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Synthesis of Fe(2)SiO(4)-Fe(7)Co(3) Nanocomposite Dispersed in the Mesoporous SBA-15: Application as Magnetically Separable Adsorbent

The mixture containing alloy and oxide with iron-based phases has shown interesting properties compared to the isolated species and the synergy between the phases has shown positive effect on dye adsorption. This paper describes the synthesis of Fe(2)SiO(4)-Fe(7)Co(3)-based nanocomposite dispersed i...

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Autores principales: da Silva, Monickarla Teixeira Pegado, Barbosa, Felipe Fernandes, Morales Torre, Marco Antonio, Villarroel-Rocha, Jhonny, Sapag, Karim, Pergher, Sibele B. C., Braga, Tiago Pinheiro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7071072/
https://www.ncbi.nlm.nih.gov/pubmed/32102442
http://dx.doi.org/10.3390/molecules25041016
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author da Silva, Monickarla Teixeira Pegado
Barbosa, Felipe Fernandes
Morales Torre, Marco Antonio
Villarroel-Rocha, Jhonny
Sapag, Karim
Pergher, Sibele B. C.
Braga, Tiago Pinheiro
author_facet da Silva, Monickarla Teixeira Pegado
Barbosa, Felipe Fernandes
Morales Torre, Marco Antonio
Villarroel-Rocha, Jhonny
Sapag, Karim
Pergher, Sibele B. C.
Braga, Tiago Pinheiro
author_sort da Silva, Monickarla Teixeira Pegado
collection PubMed
description The mixture containing alloy and oxide with iron-based phases has shown interesting properties compared to the isolated species and the synergy between the phases has shown positive effect on dye adsorption. This paper describes the synthesis of Fe(2)SiO(4)-Fe(7)Co(3)-based nanocomposite dispersed in Santa Barbara Amorphous (SBA)-15 and its application in dye adsorption followed by magnetic separation. Thus, it was studied the variation of reduction temperature and amount of hydrogen used in synthesis and the effect of these parameters on the physicochemical properties of the iron and cobalt based oxide/alloy mixture, as well as the methylene blue adsorption capacity. The XRD and Mössbauer results, along with the temperature-programmed reduction (TPR) profiles, confirmed the formation of Fe(2)SiO(4)-Fe(7)Co(3)-based nanocomposites. Low-angle XRD, N(2) isotherms, and TEM images show the formation of the SBA-15 based mesoporous support with a high surface area (640 m(2)/g). Adsorption tests confirmed that the material reduced at 700 °C using 2% of H(2) presented the highest adsorption capacity (49 mg/g). The nanocomposites can be easily separated from the dispersion by applying an external magnetic field. The interaction between the dye and the nanocomposite occurs mainly by π-π interactions and the mixture of the Fe(2)SiO(4) and Fe(7)Co(3) leads to a synergistic effect, which favor the adsorption.
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spelling pubmed-70710722020-03-19 Synthesis of Fe(2)SiO(4)-Fe(7)Co(3) Nanocomposite Dispersed in the Mesoporous SBA-15: Application as Magnetically Separable Adsorbent da Silva, Monickarla Teixeira Pegado Barbosa, Felipe Fernandes Morales Torre, Marco Antonio Villarroel-Rocha, Jhonny Sapag, Karim Pergher, Sibele B. C. Braga, Tiago Pinheiro Molecules Article The mixture containing alloy and oxide with iron-based phases has shown interesting properties compared to the isolated species and the synergy between the phases has shown positive effect on dye adsorption. This paper describes the synthesis of Fe(2)SiO(4)-Fe(7)Co(3)-based nanocomposite dispersed in Santa Barbara Amorphous (SBA)-15 and its application in dye adsorption followed by magnetic separation. Thus, it was studied the variation of reduction temperature and amount of hydrogen used in synthesis and the effect of these parameters on the physicochemical properties of the iron and cobalt based oxide/alloy mixture, as well as the methylene blue adsorption capacity. The XRD and Mössbauer results, along with the temperature-programmed reduction (TPR) profiles, confirmed the formation of Fe(2)SiO(4)-Fe(7)Co(3)-based nanocomposites. Low-angle XRD, N(2) isotherms, and TEM images show the formation of the SBA-15 based mesoporous support with a high surface area (640 m(2)/g). Adsorption tests confirmed that the material reduced at 700 °C using 2% of H(2) presented the highest adsorption capacity (49 mg/g). The nanocomposites can be easily separated from the dispersion by applying an external magnetic field. The interaction between the dye and the nanocomposite occurs mainly by π-π interactions and the mixture of the Fe(2)SiO(4) and Fe(7)Co(3) leads to a synergistic effect, which favor the adsorption. MDPI 2020-02-24 /pmc/articles/PMC7071072/ /pubmed/32102442 http://dx.doi.org/10.3390/molecules25041016 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
da Silva, Monickarla Teixeira Pegado
Barbosa, Felipe Fernandes
Morales Torre, Marco Antonio
Villarroel-Rocha, Jhonny
Sapag, Karim
Pergher, Sibele B. C.
Braga, Tiago Pinheiro
Synthesis of Fe(2)SiO(4)-Fe(7)Co(3) Nanocomposite Dispersed in the Mesoporous SBA-15: Application as Magnetically Separable Adsorbent
title Synthesis of Fe(2)SiO(4)-Fe(7)Co(3) Nanocomposite Dispersed in the Mesoporous SBA-15: Application as Magnetically Separable Adsorbent
title_full Synthesis of Fe(2)SiO(4)-Fe(7)Co(3) Nanocomposite Dispersed in the Mesoporous SBA-15: Application as Magnetically Separable Adsorbent
title_fullStr Synthesis of Fe(2)SiO(4)-Fe(7)Co(3) Nanocomposite Dispersed in the Mesoporous SBA-15: Application as Magnetically Separable Adsorbent
title_full_unstemmed Synthesis of Fe(2)SiO(4)-Fe(7)Co(3) Nanocomposite Dispersed in the Mesoporous SBA-15: Application as Magnetically Separable Adsorbent
title_short Synthesis of Fe(2)SiO(4)-Fe(7)Co(3) Nanocomposite Dispersed in the Mesoporous SBA-15: Application as Magnetically Separable Adsorbent
title_sort synthesis of fe(2)sio(4)-fe(7)co(3) nanocomposite dispersed in the mesoporous sba-15: application as magnetically separable adsorbent
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7071072/
https://www.ncbi.nlm.nih.gov/pubmed/32102442
http://dx.doi.org/10.3390/molecules25041016
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