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Enhanced Arsenic (III and V) Removal in Anoxic Environments by Hierarchically Structured Citrate/FeCO(3) Nanocomposites

Novel citrate/FeCO(3) nanocomposites (CF-NCs) were synthesized for effective arsenic (III and V) sorption with constant addition of Fe(2+) into HCO(3)(−) solution in the presence of citrate. This paper is the first report on the formation of CF-NCs, and in this study we investigate the mechanisms of...

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Autores principales: Lee, Seon Yong, Kim, YoungJae, Chang, Bongsu, Lee, Young Jae
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7558564/
https://www.ncbi.nlm.nih.gov/pubmed/32911667
http://dx.doi.org/10.3390/nano10091773
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author Lee, Seon Yong
Kim, YoungJae
Chang, Bongsu
Lee, Young Jae
author_facet Lee, Seon Yong
Kim, YoungJae
Chang, Bongsu
Lee, Young Jae
author_sort Lee, Seon Yong
collection PubMed
description Novel citrate/FeCO(3) nanocomposites (CF-NCs) were synthesized for effective arsenic (III and V) sorption with constant addition of Fe(2+) into HCO(3)(−) solution in the presence of citrate. This paper is the first report on the formation of CF-NCs, and in this study we investigate the mechanisms of arsenic uptake by the sorbent under anoxic conditions through various solid- and liquid-phase spectroscopic methods, including X-ray absorption spectroscopy. In CF-NCs, citrate was found to be incorporated into the structure of siderite (up to 17.94%) through (Fe(2+)citrate)(−) complexes. The crystal morphology of rhombohedral siderite was changed into hierarchically nanostructured spherical aggregates composed of several sheet-like crystals, which improved the surface reactivity in the presence of sufficient citrate. Compared to pure siderite (15.2%), enhanced removal of As(III) in the range of 19.3% to 88.2% was observed, depending on the amount of incorporated citrate. The maximum sorption capacities of CF-NCs for As(III) and As(V) were 188.97 and 290.22 mg/g, respectively, which are much higher than those of previously reported siderite-based adsorbents. It was found that arsenic (III and V) sorption on CF-NCs occurred via bidentate corner-sharing surface complexation, predominantly without changes in the arsenic oxidation states. These results suggest that arsenic (III and V) can be attenuated by siderite in anoxic environments, and this attenuation can be even more effective when siderite is modified by incorporation of organic compounds such as citrate.
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spelling pubmed-75585642020-10-26 Enhanced Arsenic (III and V) Removal in Anoxic Environments by Hierarchically Structured Citrate/FeCO(3) Nanocomposites Lee, Seon Yong Kim, YoungJae Chang, Bongsu Lee, Young Jae Nanomaterials (Basel) Article Novel citrate/FeCO(3) nanocomposites (CF-NCs) were synthesized for effective arsenic (III and V) sorption with constant addition of Fe(2+) into HCO(3)(−) solution in the presence of citrate. This paper is the first report on the formation of CF-NCs, and in this study we investigate the mechanisms of arsenic uptake by the sorbent under anoxic conditions through various solid- and liquid-phase spectroscopic methods, including X-ray absorption spectroscopy. In CF-NCs, citrate was found to be incorporated into the structure of siderite (up to 17.94%) through (Fe(2+)citrate)(−) complexes. The crystal morphology of rhombohedral siderite was changed into hierarchically nanostructured spherical aggregates composed of several sheet-like crystals, which improved the surface reactivity in the presence of sufficient citrate. Compared to pure siderite (15.2%), enhanced removal of As(III) in the range of 19.3% to 88.2% was observed, depending on the amount of incorporated citrate. The maximum sorption capacities of CF-NCs for As(III) and As(V) were 188.97 and 290.22 mg/g, respectively, which are much higher than those of previously reported siderite-based adsorbents. It was found that arsenic (III and V) sorption on CF-NCs occurred via bidentate corner-sharing surface complexation, predominantly without changes in the arsenic oxidation states. These results suggest that arsenic (III and V) can be attenuated by siderite in anoxic environments, and this attenuation can be even more effective when siderite is modified by incorporation of organic compounds such as citrate. MDPI 2020-09-08 /pmc/articles/PMC7558564/ /pubmed/32911667 http://dx.doi.org/10.3390/nano10091773 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Lee, Seon Yong
Kim, YoungJae
Chang, Bongsu
Lee, Young Jae
Enhanced Arsenic (III and V) Removal in Anoxic Environments by Hierarchically Structured Citrate/FeCO(3) Nanocomposites
title Enhanced Arsenic (III and V) Removal in Anoxic Environments by Hierarchically Structured Citrate/FeCO(3) Nanocomposites
title_full Enhanced Arsenic (III and V) Removal in Anoxic Environments by Hierarchically Structured Citrate/FeCO(3) Nanocomposites
title_fullStr Enhanced Arsenic (III and V) Removal in Anoxic Environments by Hierarchically Structured Citrate/FeCO(3) Nanocomposites
title_full_unstemmed Enhanced Arsenic (III and V) Removal in Anoxic Environments by Hierarchically Structured Citrate/FeCO(3) Nanocomposites
title_short Enhanced Arsenic (III and V) Removal in Anoxic Environments by Hierarchically Structured Citrate/FeCO(3) Nanocomposites
title_sort enhanced arsenic (iii and v) removal in anoxic environments by hierarchically structured citrate/feco(3) nanocomposites
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7558564/
https://www.ncbi.nlm.nih.gov/pubmed/32911667
http://dx.doi.org/10.3390/nano10091773
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