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Fabrication of cotton textile waste-based magnetic activated carbon using FeCl(3) activation by the Box–Behnken design: optimization and characteristics

Cotton textile waste-based magnetic activated carbon was prepared via simultaneous activation-pyrolysis using FeCl(3) as a novel activating agent. The response surface methodology based on the Box–Behnken design method was applied to optimize the preparation parameters and predict the specific surfa...

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Autores principales: Xu, Zhihua, Zhang, Tianqi, Yuan, Zhihang, Zhang, Daofang, Sun, Zhenhua, Huang, YuanXing, Chen, Weifang, Tian, Danqi, Deng, Haixuan, Zhou, Yuwei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9089844/
https://www.ncbi.nlm.nih.gov/pubmed/35558585
http://dx.doi.org/10.1039/c8ra06253f
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author Xu, Zhihua
Zhang, Tianqi
Yuan, Zhihang
Zhang, Daofang
Sun, Zhenhua
Huang, YuanXing
Chen, Weifang
Tian, Danqi
Deng, Haixuan
Zhou, Yuwei
author_facet Xu, Zhihua
Zhang, Tianqi
Yuan, Zhihang
Zhang, Daofang
Sun, Zhenhua
Huang, YuanXing
Chen, Weifang
Tian, Danqi
Deng, Haixuan
Zhou, Yuwei
author_sort Xu, Zhihua
collection PubMed
description Cotton textile waste-based magnetic activated carbon was prepared via simultaneous activation-pyrolysis using FeCl(3) as a novel activating agent. The response surface methodology based on the Box–Behnken design method was applied to optimize the preparation parameters and predict the specific surface area of the samples. The optimal activated carbon was obtained at a mass ratio of FeCl(3)/CTW, activation time and activation temperature of 1.62 : 1, 1 h and 700 °C, respectively. The experimental maximum yield and iodine adsorptive value (32.66% and 714.55 mg g(−1)) of the resultant carbon were close to that of the predicated response values (34.85% and 783.75 mg g(−1)), respectively. SEM, N(2) adsorption–desorption isotherms, XRD, PPMS, FTIR and pH(pzc) measurements were conducted to analyze the physicochemical characteristics of the optimal sample. The results showed that the carbon matrix had a high specific surface area of 837.39 m(2) g(−1) with abundant micropores and acidic surface functional groups, and the saturation magnetization (Ms) was 5.2 emu g(−1) due to the formation of Fe(3)O(4). The maximum adsorption of Cr(vi) by the carbon reached 212.77 mg g(−1). Furthermore, the addition of FeCl(3) lowered the pyrolytic carbonization temperature and inhibited the generation of volatiles in the activation-pyrolysis process. Meanwhile, the formation of Fe(2)O(3) and Fe(3)O(4) derived from FeCl(3) was beneficial for the development of vast micropores.
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spelling pubmed-90898442022-05-11 Fabrication of cotton textile waste-based magnetic activated carbon using FeCl(3) activation by the Box–Behnken design: optimization and characteristics Xu, Zhihua Zhang, Tianqi Yuan, Zhihang Zhang, Daofang Sun, Zhenhua Huang, YuanXing Chen, Weifang Tian, Danqi Deng, Haixuan Zhou, Yuwei RSC Adv Chemistry Cotton textile waste-based magnetic activated carbon was prepared via simultaneous activation-pyrolysis using FeCl(3) as a novel activating agent. The response surface methodology based on the Box–Behnken design method was applied to optimize the preparation parameters and predict the specific surface area of the samples. The optimal activated carbon was obtained at a mass ratio of FeCl(3)/CTW, activation time and activation temperature of 1.62 : 1, 1 h and 700 °C, respectively. The experimental maximum yield and iodine adsorptive value (32.66% and 714.55 mg g(−1)) of the resultant carbon were close to that of the predicated response values (34.85% and 783.75 mg g(−1)), respectively. SEM, N(2) adsorption–desorption isotherms, XRD, PPMS, FTIR and pH(pzc) measurements were conducted to analyze the physicochemical characteristics of the optimal sample. The results showed that the carbon matrix had a high specific surface area of 837.39 m(2) g(−1) with abundant micropores and acidic surface functional groups, and the saturation magnetization (Ms) was 5.2 emu g(−1) due to the formation of Fe(3)O(4). The maximum adsorption of Cr(vi) by the carbon reached 212.77 mg g(−1). Furthermore, the addition of FeCl(3) lowered the pyrolytic carbonization temperature and inhibited the generation of volatiles in the activation-pyrolysis process. Meanwhile, the formation of Fe(2)O(3) and Fe(3)O(4) derived from FeCl(3) was beneficial for the development of vast micropores. The Royal Society of Chemistry 2018-11-13 /pmc/articles/PMC9089844/ /pubmed/35558585 http://dx.doi.org/10.1039/c8ra06253f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Xu, Zhihua
Zhang, Tianqi
Yuan, Zhihang
Zhang, Daofang
Sun, Zhenhua
Huang, YuanXing
Chen, Weifang
Tian, Danqi
Deng, Haixuan
Zhou, Yuwei
Fabrication of cotton textile waste-based magnetic activated carbon using FeCl(3) activation by the Box–Behnken design: optimization and characteristics
title Fabrication of cotton textile waste-based magnetic activated carbon using FeCl(3) activation by the Box–Behnken design: optimization and characteristics
title_full Fabrication of cotton textile waste-based magnetic activated carbon using FeCl(3) activation by the Box–Behnken design: optimization and characteristics
title_fullStr Fabrication of cotton textile waste-based magnetic activated carbon using FeCl(3) activation by the Box–Behnken design: optimization and characteristics
title_full_unstemmed Fabrication of cotton textile waste-based magnetic activated carbon using FeCl(3) activation by the Box–Behnken design: optimization and characteristics
title_short Fabrication of cotton textile waste-based magnetic activated carbon using FeCl(3) activation by the Box–Behnken design: optimization and characteristics
title_sort fabrication of cotton textile waste-based magnetic activated carbon using fecl(3) activation by the box–behnken design: optimization and characteristics
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9089844/
https://www.ncbi.nlm.nih.gov/pubmed/35558585
http://dx.doi.org/10.1039/c8ra06253f
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