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Ultrafine metallic Fe nanoparticles: synthesis, structure and magnetism

The results of the investigation of the structural and magnetic (static and dynamic) properties of an assembly of metallic Fe nanoparticles synthesized by an organometallic chemical method are described. These nanoparticles are embedded in a polymer, monodisperse, with a diameter below 2 nm, which c...

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Autores principales: Margeat, Olivier, Respaud, Marc, Amiens, Catherine, Lecante, Pierre, Chaudret, Bruno
Formato: Texto
Lenguaje:English
Publicado: Beilstein-Institut 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3045918/
https://www.ncbi.nlm.nih.gov/pubmed/21977400
http://dx.doi.org/10.3762/bjnano.1.13
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author Margeat, Olivier
Respaud, Marc
Amiens, Catherine
Lecante, Pierre
Chaudret, Bruno
author_facet Margeat, Olivier
Respaud, Marc
Amiens, Catherine
Lecante, Pierre
Chaudret, Bruno
author_sort Margeat, Olivier
collection PubMed
description The results of the investigation of the structural and magnetic (static and dynamic) properties of an assembly of metallic Fe nanoparticles synthesized by an organometallic chemical method are described. These nanoparticles are embedded in a polymer, monodisperse, with a diameter below 2 nm, which corresponds to a number of around 200 atoms. The X-ray absorption near-edge structure and Mössbauer spectrum are characteristic of metallic Fe. The structural studies by wide angle X-ray scattering indicate an original polytetrahedral atomic arrangement similar to that of β-Mn, characterized by a short-range order. The average magnetic moment per Fe atom is raised to 2.59 µ(B) (for comparison, bulk value of metallic Fe: 2.2 µ(B)). Even if the spontaneous magnetization decreases rapidly as compared to bulk materials, it remains enhanced even up to room temperature. The gyromagnetic ratio measured by ferromagnetic resonance is of the same order as that of bulk Fe, which allows us to conclude that the orbital and spin contributions increase at the same rate. A large magnetic anisotropy for metallic Fe has been measured up to (3.7 ± 1.0)·10(5) J/m(3). Precise analysis of the low temperature Mössbauer spectra, show a broad distribution of large hyperfine fields. The largest hyperfine fields display the largest isomer shifts. This indicates a progressive increase of the magnetic moment inside the particle from the core to the outer shell. The components corresponding to the large hyperfine fields with large isomer shifts are indeed characteristic of surface atoms.
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spelling pubmed-30459182011-10-05 Ultrafine metallic Fe nanoparticles: synthesis, structure and magnetism Margeat, Olivier Respaud, Marc Amiens, Catherine Lecante, Pierre Chaudret, Bruno Beilstein J Nanotechnol Full Research Paper The results of the investigation of the structural and magnetic (static and dynamic) properties of an assembly of metallic Fe nanoparticles synthesized by an organometallic chemical method are described. These nanoparticles are embedded in a polymer, monodisperse, with a diameter below 2 nm, which corresponds to a number of around 200 atoms. The X-ray absorption near-edge structure and Mössbauer spectrum are characteristic of metallic Fe. The structural studies by wide angle X-ray scattering indicate an original polytetrahedral atomic arrangement similar to that of β-Mn, characterized by a short-range order. The average magnetic moment per Fe atom is raised to 2.59 µ(B) (for comparison, bulk value of metallic Fe: 2.2 µ(B)). Even if the spontaneous magnetization decreases rapidly as compared to bulk materials, it remains enhanced even up to room temperature. The gyromagnetic ratio measured by ferromagnetic resonance is of the same order as that of bulk Fe, which allows us to conclude that the orbital and spin contributions increase at the same rate. A large magnetic anisotropy for metallic Fe has been measured up to (3.7 ± 1.0)·10(5) J/m(3). Precise analysis of the low temperature Mössbauer spectra, show a broad distribution of large hyperfine fields. The largest hyperfine fields display the largest isomer shifts. This indicates a progressive increase of the magnetic moment inside the particle from the core to the outer shell. The components corresponding to the large hyperfine fields with large isomer shifts are indeed characteristic of surface atoms. Beilstein-Institut 2010-12-03 /pmc/articles/PMC3045918/ /pubmed/21977400 http://dx.doi.org/10.3762/bjnano.1.13 Text en Copyright © 2010, Margeat et al. https://creativecommons.org/licenses/by/2.0https://www.beilstein-journals.org/bjnano/termsThis is an Open Access article under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. The license is subject to the Beilstein Journal of Nanotechnology terms and conditions: (https://www.beilstein-journals.org/bjnano/terms)
spellingShingle Full Research Paper
Margeat, Olivier
Respaud, Marc
Amiens, Catherine
Lecante, Pierre
Chaudret, Bruno
Ultrafine metallic Fe nanoparticles: synthesis, structure and magnetism
title Ultrafine metallic Fe nanoparticles: synthesis, structure and magnetism
title_full Ultrafine metallic Fe nanoparticles: synthesis, structure and magnetism
title_fullStr Ultrafine metallic Fe nanoparticles: synthesis, structure and magnetism
title_full_unstemmed Ultrafine metallic Fe nanoparticles: synthesis, structure and magnetism
title_short Ultrafine metallic Fe nanoparticles: synthesis, structure and magnetism
title_sort ultrafine metallic fe nanoparticles: synthesis, structure and magnetism
topic Full Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3045918/
https://www.ncbi.nlm.nih.gov/pubmed/21977400
http://dx.doi.org/10.3762/bjnano.1.13
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