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Bi(12)O(17)Cl(2)/(BiO)(2)CO(3) Nanocomposite Materials for Pollutant Adsorption and Degradation: Modulation of the Functional Properties by Composition Tailoring

[Image: see text] Bi(12)O(17)Cl(2)/(BiO)(2)CO(3) nanocomposite materials were studied as bifunctional systems for depuration of wastewater. They are able to efficiently adsorb and decompose rhodamine B (RhB) and methyl orange (MO), used as model pollutants. Bi(12)O(17)Cl(2)/(BiO)(2)CO(3) nanocomposi...

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Autores principales: Mian, Federica, Bottaro, Gregorio, Rancan, Marzio, Pezzato, Luigi, Gombac, Valentina, Fornasiero, Paolo, Armelao, Lidia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2017
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6645116/
https://www.ncbi.nlm.nih.gov/pubmed/31457238
http://dx.doi.org/10.1021/acsomega.7b01125
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author Mian, Federica
Bottaro, Gregorio
Rancan, Marzio
Pezzato, Luigi
Gombac, Valentina
Fornasiero, Paolo
Armelao, Lidia
author_facet Mian, Federica
Bottaro, Gregorio
Rancan, Marzio
Pezzato, Luigi
Gombac, Valentina
Fornasiero, Paolo
Armelao, Lidia
author_sort Mian, Federica
collection PubMed
description [Image: see text] Bi(12)O(17)Cl(2)/(BiO)(2)CO(3) nanocomposite materials were studied as bifunctional systems for depuration of wastewater. They are able to efficiently adsorb and decompose rhodamine B (RhB) and methyl orange (MO), used as model pollutants. Bi(12)O(17)Cl(2)/(BiO)(2)CO(3) nanocomposites were synthesized at room temperature and ambient pressure by means of controlled hydrolysis of BiCl(3) in the presence of a surfactant (Brij 76). Cold treatments of the pristine samples with UV light or thermal annealing at different temperatures (370–500 °C) and atmospheres (air, Ar/30% O(2)) were adopted to modulate the relative amounts of Bi(12)O(17)Cl(2)/(BiO)(2)CO(3) and hence the morphology, surface area, ζ-potential, optical absorption in the visible range, and the adsorption/degradation of pollutants. The best performance was achieved by (BiO)(2)CO(3)-rich samples, which adsorbed 80% of MO and decomposed the remaining 20% by visible light photocatalysis. Irrespective of the dye, all of the samples were able to almost complete the adsorption step within 10 min contact time. Bi(12)O(17)Cl(2)-rich composite materials displayed a lower adsorption ability, but thanks to the stronger absorption in the visible range they behaved as more effective photocatalysts. The obtained results evidenced the ability of the employed strategy to modulate sample properties in a wide range, thus pointing out the effectiveness of this approach for the synthesis of multifunctional inorganic materials for environmental remediation.
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spelling pubmed-66451162019-08-27 Bi(12)O(17)Cl(2)/(BiO)(2)CO(3) Nanocomposite Materials for Pollutant Adsorption and Degradation: Modulation of the Functional Properties by Composition Tailoring Mian, Federica Bottaro, Gregorio Rancan, Marzio Pezzato, Luigi Gombac, Valentina Fornasiero, Paolo Armelao, Lidia ACS Omega [Image: see text] Bi(12)O(17)Cl(2)/(BiO)(2)CO(3) nanocomposite materials were studied as bifunctional systems for depuration of wastewater. They are able to efficiently adsorb and decompose rhodamine B (RhB) and methyl orange (MO), used as model pollutants. Bi(12)O(17)Cl(2)/(BiO)(2)CO(3) nanocomposites were synthesized at room temperature and ambient pressure by means of controlled hydrolysis of BiCl(3) in the presence of a surfactant (Brij 76). Cold treatments of the pristine samples with UV light or thermal annealing at different temperatures (370–500 °C) and atmospheres (air, Ar/30% O(2)) were adopted to modulate the relative amounts of Bi(12)O(17)Cl(2)/(BiO)(2)CO(3) and hence the morphology, surface area, ζ-potential, optical absorption in the visible range, and the adsorption/degradation of pollutants. The best performance was achieved by (BiO)(2)CO(3)-rich samples, which adsorbed 80% of MO and decomposed the remaining 20% by visible light photocatalysis. Irrespective of the dye, all of the samples were able to almost complete the adsorption step within 10 min contact time. Bi(12)O(17)Cl(2)-rich composite materials displayed a lower adsorption ability, but thanks to the stronger absorption in the visible range they behaved as more effective photocatalysts. The obtained results evidenced the ability of the employed strategy to modulate sample properties in a wide range, thus pointing out the effectiveness of this approach for the synthesis of multifunctional inorganic materials for environmental remediation. American Chemical Society 2017-10-02 /pmc/articles/PMC6645116/ /pubmed/31457238 http://dx.doi.org/10.1021/acsomega.7b01125 Text en Copyright © 2017 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Mian, Federica
Bottaro, Gregorio
Rancan, Marzio
Pezzato, Luigi
Gombac, Valentina
Fornasiero, Paolo
Armelao, Lidia
Bi(12)O(17)Cl(2)/(BiO)(2)CO(3) Nanocomposite Materials for Pollutant Adsorption and Degradation: Modulation of the Functional Properties by Composition Tailoring
title Bi(12)O(17)Cl(2)/(BiO)(2)CO(3) Nanocomposite Materials for Pollutant Adsorption and Degradation: Modulation of the Functional Properties by Composition Tailoring
title_full Bi(12)O(17)Cl(2)/(BiO)(2)CO(3) Nanocomposite Materials for Pollutant Adsorption and Degradation: Modulation of the Functional Properties by Composition Tailoring
title_fullStr Bi(12)O(17)Cl(2)/(BiO)(2)CO(3) Nanocomposite Materials for Pollutant Adsorption and Degradation: Modulation of the Functional Properties by Composition Tailoring
title_full_unstemmed Bi(12)O(17)Cl(2)/(BiO)(2)CO(3) Nanocomposite Materials for Pollutant Adsorption and Degradation: Modulation of the Functional Properties by Composition Tailoring
title_short Bi(12)O(17)Cl(2)/(BiO)(2)CO(3) Nanocomposite Materials for Pollutant Adsorption and Degradation: Modulation of the Functional Properties by Composition Tailoring
title_sort bi(12)o(17)cl(2)/(bio)(2)co(3) nanocomposite materials for pollutant adsorption and degradation: modulation of the functional properties by composition tailoring
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6645116/
https://www.ncbi.nlm.nih.gov/pubmed/31457238
http://dx.doi.org/10.1021/acsomega.7b01125
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