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Adsorption of Sb(III) from Aqueous Solution by nZVI/AC: A Magnetic Fixed-Bed Column Study

The effectiveness of nanoscale zero-valent iron(nZVI) immobilized on activated carbon (nZVI/AC) in removing antimonite (Sb(III)) from simulated contaminated water was investigated with and without a magnetic fix-bed column reactor. The experiments were all conducted in fixed-bed columns. A weak magn...

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Autores principales: Zhu, Huijie, Huang, Qiang, Shi, Mingyan, Fu, Shuai, Zhang, Xiuji, Yang, Zhe, Lu, Jianhong, Liu, Bo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8401534/
https://www.ncbi.nlm.nih.gov/pubmed/34443743
http://dx.doi.org/10.3390/nano11081912
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author Zhu, Huijie
Huang, Qiang
Shi, Mingyan
Fu, Shuai
Zhang, Xiuji
Yang, Zhe
Lu, Jianhong
Liu, Bo
author_facet Zhu, Huijie
Huang, Qiang
Shi, Mingyan
Fu, Shuai
Zhang, Xiuji
Yang, Zhe
Lu, Jianhong
Liu, Bo
author_sort Zhu, Huijie
collection PubMed
description The effectiveness of nanoscale zero-valent iron(nZVI) immobilized on activated carbon (nZVI/AC) in removing antimonite (Sb(III)) from simulated contaminated water was investigated with and without a magnetic fix-bed column reactor. The experiments were all conducted in fixed-bed columns. A weak magnetic field (WMF) was proposed to increase the exclusion of paramagnetic Sb(III) ions by nZVI/AC. The Sb(III) adsorption to the nZVI and AC surfaces, as well as the transformation of Sb(III) to Sb(V) by them, were both increased by using a WMF in nZVI/AC. The increased sequestration of Sb(III) by nZVI/AC in the presence of WMF was followed by faster nZVI corrosion and dissolution. Experiments were conducted as a function of the pH of the feed solution (pH 5.0–9.0), liquid flow rate (5–15 mL·min(−1)), starting Sb(III) concentration (0.5–1.5 mg·L(−1)), bed height nZVI/AC (10–40 cm), and starting Sb(III) concentration (0.5–1.5 mg·L(−1)). By analyzing the breakthrough curves generated by different flow rates, different pH values, different inlet Sb(III) concentrations, and different bed heights, the adsorbed amounts, equilibrium nZVI uptakes, and total Sb(III) removal percentage were calculated in relation to effluent volumes. At pH 5.0, the longest nZVI breakthrough time and maximal Sb(III) adsorption were achieved. The findings revealed that the column performed effectively at the lowest flow rate. With increasing bed height, column bed capacity and exhaustion time increased as well. Increasing the Sb(III) initial concentration from 0.5 to 1.5 mg·L(−1) resulted in the rise of adsorption bed capacity from 3.45 to 6.33 mg·g(−1).
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spelling pubmed-84015342021-08-29 Adsorption of Sb(III) from Aqueous Solution by nZVI/AC: A Magnetic Fixed-Bed Column Study Zhu, Huijie Huang, Qiang Shi, Mingyan Fu, Shuai Zhang, Xiuji Yang, Zhe Lu, Jianhong Liu, Bo Nanomaterials (Basel) Article The effectiveness of nanoscale zero-valent iron(nZVI) immobilized on activated carbon (nZVI/AC) in removing antimonite (Sb(III)) from simulated contaminated water was investigated with and without a magnetic fix-bed column reactor. The experiments were all conducted in fixed-bed columns. A weak magnetic field (WMF) was proposed to increase the exclusion of paramagnetic Sb(III) ions by nZVI/AC. The Sb(III) adsorption to the nZVI and AC surfaces, as well as the transformation of Sb(III) to Sb(V) by them, were both increased by using a WMF in nZVI/AC. The increased sequestration of Sb(III) by nZVI/AC in the presence of WMF was followed by faster nZVI corrosion and dissolution. Experiments were conducted as a function of the pH of the feed solution (pH 5.0–9.0), liquid flow rate (5–15 mL·min(−1)), starting Sb(III) concentration (0.5–1.5 mg·L(−1)), bed height nZVI/AC (10–40 cm), and starting Sb(III) concentration (0.5–1.5 mg·L(−1)). By analyzing the breakthrough curves generated by different flow rates, different pH values, different inlet Sb(III) concentrations, and different bed heights, the adsorbed amounts, equilibrium nZVI uptakes, and total Sb(III) removal percentage were calculated in relation to effluent volumes. At pH 5.0, the longest nZVI breakthrough time and maximal Sb(III) adsorption were achieved. The findings revealed that the column performed effectively at the lowest flow rate. With increasing bed height, column bed capacity and exhaustion time increased as well. Increasing the Sb(III) initial concentration from 0.5 to 1.5 mg·L(−1) resulted in the rise of adsorption bed capacity from 3.45 to 6.33 mg·g(−1). MDPI 2021-07-25 /pmc/articles/PMC8401534/ /pubmed/34443743 http://dx.doi.org/10.3390/nano11081912 Text en © 2021 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
Zhu, Huijie
Huang, Qiang
Shi, Mingyan
Fu, Shuai
Zhang, Xiuji
Yang, Zhe
Lu, Jianhong
Liu, Bo
Adsorption of Sb(III) from Aqueous Solution by nZVI/AC: A Magnetic Fixed-Bed Column Study
title Adsorption of Sb(III) from Aqueous Solution by nZVI/AC: A Magnetic Fixed-Bed Column Study
title_full Adsorption of Sb(III) from Aqueous Solution by nZVI/AC: A Magnetic Fixed-Bed Column Study
title_fullStr Adsorption of Sb(III) from Aqueous Solution by nZVI/AC: A Magnetic Fixed-Bed Column Study
title_full_unstemmed Adsorption of Sb(III) from Aqueous Solution by nZVI/AC: A Magnetic Fixed-Bed Column Study
title_short Adsorption of Sb(III) from Aqueous Solution by nZVI/AC: A Magnetic Fixed-Bed Column Study
title_sort adsorption of sb(iii) from aqueous solution by nzvi/ac: a magnetic fixed-bed column study
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8401534/
https://www.ncbi.nlm.nih.gov/pubmed/34443743
http://dx.doi.org/10.3390/nano11081912
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