Cargando…

Hardening of Cobalt Ferrite Nanoparticles by Local Crystal Strain Release: Implications for Rare Earth Free Magnets

[Image: see text] In this work, we demonstrate that the reduction of the local internal stress by a low-temperature solvent-mediated thermal treatment is an effective post-treatment tool for magnetic hardening of chemically synthesized nanoparticles. As a case study, we used nonstoichiometric cobalt...

Descripción completa

Detalles Bibliográficos
Autores principales: Muzzi, Beatrice, Lottini, Elisabetta, Yaacoub, Nader, Peddis, Davide, Bertoni, Giovanni, de Julián Fernández, César, Sangregorio, Claudio, López-Ortega, Alberto
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9624260/
https://www.ncbi.nlm.nih.gov/pubmed/36338325
http://dx.doi.org/10.1021/acsanm.2c03161
_version_ 1784822192573251584
author Muzzi, Beatrice
Lottini, Elisabetta
Yaacoub, Nader
Peddis, Davide
Bertoni, Giovanni
de Julián Fernández, César
Sangregorio, Claudio
López-Ortega, Alberto
author_facet Muzzi, Beatrice
Lottini, Elisabetta
Yaacoub, Nader
Peddis, Davide
Bertoni, Giovanni
de Julián Fernández, César
Sangregorio, Claudio
López-Ortega, Alberto
author_sort Muzzi, Beatrice
collection PubMed
description [Image: see text] In this work, we demonstrate that the reduction of the local internal stress by a low-temperature solvent-mediated thermal treatment is an effective post-treatment tool for magnetic hardening of chemically synthesized nanoparticles. As a case study, we used nonstoichiometric cobalt ferrite particles of an average size of 32(8) nm synthesized by thermal decomposition, which were further subjected to solvent-mediated annealing at variable temperatures between 150 and 320 °C in an inert atmosphere. The postsynthesis treatment produces a 50% increase of the coercive field, without affecting neither the remanence ratio nor the spontaneous magnetization. As a consequence, the energy product and the magnetic energy storage capability, key features for applications as permanent magnets and magnetic hyperthermia, can be increased by ca. 70%. A deep structural, morphological, chemical, and magnetic characterization reveals that the mechanism governing the coercive field improvement is the reduction of the concomitant internal stresses induced by the low-temperature annealing postsynthesis treatment. Furthermore, we show that the medium where the mild annealing process occurs is essential to control the final properties of the nanoparticles because the classical annealing procedure (T > 350 °C) performed on a dried powder does not allow the release of the lattice stress, leading to the reduction of the initial coercive field. The strategy here proposed, therefore, constitutes a method to improve the magnetic properties of nanoparticles, which can be particularly appealing for those materials, as is the case of cobalt ferrite, currently investigated as building blocks for the development of rare-earth free permanent magnets.
format Online
Article
Text
id pubmed-9624260
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-96242602022-11-02 Hardening of Cobalt Ferrite Nanoparticles by Local Crystal Strain Release: Implications for Rare Earth Free Magnets Muzzi, Beatrice Lottini, Elisabetta Yaacoub, Nader Peddis, Davide Bertoni, Giovanni de Julián Fernández, César Sangregorio, Claudio López-Ortega, Alberto ACS Appl Nano Mater [Image: see text] In this work, we demonstrate that the reduction of the local internal stress by a low-temperature solvent-mediated thermal treatment is an effective post-treatment tool for magnetic hardening of chemically synthesized nanoparticles. As a case study, we used nonstoichiometric cobalt ferrite particles of an average size of 32(8) nm synthesized by thermal decomposition, which were further subjected to solvent-mediated annealing at variable temperatures between 150 and 320 °C in an inert atmosphere. The postsynthesis treatment produces a 50% increase of the coercive field, without affecting neither the remanence ratio nor the spontaneous magnetization. As a consequence, the energy product and the magnetic energy storage capability, key features for applications as permanent magnets and magnetic hyperthermia, can be increased by ca. 70%. A deep structural, morphological, chemical, and magnetic characterization reveals that the mechanism governing the coercive field improvement is the reduction of the concomitant internal stresses induced by the low-temperature annealing postsynthesis treatment. Furthermore, we show that the medium where the mild annealing process occurs is essential to control the final properties of the nanoparticles because the classical annealing procedure (T > 350 °C) performed on a dried powder does not allow the release of the lattice stress, leading to the reduction of the initial coercive field. The strategy here proposed, therefore, constitutes a method to improve the magnetic properties of nanoparticles, which can be particularly appealing for those materials, as is the case of cobalt ferrite, currently investigated as building blocks for the development of rare-earth free permanent magnets. American Chemical Society 2022-09-21 2022-10-28 /pmc/articles/PMC9624260/ /pubmed/36338325 http://dx.doi.org/10.1021/acsanm.2c03161 Text en © 2022 American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Muzzi, Beatrice
Lottini, Elisabetta
Yaacoub, Nader
Peddis, Davide
Bertoni, Giovanni
de Julián Fernández, César
Sangregorio, Claudio
López-Ortega, Alberto
Hardening of Cobalt Ferrite Nanoparticles by Local Crystal Strain Release: Implications for Rare Earth Free Magnets
title Hardening of Cobalt Ferrite Nanoparticles by Local Crystal Strain Release: Implications for Rare Earth Free Magnets
title_full Hardening of Cobalt Ferrite Nanoparticles by Local Crystal Strain Release: Implications for Rare Earth Free Magnets
title_fullStr Hardening of Cobalt Ferrite Nanoparticles by Local Crystal Strain Release: Implications for Rare Earth Free Magnets
title_full_unstemmed Hardening of Cobalt Ferrite Nanoparticles by Local Crystal Strain Release: Implications for Rare Earth Free Magnets
title_short Hardening of Cobalt Ferrite Nanoparticles by Local Crystal Strain Release: Implications for Rare Earth Free Magnets
title_sort hardening of cobalt ferrite nanoparticles by local crystal strain release: implications for rare earth free magnets
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9624260/
https://www.ncbi.nlm.nih.gov/pubmed/36338325
http://dx.doi.org/10.1021/acsanm.2c03161
work_keys_str_mv AT muzzibeatrice hardeningofcobaltferritenanoparticlesbylocalcrystalstrainreleaseimplicationsforrareearthfreemagnets
AT lottinielisabetta hardeningofcobaltferritenanoparticlesbylocalcrystalstrainreleaseimplicationsforrareearthfreemagnets
AT yaacoubnader hardeningofcobaltferritenanoparticlesbylocalcrystalstrainreleaseimplicationsforrareearthfreemagnets
AT peddisdavide hardeningofcobaltferritenanoparticlesbylocalcrystalstrainreleaseimplicationsforrareearthfreemagnets
AT bertonigiovanni hardeningofcobaltferritenanoparticlesbylocalcrystalstrainreleaseimplicationsforrareearthfreemagnets
AT dejulianfernandezcesar hardeningofcobaltferritenanoparticlesbylocalcrystalstrainreleaseimplicationsforrareearthfreemagnets
AT sangregorioclaudio hardeningofcobaltferritenanoparticlesbylocalcrystalstrainreleaseimplicationsforrareearthfreemagnets
AT lopezortegaalberto hardeningofcobaltferritenanoparticlesbylocalcrystalstrainreleaseimplicationsforrareearthfreemagnets