Linkage-Enabled π-Conjugation Engineering in an Oxime-Based Nickel Covalent Organic Framework Unlocks Efficient Oxygen Activation

Abstract

Boosting the generation of reactive oxygen species by photocatalytic oxygen activation is pivotal, but a fundamental challenge. Oxime-based metal covalent organic frameworks (MCOFs) are particularly attractive for their redox activity and electronic coupling between metal centers and organic linkers, where linkage chemistry may play a key role in modulating π-conjugation and oxygen activation efficiency. Herein, we demonstrate how linkage engineering unlocks the photocatalytic potential of oxime-based MCOFs. Two nickel-based MCOFs (I-Ni-COF and NQ-Ni-COF) sharing identical building blocks but differing in linkage chemistry-imine versus non-substituted quinoline-were designed and synthesized. The quinoline linkage in NQ-Ni-COF extends π-conjugation, narrowing the bandgap and enhancing visible-light absorption, while also improving charge separation and transfer dynamics. These attributes empower NQ-Ni-COF with superior oxygen activation capability, leading to abundant reactive oxygen species (ROS) generation and highly efficient photocatalytic degradation of ciprofloxacin (CIP). Specially, NQ-Ni-COF achieves 92.9% removal of 50 mg L -1 CIP in 60 min under visible light-drastically outperforming I-Ni-COF (24.2%), and exhibits a ninefold enhancement in the degradation rate constant. The material also exhibits excellent stability and recyclability. Mechanistic studies elucidate the role of various ROS and propose degradation pathways.

Supplementary files

Article information

Article type
Paper
Submitted
23 Feb 2026
Accepted
02 Jun 2026
First published
09 Jun 2026

J. Mater. Chem. A, 2026, Accepted Manuscript

Linkage-Enabled π-Conjugation Engineering in an Oxime-Based Nickel Covalent Organic Framework Unlocks Efficient Oxygen Activation

D. Huang, X. Zhao, H. Pang, H. Chen, Y. Li, D. Li, L. Gao, M. Lei, L. Fu and Y. Xiang, J. Mater. Chem. A, 2026, Accepted Manuscript , DOI: 10.1039/D6TA01606E

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