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Enhanced Generation of Fe(IV)-Oxo Species via Chlorite Activation in Nanoconfined Covalent Organic Frameworks for Hypersaline Wastewater Decontamination.

Created on 27 Jul 2026

Authors

Zhenxi Yuan, Muke Lin, Zhuocheng Liang, Zhipeng Zhang, Keyu Chen, Rumeng Zhang, Yimu Jiao, Jingyun Fang, Dehua Xia

Published in

Environmental science & technology. Jul 27, 2026. Epub Jul 27, 2026.

Abstract

Heterogeneous radical-dominated advanced oxidation processes (AOPs) remain severely restricted in hypersaline wastewater matrices due to the interference of coexisting ions and natural organic matter (NOM). Herein, we propose a nonradical high-valent metal-oxo (HVM)-driven oxidation during chlorite activation for decontamination. By constructing a series of transition metal (Fe, Co and Mn) atomic sites into a bipyridine-based covalent organic framework (Bpy-COF), the experiments and theoretical calculations unravel the intensified mechanism that this design confers an enhanced confined effect toward accelerating chlorite diffusion (1.64 × 10-11 m2 s-1) and mass transfer into spatial nanopore channels (22-36 Å), further inducing a stronger molecular chlorite adsorption (Eads = -2.29 eV) upon Fe sites with a higher d-band center to facilitate Fe(IV)═O generation. This atomic-level nanoconfinement simultaneously integrates a size-sieving effect to block large molecular NOMs in nanoreactors, synergistically causing anti-inference against high concentrations of Cl- and organic matrices. Consequently, Fe-Bpy-COF nanoreactors achieve efficient selective degradation of electron-enriched pollutants, especially kobs of sulfamethoxazole (SMX) degradation at 0.1442 min-1, exhibiting a robust resilience to hypersaline and realistic water conditions. This study highlights the pivotal role of the nanoscale COF reactor design and provides novel insights into HVM-mediated decontamination with anti-interference in practical hypersaline wastewater.

PMID:
42504589
Bibliographic data and abstract were imported from PubMed on 27 Jul 2026.

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