4.7 Article

Catalytic degradation of antibiotic by Co nanoparticles encapsulated in nitrogen-doped nanocarbon derived from Co-MOF for promoted peroxymonosulfate activation

期刊

CHEMICAL ENGINEERING JOURNAL
卷 429, 期 -, 页码 -

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.cej.2021.132269

关键词

Metal-organic frameworks; Nitrogen-doped nanocarbon; Advanced oxidation processes; Peroxymonosulfate; Antibiotic degradation

资金

  1. Qing Lan Project of Jiangsu Province
  2. National Natural Science Foundation of China [21901120, 21371098]
  3. Natural Science Foundation of Jiangsu Province [BK20180514, BK20190503, BK20131314]
  4. Key Laboratory of Pesticide Environmental Assessment and Pollution Control of the Nanjing Institute of Environmental Sciences

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The research synthesized a novel magnetic material, C-Co-TN, with superior catalytic activity in degrading tetracycline hydrochloride compared to pure Co-TN, attributed to the active sites and reaction mechanism within. The study provides a possibility for utilizing MOFs to prepare excellent catalysts for water treatment and offers insights into the potential mechanisms of non-free radical pathways induced by nitrogen-doped porous carbon.
Simultaneously rational optimization and design of the structure and composition are extremely significant approaches to further improve the performances of catalysts. Herein, a novel magnetic material (C-Co-TN) of Co nanoparticles encapsulated in nitrogen-doped nanocarbon was successfully fabricated as a peroxymonosulfate (PMS) activation catalyst. The derivative C-Co-TN was obtained from one new MOFs of Co-TN (Co(TTPA)(4-Nba) (H2O)2].4-Nba.0.5DMF, TTPA = tris(4-(1H-1,2,4-triazol-1-yl)phenyl)amine) as a precursor for the first time, in which the Co ions and N-ligands of Co-TN were respectively transformed to Co nanoparticles and nitrogen-doped carbon layer via a one-step pyrolysis. The C-Co-TN with a large specific surface area (258.40 m2 g-1) displayed excellent PMS activation for tetracycline hydrochloride (TCH) degradation with 93.3% efficiency within 30 min superior to the pure Co-TN, in which the obtained kinetic constant for TCH removal in the C-Co-TN/PMS system was 3 times greater than Co-TN/PMS system. The final degradation rate of TCH was maintained above 94% in a wide pH range of 4-9, and 47% of TOC could be eliminated. The higher TCH removal efficiency was attributed to Co0 nanoparticles, Co-Nx/pyridinic N and graphitic N in C-Co-TN as catalytic active sites. The SO4.-, .OH, O2.and 1O2 were coexisted in C-Co-TN/PMS system. The work not only provides a possibility for converting MOFs into magnetic catalyst with excellent catalytic performance for water remediation, but also gives underlying insight in non-free radical pathways of heterogeneous catalysis induced by nitrogen-doped porous carbon.

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