Integration of tailored Co3O4@G with porous biochars for efficient degradation of tetracycline

降级(电信) 催化作用 化学工程 多孔性 材料科学 四环素 纳米结构 纳米颗粒 化学 复合数 咪唑酯 土霉素 化学稳定性 氧化物 四环素类抗生素 纳米复合材料 分解 多相催化 沸石咪唑盐骨架 诺氟沙星 介孔材料
作者
Meiling Zhu,Yuejie Wang,Ruirui Li,Feng Liang
出处
期刊:Frontiers in Environmental Science [Frontiers Media]
卷期号:14
标识
DOI:10.3389/fenvs.2026.1773535
摘要

Graphitic-carbon-coated metallic-catalyst-loaded porous carrier composites are widely used to degrade antibiotics by activating peroxymonosulfate (PMS). Integration of the defect sites within the graphitic shell, core–shell interface, and catalyst/carrier could enhance the “1 + 1 > 2” catalytic effect. In this work, graphitic-carbon-coated cobaltosic oxide (Co 3 O 4 @G) having a tailored nanostructure (23.3–29.7 nm for the core and 2.35–1.29 nm for the shell) was first synthesized by pulsed laser ablation. Then, porous Co 3 O 4 @G/biochars (Co 3 O 4 @G/Bs; 18.5–134.8 m 2 /g) were synthesized by crosslinking nitrogen-modified Co 3 O 4 @G with waste bamboo-pyrolyzed biochars. The degradation behaviors were evaluated as functions of the composite species, catalyst dosage, PMS concentration, tetracycline concentration, solution pH, and coexisting anions. The Co 3 O 4 @G/Bs presented high catalytic k values (0.159–0.449 min –1 ) that were 15.5–40.8 times higher than those of the individual biochars; furthermore, excellent recycling performance (92.5% remaining k value) and promising stability (8.31–2.77 μg/L of Co leakage) were observed after recycling 10 times. The favorable catalytic versatility of the Co 3 O 4 @G/Bs was verified by the efficient degradations of levofloxacin (88.6%), oxytetracycline (95.4%), and norfloxacin (92.5%). The degradation mechanism was governed by the radical-based degradation pathways involving •OH, SO 4 •– , and 1 O 2 via Co 3+ and Co 2+ recycling. The present study is expected to provide a valuable reference for degrading antibiotics by integrating tailored laser-ablated core/shell nanoparticles with biochars.
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