigm for designing high-efficiency photocatalysts.

ACS Nano
Guizhou University (CN), Beijing Normal University (CN), Dongguan University of Technology (CN), Wuyi University (CN), Wuyi University (CN)
Responsible consumption and production
Openalex Percentile: Top 26%
Covalent Organic Framework Applications
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