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Boosting peroxymonosulfate activation by porous single-atom catalysts with FeN4O1 configuration for efficient organic pollutants degradation.

Authors :
Chen, Ting
Zhu, Zhiliang
Shen, Xiaolin
Zhang, Hua
Qiu, Yanling
Yin, Daqiang
Source :
Chemical Engineering Journal. Dec2022:Part 4, Vol. 450, pN.PAG-N.PAG. 1p.
Publication Year :
2022

Abstract

[Display omitted] • Porous single Fe atom catalyst with FeN 4 O 1 moiety was successfully fabricated. • High spin (HS) state of Fe(II) induced abundant electron density around Fe centers. • Electron transfer occurred between FeN 4 O 1 sites, adsorbed PMS and organics. • Optimized Fe SA -N/O C/PMS system showed superior oxidation performance for organics. • Fe SA -N/O C catalyst presented well stability, reusability and applicable potential. The construction of single Fe atoms with favorable electron structures is highly desired to boost peroxymonosulfate (PMS) activation for organics degradation. Herein, this study embedded isolated Fe atoms on N, O co-doped porous carbon substrate (Fe SA -N/O C), and first found the constructed FeN 4 O 1 configuration can realize efficient PMS activation via electron transfer by inner-sphere complexation, instead of the usual reactive oxygen species (ROS) as a major role. Structural investigation showed that the FeN 4 O 1 moieties possess high content of high spin (HS) Fe(II), resulting in the delocalization of unpaired electrons around Fe centers, which is benefit to transfer electrons when reacted with PMS. EIS and LSV curves further certified the electron transfer process. Density functional theory (DFT) calculations unveiled that the FeN 4 O 1 configuration can directly adsorb O O bond of PMS, leading to electron accumulation around Fe-O 2 bond, and then ulteriorly trigger the electron shuttling in organics degradation. Consequently, the optimized Fe SA -N/O C/PMS system exhibited superior oxidation ability for various organic pollutants, and was not affected by initial pH variation (3.19 ∼ 10.89), inorganic anions (ClO 4 −, Cl− and H 2 PO 4 −) and natural organic matter (NOM) interference. Importantly, the developed system presented certain applicability in the treatment of actual water from Taihu Lake basin, China. Hence, this study not only elucidates the inner-sphere complexation-oriented electron transfer mechanism between unique FeN 4 O 1 configuration and PMS, but provides new insights into engineered single atom catalysts for wastewater purification. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
13858947
Volume :
450
Database :
Academic Search Index
Journal :
Chemical Engineering Journal
Publication Type :
Academic Journal
Accession number :
159167208
Full Text :
https://doi.org/10.1016/j.cej.2022.138469