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Get Free AccessAbstract Advanced oxidation processes (AOPs) leverage the generation of reactive radicals or non‐radical species, which exhibit strong oxidative potential, to effectively degrade recalcitrant pollutants. Herein, Fe 5 ‐NG is synthesized by a one‐step calcination method for the degradation of tetracycline (TC). A large nitrogen concentration enhances the activation ability of Fe 5 ‐NG toward PMS, as manifested by 100% degradation of TC within 12 min for TC concentrations below 25 mg L −1 under visible light irradiation. The Fe 5 ‐NG/PMS system degrades TC via the generation of SO 4 •− and 1 O 2 , and the presence of Fe(IV) = O species is confirmed. X‐ray photoelectron spectroscopy performed on Fe 5 ‐NG before and after the treatment shows that pyridine nitrogen and graphite nitrogen are the primary active nitrogen species responsible for PMS activation, and PMS accelerates the Fe(III)/Fe(II) redox cycle by forming abundant active nitrogen species. The underlying degradation mechanism of the Fe 5 ‐NG/PMS system is investigated, and the non‐free radical ( 1 O 2 ) pathway is dominant.
Shenghui Wang, Yanhua Song, Yansong Wu, Bin Wang, Xue Gao, Xingwang Zhu, Jinyuan Liu, Paul Kim Ho Chu (2025). Degradation of Tetracycline by Fe‐N‐Coordinated Porous Carbon Activated PMS: High Dispersibility and Stability. , 9(8), DOI: https://doi.org/10.1002/adsu.202500219.
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Type
Article
Year
2025
Authors
8
Datasets
0
Total Files
0
Language
en
DOI
https://doi.org/10.1002/adsu.202500219
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