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Tetracycline Adsorption Performance and Mechanism Using Calcium Hydroxide-Modified Biochars

Tetracycline is frequently found in various environments and poses significant ecological risks. Calcium hydroxide-modified biochar has shown potential as a material for removing multiple classes of pollutants from wastewater streams. The tetracycline-adsorption performance and mechanism of alkali-m...

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Autores principales: Wang, Kaifeng, Yao, Runlin, Zhang, Dongqing, Peng, Na, Zhao, Ping, Zhong, Yongming, Zhou, Haijun, Huang, Jiahui, Liu, Chen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10611203/
https://www.ncbi.nlm.nih.gov/pubmed/37888692
http://dx.doi.org/10.3390/toxics11100841
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author Wang, Kaifeng
Yao, Runlin
Zhang, Dongqing
Peng, Na
Zhao, Ping
Zhong, Yongming
Zhou, Haijun
Huang, Jiahui
Liu, Chen
author_facet Wang, Kaifeng
Yao, Runlin
Zhang, Dongqing
Peng, Na
Zhao, Ping
Zhong, Yongming
Zhou, Haijun
Huang, Jiahui
Liu, Chen
author_sort Wang, Kaifeng
collection PubMed
description Tetracycline is frequently found in various environments and poses significant ecological risks. Calcium hydroxide-modified biochar has shown potential as a material for removing multiple classes of pollutants from wastewater streams. The tetracycline-adsorption performance and mechanism of alkali-modified biochars derived from nine wastes (corn straw, rice straw, swine manure, cypress powder, wheat straw, peanut shell, walnut shell powder, soybean straw, and corncobs) were investigated in the study. Among the four alkalis tested, calcium hydroxide exhibited the most effective modification effects at a pyrolysis temperature of 500 °C. Straw biomass was most suitable to be modified by calcium hydroxide, and calcium hydroxide-modified biochar showed the highest adsorption performance for tetracycline. The maximum adsorption capacities were 8.22 mg g(−1) for pristine corn straw biochar and 93.46 mg g(−1) for calcium hydroxide-modified corn straw biochar. The tetracycline adsorption mechanism by calcium hydroxide-modified corn straw biochar involved hydrogen bonding, oxygen-containing functional groups, Ca(2+) metal complexation, and electrostatic attraction. Consequently, calcium hydroxide-modified corn straw biochar emerges as an environment-friendly, cost-effective, and efficient tetracycline adsorbent.
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spelling pubmed-106112032023-10-28 Tetracycline Adsorption Performance and Mechanism Using Calcium Hydroxide-Modified Biochars Wang, Kaifeng Yao, Runlin Zhang, Dongqing Peng, Na Zhao, Ping Zhong, Yongming Zhou, Haijun Huang, Jiahui Liu, Chen Toxics Article Tetracycline is frequently found in various environments and poses significant ecological risks. Calcium hydroxide-modified biochar has shown potential as a material for removing multiple classes of pollutants from wastewater streams. The tetracycline-adsorption performance and mechanism of alkali-modified biochars derived from nine wastes (corn straw, rice straw, swine manure, cypress powder, wheat straw, peanut shell, walnut shell powder, soybean straw, and corncobs) were investigated in the study. Among the four alkalis tested, calcium hydroxide exhibited the most effective modification effects at a pyrolysis temperature of 500 °C. Straw biomass was most suitable to be modified by calcium hydroxide, and calcium hydroxide-modified biochar showed the highest adsorption performance for tetracycline. The maximum adsorption capacities were 8.22 mg g(−1) for pristine corn straw biochar and 93.46 mg g(−1) for calcium hydroxide-modified corn straw biochar. The tetracycline adsorption mechanism by calcium hydroxide-modified corn straw biochar involved hydrogen bonding, oxygen-containing functional groups, Ca(2+) metal complexation, and electrostatic attraction. Consequently, calcium hydroxide-modified corn straw biochar emerges as an environment-friendly, cost-effective, and efficient tetracycline adsorbent. MDPI 2023-10-07 /pmc/articles/PMC10611203/ /pubmed/37888692 http://dx.doi.org/10.3390/toxics11100841 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wang, Kaifeng
Yao, Runlin
Zhang, Dongqing
Peng, Na
Zhao, Ping
Zhong, Yongming
Zhou, Haijun
Huang, Jiahui
Liu, Chen
Tetracycline Adsorption Performance and Mechanism Using Calcium Hydroxide-Modified Biochars
title Tetracycline Adsorption Performance and Mechanism Using Calcium Hydroxide-Modified Biochars
title_full Tetracycline Adsorption Performance and Mechanism Using Calcium Hydroxide-Modified Biochars
title_fullStr Tetracycline Adsorption Performance and Mechanism Using Calcium Hydroxide-Modified Biochars
title_full_unstemmed Tetracycline Adsorption Performance and Mechanism Using Calcium Hydroxide-Modified Biochars
title_short Tetracycline Adsorption Performance and Mechanism Using Calcium Hydroxide-Modified Biochars
title_sort tetracycline adsorption performance and mechanism using calcium hydroxide-modified biochars
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10611203/
https://www.ncbi.nlm.nih.gov/pubmed/37888692
http://dx.doi.org/10.3390/toxics11100841
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