Prussian blue analogue-derived CoNi@NC core-shell microspheres for peroxymonosulfate activation toward tetracycline degradation

Prussian blue analogue (PBA)-derived carbon catalysts are promising peroxymonosulfate (PMS) activators for antibiotic wastewater purification, yet their time-dependent degradation behavior still requires further evaluation. Herein, a core-shell CoNi@NC catalyst was prepared by pyrolyzing Co Ni PBA, in which Co Ni alloy nanoparticles were confined within an N-doped carbon (NC) matrix. To evaluate the tetracycline hydrochloride (TCH) degradation behavior, a temporal knowledge graph (TKG)-assisted framework was employed as a complementary prediction tool, predicting a shift of the CoNi@NC/PMS system toward high degradation efficiency intervals. In degradation experiments, the CoNi@NC/PMS system exhibited a rapid degradation trend consistent with the prediction, achieving 73.7% TCH removal within 3 min and 91.89% within 60 min. The catalyst retained 86.74% removal efficiency after four degradation cycles, and exhibited good matrix tolerance under different pH conditions and coexisting ions. Mechanistic analysis revealed that TCH degradation proceeded through a radical/non-radical synergistic pathway, in which Co/Ni redox cycles and interfacial electron transfer promoted PMS activation. The reaction products of TCH were identified, and the toxicity assessment indicated reduced phytotoxicity of the treated solution. This work provides a useful reference for developing efficient PBA-derived catalysts for PMS-based antibiotic wastewater purification.

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Publication Details

Journal
Journal of Water Process Engineering
Published
2026-09-18
DOI
https://doi.org/10.1016/j.jwpe.2026.110974
Primary Topic
Advanced oxidation water treatment
Type
article
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article

Prussian blue analogue-derived CoNi@NC core-shell microspheres for peroxymonosulfate activation toward tetracycline degradation

Meiyang Wang, Youkuo Lin, Yongjiang Hou, Shuqi Su et al.
Journal of Water Process Engineering
Advanced oxidation water treatment
article

Prussian blue analogue-derived CoNi@NC core-shell microspheres for peroxymonosulfate activation toward tetracycline degradation

Meiyang Wang, Youkuo Lin, Yongjiang Hou, Shuqi Su, Jiujiang Guo, Lan Liang, Kai Wang, Jie Guo, Jianxin Li, Bo Li, Cheng Tian
article en

Abstract

Prussian blue analogue (PBA)-derived carbon catalysts are promising peroxymonosulfate (PMS) activators for antibiotic wastewater purification, yet their time-dependent degradation behavior still requires further evaluation. Herein, a core-shell CoNi@NC catalyst was prepared by pyrolyzing Co Ni PBA, in which Co Ni alloy nanoparticles were confined within an N-doped carbon (NC) matrix. To evaluate the tetracycline hydrochloride (TCH) degradation behavior, a temporal knowledge graph (TKG)-assisted framework was employed as a complementary prediction tool, predicting a shift of the CoNi@NC/PMS system toward high degradation efficiency intervals. In degradation experiments, the CoNi@NC/PMS system exhibited a rapid degradation trend consistent with the prediction, achieving 73.7% TCH removal within 3 min and 91.89% within 60 min. The catalyst retained 86.74% removal efficiency after four degradation cycles, and exhibited good matrix tolerance under different pH conditions and coexisting ions. Mechanistic analysis revealed that TCH degradation proceeded through a radical/non-radical synergistic pathway, in which Co/Ni redox cycles and interfacial electron transfer promoted PMS activation. The reaction products of TCH were identified, and the toxicity assessment indicated reduced phytotoxicity of the treated solution. This work provides a useful reference for developing efficient PBA-derived catalysts for PMS-based antibiotic wastewater purification.

Journal of Water Process EngineeringVol. 93
Tianjin University of Science and Technology (CN), Tianjin University of Technology (CN), State Grid Corporation of China (China) (CN), Hebei University of Science and Technology (CN)
Openalex Percentile: Top 20%
Advanced oxidation water treatment
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