Boosting peroxymonosulfate activation over cyanuric acid-modified Co3O4@Fe2O3 for tetracycline degradation: insights into catalytic performance, degradation mechanism, and routes

降级(电信) 三聚氰酸 化学 Boosting(机器学习) 催化作用 机制(生物学) 四环素 化学工程 生物化学 三聚氰胺 有机化学 计算机科学 抗生素 工程类 哲学 机器学习 认识论 电信
作者
Geng Li,Guangyu Wu,Wenting Sun,Shiyu Bian,Yuwei Pan,Weinan Xing,Jiangang Han,Ming Zhang,Yudong Huang
出处
期刊:Advanced composites and hybrid materials [Springer Science+Business Media]
卷期号:8 (4) 被引量:17
标识
DOI:10.1007/s42114-025-01381-3
摘要

Photocatalytic technology combined with peroxomonosulfate (PMS) advanced oxidation shows significant potential for effectively treating various challenging pollutants. In recent years, vacancy engineering has received widespread attention due to its unique electronic structure and is also considered an effective way in enhancing catalytic performance. In this work, Co-Fe bimetallic oxide composite with oxygen vacancy (Ov)–rich structure (L-Co3O4@Fe2O3) was constructed using in situ growth and modified with cyanuric acid etching to enhance dual synergistic photocatalysis and PMS activation. The findings demonstrated that the L-Co3O4@Fe2O3/PMS/UV-LED system achieved a removal rate of 99.4% tetracycline (TC) within 30 min, surpassing that of Co3O4@Fe2O3/PMS/UV-LED system. The presence of PMS as a Lewis base was found to expedite charge separation kinetics, leading to the generation of SO4•− and •OH radicals and enabling direct TC oxidation by efficiently separated holes. In combination with DFT calculations, the polarization properties and electric field effects of TC molecule were predicted using HOMO, LUMO, and Fukui indices. Notably, 15 intermediates were identified within this system, facilitating the accurate deduction of TC degradation pathways. This research not only introduces a novel modification strategy for developing cost-effective and environmentally friendly catalysts featuring Ov but also enhances the understanding of persulfate activation mechanisms with metal-based materials.
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