4.7 Article

N, S co-doped magnetic mesoporous carbon nanosheets for activating peroxymonosulfate to rapidly degrade tetracycline: Synergistic effect and mechanism

Journal

JOURNAL OF HAZARDOUS MATERIALS
Volume 424, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.jhazmat.2021.127569

Keywords

N; S co-doping; Peroxymonosulfate; Tetracycline; Singlet oxygen and electron transfer

Funding

  1. Major special projects of Science and Technology Department of Sichuan Province, China [2020ZDZX0020]
  2. Key R&D Program from the Department of Science and Technology of Sichuan Province, China [2019YFG0056, 2019YFG0443, 2019YFG0035]

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A novel N, S co-doped magnetic mesoporous carbon nanosheets were prepared in this study, demonstrating high degradation efficiency for tetracycline within 10 minutes due to non-radical pathway, with pyridinic N as the main active site.
Heteroatoms doped carbon materials are widely used in the advanced oxidation process (AOPs) to remove organic pollutants in water due to the synergies effect between different heteroatoms. In this study, a novel kind of N, S co-doped magnetic mesoporous carbon nanosheets (Fe@NS-C) was prepared by simple one-step pyrolysis. Further, the influence of doping amount of S (L-methionine) and N (melamine) on catalytic activity was studied, the optimized sample Fe@NS-C-2-12/PMS showed a satisfying degradation ( 91.07%) for high concentrations of tetracycline (80 mg/L TC) in 10 min, which was attributed to the proper ratio of S content to N content (S(at.%)/ N(at.%) = 0.2097) in the sample could better play its synergistic effect by XPS analysis. The Fe@NS-C-2-12/ PMS system also exhibited satisfactory degradation effects in a wide pH range (3-10) and the existence of inorganic ions and humic acid. Then, the degradation mechanisms were mainly through the non-radical pathway (1O2 and electron transfer) and the major active sites were pyridinic N compared to thiophene S, C--O, and FeNx. This study could inspire the design of high-performance active and low-cost heteroatomic doping nanomagnetic catalysts for PMS-based waste treatment.

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