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Degradation of azole fungicide fluconazole in aqueous solution by thermally activated persulfate.

Authors :
Yang, Ji-Feng
Yang, Li-Ming
Zhang, Song-Bai
Ou, Li-Hui
Liu, Cheng-Bin
Zheng, Li-Ying
Yang, Yu-Feng
Ying, Guang-Guo
Luo, Sheng-Lian
Source :
Chemical Engineering Journal. Aug2017, Vol. 321, p113-122. 10p.
Publication Year :
2017

Abstract

The azole fungicide fluconazole (FLC) is persistent in conventional wastewater treatment plants, thus posing potential threats to human and ecosystem health. This study investigated the oxidation of FLC in aqueous solution by thermally activated persulfate (TAP) under different operation conditions. Higher temperature greatly improved the removal rate of FLC (0.057 h −1 for 30 °C and 0.223 h −1 for 60 °C) and the relationship between pseudo-first-order rate constant ( k obs ) and temperature fit the Arrhenius equation, with a comparatively low activation energy of 37.8 kJ mol −1 . The degradation rate constants were enhanced with the increase of PS concentration during FLC oxidation (0.072 h −1 for 1.0 mM PS and 0.50 h −1 for 20 mM PS). Solution pH influenced the k obs of FLC degradation and the highest and lowest degradation rates were obtained at pH 3 (0.51 h −1 ) and pH 5 (0.23 h −1 ), respectively. Increasing the level of natural water constituents (HCO 3 − , Cl − , and humic acid) significantly inhibited FLC degradation. Geometry optimization of FLC was performed using density functional theory (DFT) and the data indicated that the C3 atom in the benzene ring was the most reactive site. SPE-HPLC/MS/MS analysis showed that intermediate products could form during FLC oxidation by PS and the total organic carbon (TOC) results indicated that FLC could be mineralized into CO 2 and H 2 O. Accordingly, a plausible pathway for the degradation of FLC by the thermally activated PS could be proposed. The results of this study suggested that TAP is an applicable approach for the removal of azole fungicides in water. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
13858947
Volume :
321
Database :
Academic Search Index
Journal :
Chemical Engineering Journal
Publication Type :
Academic Journal
Accession number :
122645580
Full Text :
https://doi.org/10.1016/j.cej.2017.03.103