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Mesoporous Cobalt Ferrite Nanosystems Obtained by Surfactant-Assisted Hydrothermal Method: Tuning Morpho-structural and Magnetic Properties via pH-Variation

A facile and cheap surfactant-assisted hydrothermal method was used to prepare mesoporous cobalt ferrite nanosystems with BET surface area up to 151 m(2)/g. These mesostructures with high BET surface areas and pore sizes are made from assemblies of nanoparticles (NPs) with average sizes between 7.8...

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Autores principales: Palade, Petru, Comanescu, Cezar, Kuncser, Andrei, Berger, Daniela, Matei, Cristian, Iacob, Nicusor, Kuncser, Victor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7153623/
https://www.ncbi.nlm.nih.gov/pubmed/32155937
http://dx.doi.org/10.3390/nano10030476
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author Palade, Petru
Comanescu, Cezar
Kuncser, Andrei
Berger, Daniela
Matei, Cristian
Iacob, Nicusor
Kuncser, Victor
author_facet Palade, Petru
Comanescu, Cezar
Kuncser, Andrei
Berger, Daniela
Matei, Cristian
Iacob, Nicusor
Kuncser, Victor
author_sort Palade, Petru
collection PubMed
description A facile and cheap surfactant-assisted hydrothermal method was used to prepare mesoporous cobalt ferrite nanosystems with BET surface area up to 151 m(2)/g. These mesostructures with high BET surface areas and pore sizes are made from assemblies of nanoparticles (NPs) with average sizes between 7.8 and 9.6 nm depending on the initial pH conditions. The pH proved to be the key factor for controlling not only NP size, but also the phase purity and the porosity properties of the mesostructures. At pH values lower than 7, a parasite hematite phase begins to form. The sample obtained at pH = 7.3 has magnetization at saturation M(s) = 38 emu/g at 300 K (54.3 emu/g at 10 K) and BET surface area S(BET) = 151 m(2)/g, whereas the one obtained at pH = 8.3 has M(s) = 68 emu/g at 300 K (83.6 emu/g at 10 K) and S(BET) = 101 m(2)/g. The magnetic coercive field values at 10 K are high at up to 12,780 Oe, with a maximum coercive field reached for the sample obtained at pH = 8.3. Decreased magnetic performances are obtained at pH values higher than 9. The iron occupancies of the tetrahedral and octahedral sites belonging to the cobalt ferrite spinel structure were extracted through decomposition of the Mössbauer patterns in spectral components. The magnetic anisotropy constants of the investigated NPs were estimated from the temperature dependence of the hyperfine magnetic field. Taking into consideration the high values of BET surface area and the magnetic anisotropy constants as well as the significant magnetizations for saturation at ambient temperature, and the fact that all parameters can be adjusted through the initial pH conditions, these materials are very promising as recyclable anti-polluting agents, magnetically separable catalysts, and targeted drug delivery vehicles.
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spelling pubmed-71536232020-04-20 Mesoporous Cobalt Ferrite Nanosystems Obtained by Surfactant-Assisted Hydrothermal Method: Tuning Morpho-structural and Magnetic Properties via pH-Variation Palade, Petru Comanescu, Cezar Kuncser, Andrei Berger, Daniela Matei, Cristian Iacob, Nicusor Kuncser, Victor Nanomaterials (Basel) Article A facile and cheap surfactant-assisted hydrothermal method was used to prepare mesoporous cobalt ferrite nanosystems with BET surface area up to 151 m(2)/g. These mesostructures with high BET surface areas and pore sizes are made from assemblies of nanoparticles (NPs) with average sizes between 7.8 and 9.6 nm depending on the initial pH conditions. The pH proved to be the key factor for controlling not only NP size, but also the phase purity and the porosity properties of the mesostructures. At pH values lower than 7, a parasite hematite phase begins to form. The sample obtained at pH = 7.3 has magnetization at saturation M(s) = 38 emu/g at 300 K (54.3 emu/g at 10 K) and BET surface area S(BET) = 151 m(2)/g, whereas the one obtained at pH = 8.3 has M(s) = 68 emu/g at 300 K (83.6 emu/g at 10 K) and S(BET) = 101 m(2)/g. The magnetic coercive field values at 10 K are high at up to 12,780 Oe, with a maximum coercive field reached for the sample obtained at pH = 8.3. Decreased magnetic performances are obtained at pH values higher than 9. The iron occupancies of the tetrahedral and octahedral sites belonging to the cobalt ferrite spinel structure were extracted through decomposition of the Mössbauer patterns in spectral components. The magnetic anisotropy constants of the investigated NPs were estimated from the temperature dependence of the hyperfine magnetic field. Taking into consideration the high values of BET surface area and the magnetic anisotropy constants as well as the significant magnetizations for saturation at ambient temperature, and the fact that all parameters can be adjusted through the initial pH conditions, these materials are very promising as recyclable anti-polluting agents, magnetically separable catalysts, and targeted drug delivery vehicles. MDPI 2020-03-06 /pmc/articles/PMC7153623/ /pubmed/32155937 http://dx.doi.org/10.3390/nano10030476 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
Palade, Petru
Comanescu, Cezar
Kuncser, Andrei
Berger, Daniela
Matei, Cristian
Iacob, Nicusor
Kuncser, Victor
Mesoporous Cobalt Ferrite Nanosystems Obtained by Surfactant-Assisted Hydrothermal Method: Tuning Morpho-structural and Magnetic Properties via pH-Variation
title Mesoporous Cobalt Ferrite Nanosystems Obtained by Surfactant-Assisted Hydrothermal Method: Tuning Morpho-structural and Magnetic Properties via pH-Variation
title_full Mesoporous Cobalt Ferrite Nanosystems Obtained by Surfactant-Assisted Hydrothermal Method: Tuning Morpho-structural and Magnetic Properties via pH-Variation
title_fullStr Mesoporous Cobalt Ferrite Nanosystems Obtained by Surfactant-Assisted Hydrothermal Method: Tuning Morpho-structural and Magnetic Properties via pH-Variation
title_full_unstemmed Mesoporous Cobalt Ferrite Nanosystems Obtained by Surfactant-Assisted Hydrothermal Method: Tuning Morpho-structural and Magnetic Properties via pH-Variation
title_short Mesoporous Cobalt Ferrite Nanosystems Obtained by Surfactant-Assisted Hydrothermal Method: Tuning Morpho-structural and Magnetic Properties via pH-Variation
title_sort mesoporous cobalt ferrite nanosystems obtained by surfactant-assisted hydrothermal method: tuning morpho-structural and magnetic properties via ph-variation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7153623/
https://www.ncbi.nlm.nih.gov/pubmed/32155937
http://dx.doi.org/10.3390/nano10030476
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