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Strategy for oxygen vacancy enriched CoMn spinel oxide catalyst activated peroxodisulfate for tetracycline degradation: process, mechanism, and toxicity analysis

Antibiotic-like organic pollutants are harmful to aquatic ecosystems and seriously disrupt the ecological balance. Herein, we propose a simple and versatile method to prepare cobalt–manganese oxides with high specific surface area and abundant oxygen vacancies using low-temperature reduction crystal...

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Autores principales: Gao, Jingdan, Sun, Yonggang, Xiong, Ruijia, Ma, Yulong, Wang, Lei, Qiao, Song, Zhang, Juan, Ji, Wenxin, Li, Yuanyuan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10091099/
https://www.ncbi.nlm.nih.gov/pubmed/37063739
http://dx.doi.org/10.1039/d3ra00852e
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author Gao, Jingdan
Sun, Yonggang
Xiong, Ruijia
Ma, Yulong
Wang, Lei
Qiao, Song
Zhang, Juan
Ji, Wenxin
Li, Yuanyuan
author_facet Gao, Jingdan
Sun, Yonggang
Xiong, Ruijia
Ma, Yulong
Wang, Lei
Qiao, Song
Zhang, Juan
Ji, Wenxin
Li, Yuanyuan
author_sort Gao, Jingdan
collection PubMed
description Antibiotic-like organic pollutants are harmful to aquatic ecosystems and seriously disrupt the ecological balance. Herein, we propose a simple and versatile method to prepare cobalt–manganese oxides with high specific surface area and abundant oxygen vacancies using low-temperature reduction crystallization, which greatly facilitates the adsorption and electron transfer between the catalyst, PDS, and TC, thus accelerating the degradation of tetracycline (TC). Among them, the degradation efficiency of TC in the CoMn(2)O(4)(C)/PDS system was 99.8% in 60 min and the degradation rate remained above 90% after four cycles. The possible degradation mechanism is also discussed, where Co is the main metal active center of the catalyst and Mn plays an auxiliary catalytic role to promote the generation of reactive radicals in PDS through redox interactions between Co and Mn, where SO(4)(−)˙ is the main active species for TC degradation. Finally, the possible degradation pathways of TC are proposed and the toxicity of the intermediates is evaluated. Findings from this work will shed light on the rational design of bimetallic oxide catalysts.
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spelling pubmed-100910992023-04-13 Strategy for oxygen vacancy enriched CoMn spinel oxide catalyst activated peroxodisulfate for tetracycline degradation: process, mechanism, and toxicity analysis Gao, Jingdan Sun, Yonggang Xiong, Ruijia Ma, Yulong Wang, Lei Qiao, Song Zhang, Juan Ji, Wenxin Li, Yuanyuan RSC Adv Chemistry Antibiotic-like organic pollutants are harmful to aquatic ecosystems and seriously disrupt the ecological balance. Herein, we propose a simple and versatile method to prepare cobalt–manganese oxides with high specific surface area and abundant oxygen vacancies using low-temperature reduction crystallization, which greatly facilitates the adsorption and electron transfer between the catalyst, PDS, and TC, thus accelerating the degradation of tetracycline (TC). Among them, the degradation efficiency of TC in the CoMn(2)O(4)(C)/PDS system was 99.8% in 60 min and the degradation rate remained above 90% after four cycles. The possible degradation mechanism is also discussed, where Co is the main metal active center of the catalyst and Mn plays an auxiliary catalytic role to promote the generation of reactive radicals in PDS through redox interactions between Co and Mn, where SO(4)(−)˙ is the main active species for TC degradation. Finally, the possible degradation pathways of TC are proposed and the toxicity of the intermediates is evaluated. Findings from this work will shed light on the rational design of bimetallic oxide catalysts. The Royal Society of Chemistry 2023-04-12 /pmc/articles/PMC10091099/ /pubmed/37063739 http://dx.doi.org/10.1039/d3ra00852e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Gao, Jingdan
Sun, Yonggang
Xiong, Ruijia
Ma, Yulong
Wang, Lei
Qiao, Song
Zhang, Juan
Ji, Wenxin
Li, Yuanyuan
Strategy for oxygen vacancy enriched CoMn spinel oxide catalyst activated peroxodisulfate for tetracycline degradation: process, mechanism, and toxicity analysis
title Strategy for oxygen vacancy enriched CoMn spinel oxide catalyst activated peroxodisulfate for tetracycline degradation: process, mechanism, and toxicity analysis
title_full Strategy for oxygen vacancy enriched CoMn spinel oxide catalyst activated peroxodisulfate for tetracycline degradation: process, mechanism, and toxicity analysis
title_fullStr Strategy for oxygen vacancy enriched CoMn spinel oxide catalyst activated peroxodisulfate for tetracycline degradation: process, mechanism, and toxicity analysis
title_full_unstemmed Strategy for oxygen vacancy enriched CoMn spinel oxide catalyst activated peroxodisulfate for tetracycline degradation: process, mechanism, and toxicity analysis
title_short Strategy for oxygen vacancy enriched CoMn spinel oxide catalyst activated peroxodisulfate for tetracycline degradation: process, mechanism, and toxicity analysis
title_sort strategy for oxygen vacancy enriched comn spinel oxide catalyst activated peroxodisulfate for tetracycline degradation: process, mechanism, and toxicity analysis
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10091099/
https://www.ncbi.nlm.nih.gov/pubmed/37063739
http://dx.doi.org/10.1039/d3ra00852e
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