Issue 5, 2021

Insight into bicarbonate involved efficient heterogeneous Fenton-like degradation of sulfamethoxazole over a CuFeO2 based composite under alkaline conditions

Abstract

The performance of the Fenton reaction under alkaline conditions is important to promote its application in practical water treatment. In this study, a sulfide doped mesoporous carbon (SC) and CuFeO2 composite (SC@CuFeO2) was prepared and its Fenton-like activity was evaluated by the degradation of sulfamethoxazole (SMX) in an alkaline solution especially in the presence of bicarbonate. The results indicated that 93% of SMX was efficiently degraded over SC@CuFeO2 at pH 8.7 with 15 mM HCO3 in water. In comparison, the SMX removal efficiency was only about 20% without HCO3. Furthermore, the introduction of SC can indeed improve the Fenton activity of CuFeO2. For instance, the removal efficiency of SMX over CuFeO2 and SC@CuFeO2 was 80% and 70%, respectively, under the same conditions. Based on the characterization results, electron paramagnetic resonance spectra, probe experiments and ˙OH radicals' quantitative measurement, more radical production especially the transformation processes involving reactive oxygen species (˙OH, O2˙ CO3˙ and 1O2) were responsible for the enhanced SMX degradation over SC@CuFeO2 under alkaline conditions. Finally, the intermediates of SMX degradation were detected by GC-MS/MS and the degradation pathway was discussed. These findings suggest that the effect of the water matrix on the oxidation efficiency of the Fenton reaction should be considered in real water treatment.

Graphical abstract: Insight into bicarbonate involved efficient heterogeneous Fenton-like degradation of sulfamethoxazole over a CuFeO2 based composite under alkaline conditions

Supplementary files

Article information

Article type
Paper
Submitted
16 Jan 2021
Accepted
06 Apr 2021
First published
06 Apr 2021

Environ. Sci.: Nano, 2021,8, 1296-1307

Insight into bicarbonate involved efficient heterogeneous Fenton-like degradation of sulfamethoxazole over a CuFeO2 based composite under alkaline conditions

C. Dai, X. Tian, S. Feng, Y. Nie, Y. Li and L. Lu, Environ. Sci.: Nano, 2021, 8, 1296 DOI: 10.1039/D1EN00055A

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