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Construction of a phosphate-rich polyacrylonitrile fiber surface microenvironment for efficient purification of crystal violet wastewater

Wastewater purification using fibrous adsorbents has received much attention due to their high efficiency, low cost, and recyclability. In this work, phosphate modified polyacrylonitrile fiber (B-PAN(EAP)F) was prepared and used to remove cationic dyes. The B-PAN(EAP)F showed the best adsorption cap...

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Autores principales: Xu, Gang, Jin, Mengcan, Wang, Fangjia, Kalkhajeh, Yusef Kianpoor, Xiong, Qizhong, Zhang, Liangliang, Tao, Minli, Gao, Hongjian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9075811/
https://www.ncbi.nlm.nih.gov/pubmed/35542276
http://dx.doi.org/10.1039/c9ra07199g
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author Xu, Gang
Jin, Mengcan
Wang, Fangjia
Kalkhajeh, Yusef Kianpoor
Xiong, Qizhong
Zhang, Liangliang
Tao, Minli
Gao, Hongjian
author_facet Xu, Gang
Jin, Mengcan
Wang, Fangjia
Kalkhajeh, Yusef Kianpoor
Xiong, Qizhong
Zhang, Liangliang
Tao, Minli
Gao, Hongjian
author_sort Xu, Gang
collection PubMed
description Wastewater purification using fibrous adsorbents has received much attention due to their high efficiency, low cost, and recyclability. In this work, phosphate modified polyacrylonitrile fiber (B-PAN(EAP)F) was prepared and used to remove cationic dyes. The B-PAN(EAP)F showed the best adsorption capacity for crystal violet (CV) when compared with rhodamine B, methyl green, Victoria blue B, methylene blue, and neutral red. The adsorption tests revealed that the fiber possessed high adsorption efficiency and achieved semi-saturated adsorption within 15 min. The maximum adsorption capacity of 354.46 mg g(−1) as calculated by the Langmuir adsorption model was higher than many other adsorbents. Furthermore, the B-PAN(EAP)F was used to remove 210 mL of CV in a continuous-flow process with a high removal efficiency over 90%. Besides, the phosphate functionalized fiber could easily decrease the concentration of CV to below 0.5 mg L(−1) which is below the maximum effluent discharge standard of 15 mg L(−1) prescribed in China. It could also be fully recovered and easily separated from the solution to achieve re-use 10 cycles. Moreover, the adsorption mechanism indicated that the adsorption process of the fiber for CV was mainly attributed to electrostatic interaction and hydrogen bonding. In conclusion, the results suggested that the B-PAN(EAP)F characterized by its simplicity, efficiency, eco-friendliness, and reusability, could be a promising candidate for CV removal.
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spelling pubmed-90758112022-05-09 Construction of a phosphate-rich polyacrylonitrile fiber surface microenvironment for efficient purification of crystal violet wastewater Xu, Gang Jin, Mengcan Wang, Fangjia Kalkhajeh, Yusef Kianpoor Xiong, Qizhong Zhang, Liangliang Tao, Minli Gao, Hongjian RSC Adv Chemistry Wastewater purification using fibrous adsorbents has received much attention due to their high efficiency, low cost, and recyclability. In this work, phosphate modified polyacrylonitrile fiber (B-PAN(EAP)F) was prepared and used to remove cationic dyes. The B-PAN(EAP)F showed the best adsorption capacity for crystal violet (CV) when compared with rhodamine B, methyl green, Victoria blue B, methylene blue, and neutral red. The adsorption tests revealed that the fiber possessed high adsorption efficiency and achieved semi-saturated adsorption within 15 min. The maximum adsorption capacity of 354.46 mg g(−1) as calculated by the Langmuir adsorption model was higher than many other adsorbents. Furthermore, the B-PAN(EAP)F was used to remove 210 mL of CV in a continuous-flow process with a high removal efficiency over 90%. Besides, the phosphate functionalized fiber could easily decrease the concentration of CV to below 0.5 mg L(−1) which is below the maximum effluent discharge standard of 15 mg L(−1) prescribed in China. It could also be fully recovered and easily separated from the solution to achieve re-use 10 cycles. Moreover, the adsorption mechanism indicated that the adsorption process of the fiber for CV was mainly attributed to electrostatic interaction and hydrogen bonding. In conclusion, the results suggested that the B-PAN(EAP)F characterized by its simplicity, efficiency, eco-friendliness, and reusability, could be a promising candidate for CV removal. The Royal Society of Chemistry 2019-11-19 /pmc/articles/PMC9075811/ /pubmed/35542276 http://dx.doi.org/10.1039/c9ra07199g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Xu, Gang
Jin, Mengcan
Wang, Fangjia
Kalkhajeh, Yusef Kianpoor
Xiong, Qizhong
Zhang, Liangliang
Tao, Minli
Gao, Hongjian
Construction of a phosphate-rich polyacrylonitrile fiber surface microenvironment for efficient purification of crystal violet wastewater
title Construction of a phosphate-rich polyacrylonitrile fiber surface microenvironment for efficient purification of crystal violet wastewater
title_full Construction of a phosphate-rich polyacrylonitrile fiber surface microenvironment for efficient purification of crystal violet wastewater
title_fullStr Construction of a phosphate-rich polyacrylonitrile fiber surface microenvironment for efficient purification of crystal violet wastewater
title_full_unstemmed Construction of a phosphate-rich polyacrylonitrile fiber surface microenvironment for efficient purification of crystal violet wastewater
title_short Construction of a phosphate-rich polyacrylonitrile fiber surface microenvironment for efficient purification of crystal violet wastewater
title_sort construction of a phosphate-rich polyacrylonitrile fiber surface microenvironment for efficient purification of crystal violet wastewater
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9075811/
https://www.ncbi.nlm.nih.gov/pubmed/35542276
http://dx.doi.org/10.1039/c9ra07199g
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