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Degradation of benzothiazole pollutant by sulfate radical-based advanced oxidation process
Ma, Jie1; Ding, Yi1; Gu, Chunyun1; Zhai, Guangyao1; Liu, Yanbo1; Wen, Jing1; Rong, Xun1; Luo, Chaoyi1; Qiu, Ye2; Zhang, Ping2
2021-12
Source PublicationEnvironmental Technology
ISSN0959-3330
Volume43Issue:18Pages:2834-2843
Abstract

Benzothiazole (BTH) is an aromatic heterocyclic compound with wide industrial applications. In view of its toxicity and wide environmental presence, previous efforts have been made to decompose BTH via different degradation pathways. However, due to its recalcitrant nature, conventional biological treatment methods cannot completely degrade BTH in the wastewater. In this study, sulfate radical-based advanced oxidation process (AOP) technique has been adopted to degrade BTH in aqueous phase. Persulfate (PS) was employed as radical promotor to generate sulfate radical via heat activation. Degradation of BTH by thermally activated persulfate via AOP has been experimentally evaluated in a systematic manner. Laboratory efforts have been made to examine the impact of a number of physiochemical parameters including the type of oxidants, reaction temperature, initial concentrations of PS and BTH, solution pH, and the presence of anionic species. It shows that a higher BTH degradation rate can be achieved by lowering BTH initial concentration or increasing PS concentration. Increasing solution pH or the presence of 10 mM of Cl, Br, (Formula presented.), or (Formula presented.) species can decrease BTH degradation rate. Furthermore, the primary radical(s) responsible for BTH degradation have been identified as sulfate radical at an acidic aqueous condition, and hydroxyl radical and sulfate radical combined at a basic condition. This study provides the necessary theoretical and technical foundations for BTH degradation via sulfate radical-based AOP technique. The conclusions from this study can substantially promote the field application of AOP, especially sulfate radical-based AOP technique, for BTH degradation in wastewater treatment process.

KeywordAdvanced Oxidation Benzothiazole Heat Activation Organics Wastewater
DOI10.1080/09593330.2021.1906326
URLView the original
Indexed BySCIE
Language英語English
WOS Research AreaEnvironmental Sciences & Ecology
WOS SubjectEnvironmental Sciences
WOS IDWOS:000635001600001
PublisherTAYLOR & FRANCIS LTD, 2-4 PARK SQUARE, MILTON PARK, ABINGDON OR14 4RN, OXON, ENGLAND
Scopus ID2-s2.0-85103382686
Fulltext Access
Citation statistics
Document TypeJournal article
CollectionDEPARTMENT OF CIVIL AND ENVIRONMENTAL ENGINEERING
Corresponding AuthorMa, Jie; Zhang, Ping
Affiliation1.China University of Petroleum, Beijing
2.Department of Civil and Environmental Engineering, Faculty of Science and Technology, University of Macau, Taipa, China
Corresponding Author AffilicationFaculty of Science and Technology
Recommended Citation
GB/T 7714
Ma, Jie,Ding, Yi,Gu, Chunyun,et al. Degradation of benzothiazole pollutant by sulfate radical-based advanced oxidation process[J]. Environmental Technology, 2021, 43(18), 2834-2843.
APA Ma, Jie., Ding, Yi., Gu, Chunyun., Zhai, Guangyao., Liu, Yanbo., Wen, Jing., Rong, Xun., Luo, Chaoyi., Qiu, Ye., & Zhang, Ping (2021). Degradation of benzothiazole pollutant by sulfate radical-based advanced oxidation process. Environmental Technology, 43(18), 2834-2843.
MLA Ma, Jie,et al."Degradation of benzothiazole pollutant by sulfate radical-based advanced oxidation process".Environmental Technology 43.18(2021):2834-2843.
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