Catalytic ozonation of sulfamethoxazole using low-cost natural silicate ore supported FeO: influencing factors, reaction mechanisms and degradation pathways

A low-cost natural silicate ore supported Fe 2 O 3 (FeSO) was synthesized for catalytic ozonation of sulfamethoxazole (SMX). XRD, SEM-EDS, BET, FTIR and XPS results of the FeSO catalyst confirmed that the natural silicate ore was successfully modified with iron oxide. The effects of key factors, suc...

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Veröffentlicht in:RSC advances 2023-01, Vol.13 (3), p.196-1913
Hauptverfasser: Luo, Lisha, Sun, Zhiyu, Chen, Yuxi, Zhang, Hui, Sun, Yinkun, Lu, Dongwei, Ma, Jun
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Zusammenfassung:A low-cost natural silicate ore supported Fe 2 O 3 (FeSO) was synthesized for catalytic ozonation of sulfamethoxazole (SMX). XRD, SEM-EDS, BET, FTIR and XPS results of the FeSO catalyst confirmed that the natural silicate ore was successfully modified with iron oxide. The effects of key factors, such as catalyst dosage, initial solution pH, reaction temperature, inorganic anions and initial concentration, on ozonation degradation were systemically investigated. The degradation rate of SMX (20 mg L −1 ) was 88.1% after 30 min, compared with only 35.1% SMX degradation rate in the absence of the catalyst, and the total organic carbon (TOC) removal reached 49.1% after 60 min. Reaction mechanisms revealed that surface hydroxyl groups of FeSO were a critical factor for hydroxyl radical (&z.rad;OH) production leading to fast SMX degradation in the ozone decomposition process. The degradation products were detected, and the possible pathways of SMX were then proposed. This study provides guidance for preparing a low-cost catalyst and analyzing the degradation products and pathways of SMX in the ozonation process, which is of significance in practical industrial applications. FeSO was prepared using an impregnation method, and showed remarkable ozonation catalytic activity for the degradation of sulfamethoxazole, which followed &z.rad;OH production mechanism.
ISSN:2046-2069
DOI:10.1039/d2ra06714e