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Tetracycline degradation by persulfate activated with nitrogen magnetic graphene oxide confined Fe/Co dual single-atom catalyst: Performance and degradation mechanism.

Authors :
Huang, Chenxi
Li, Meifang
Wang, Ping
Song, Shiyu
Chai, Beixia
Zhang, Meijuan
Hu, Xinjiang
Cai, Jingju
Wu, Shaohua
He, Qingyun
Source :
Journal of Environmental Chemical Engineering; Jun2023, Vol. 11 Issue 3, pN.PAG-N.PAG, 1p
Publication Year :
2023

Abstract

Tetracycline (TCN) is a typical antibiotic with ecological toxicity, which is easy to cause bacterial drug resistance. Single-atom catalysts have a broad application prospect in the remediation of antibiotic polluted water by activated persulfate (PDS), but its catalytic properties are limited because of its high surface energy and easy aggregation. Therefore, in our manuscript, a novel nitrogen doped magnetic graphene oxide confined Fe-Co dual single-atom catalyst (Fe/Co(1:1) (S) -NMGO) was prepared by one-step molten salt assisted high temperature pyrolysis. XPS and AC-HAADF-STEM analysis indicated single-atom Fe and Co existed. Fe and Co atoms were bound to the material mainly through coordination with pyridinic N and pyrrolic N. While single-atom Fe and Co were simultaneously introduced into the modified materials, the removal rate of TCN reached 93.1%, implying the significant synergistic effect of single-atom Fe and Co on TCN removal. Molten salt assisted high-temperature pyrolysis significantly improved the TCN degradation rate. In addition, this research showed that the existence of magnetite nanoparticles was beneficial to improve the separation performance of the single-atom catalysts as well as the catalytic performance. At the same time, the effects of some key parameters (Fe/Co molar ratio, catalyst dosage, PDS dosage, initial pH, coexisting anions and humic acids) on TCN degradation in Fe/Co(1:1) (S) -NMGO/PDS system were also investigated. The catalytic potential in actual water and regeneration performance of the material were also evaluated. The possible activation mechanism and degradation pathway of TCN were proposed. These findings will provide important reference for the future design and application of single-atom-involved catalysts. [Display omitted] • Fe/Co dual single-atom catalyst was prepared by molten salt assisted pyrolysis. • Molten salts could provide a high polarity environment to destroy metal-metal bond. • Single Fe and Co atoms anchored on NMGO are verified by AC-HAADF-STEM. • TCN removal rate in this system could reach 93% at low catalyzer and PDS dosage. • Free radical (SO 4 <superscript>•−</superscript> >O 2 <superscript>•−</superscript> >HO<superscript>•</superscript>) oxidation were the main degradation mechanisms. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
22133437
Volume :
11
Issue :
3
Database :
Supplemental Index
Journal :
Journal of Environmental Chemical Engineering
Publication Type :
Academic Journal
Accession number :
164346309
Full Text :
https://doi.org/10.1016/j.jece.2023.109704