Theoretical Magnet Design : From the electronic structure of solid matter to new permanent magnets

A good permanent magnet should possess a large saturation magnetisation (Ms), large mag- netocrystalline anisotropy energy (MAE) and a high Curie temperature (TC). A difficult but important challenge to overcome for a sustainable permanent magnet industry is to find novel magnetic materials, exhibit...

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Main Author: Edström, Alexander
Format: Others
Language:English
Published: Uppsala universitet, Materialteori 2014
Online Access:http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-231810
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spelling ndltd-UPSALLA1-oai-DiVA.org-uu-2318102014-09-24T04:44:00ZTheoretical Magnet Design : From the electronic structure of solid matter to new permanent magnetsengEdström, AlexanderUppsala universitet, Materialteori2014A good permanent magnet should possess a large saturation magnetisation (Ms), large mag- netocrystalline anisotropy energy (MAE) and a high Curie temperature (TC). A difficult but important challenge to overcome for a sustainable permanent magnet industry is to find novel magnetic materials, exhibiting a large MAE, without the use of scarcely available elements such as rare-earth metals. The purpose of this thesis is to apply computational methods, including density functional theory and Monte Carlo simulations, to assess the three above mentioned permanent magnet properties and in particular to discover new replacement materials with large MAE without the use of critical materials such as rare-earths. One of the key results is the theoretical prediction of a tetragonal phase of Fe1−xCox-C with large Ms and significantly increased MAE which is later also experimentally confirmed. Furthermore, other potential materials are surveyed and in particular the properties of a number of binary alloys in the L10 structure, FeNi, CoNi, MnAl and MnGa, are thoroughly investigated and shown to posses the desired properties under certain conditions. Licentiate thesis, comprehensive summaryinfo:eu-repo/semantics/masterThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-231810application/pdfinfo:eu-repo/semantics/openAccess
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language English
format Others
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description A good permanent magnet should possess a large saturation magnetisation (Ms), large mag- netocrystalline anisotropy energy (MAE) and a high Curie temperature (TC). A difficult but important challenge to overcome for a sustainable permanent magnet industry is to find novel magnetic materials, exhibiting a large MAE, without the use of scarcely available elements such as rare-earth metals. The purpose of this thesis is to apply computational methods, including density functional theory and Monte Carlo simulations, to assess the three above mentioned permanent magnet properties and in particular to discover new replacement materials with large MAE without the use of critical materials such as rare-earths. One of the key results is the theoretical prediction of a tetragonal phase of Fe1−xCox-C with large Ms and significantly increased MAE which is later also experimentally confirmed. Furthermore, other potential materials are surveyed and in particular the properties of a number of binary alloys in the L10 structure, FeNi, CoNi, MnAl and MnGa, are thoroughly investigated and shown to posses the desired properties under certain conditions.
author Edström, Alexander
spellingShingle Edström, Alexander
Theoretical Magnet Design : From the electronic structure of solid matter to new permanent magnets
author_facet Edström, Alexander
author_sort Edström, Alexander
title Theoretical Magnet Design : From the electronic structure of solid matter to new permanent magnets
title_short Theoretical Magnet Design : From the electronic structure of solid matter to new permanent magnets
title_full Theoretical Magnet Design : From the electronic structure of solid matter to new permanent magnets
title_fullStr Theoretical Magnet Design : From the electronic structure of solid matter to new permanent magnets
title_full_unstemmed Theoretical Magnet Design : From the electronic structure of solid matter to new permanent magnets
title_sort theoretical magnet design : from the electronic structure of solid matter to new permanent magnets
publisher Uppsala universitet, Materialteori
publishDate 2014
url http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-231810
work_keys_str_mv AT edstromalexander theoreticalmagnetdesignfromtheelectronicstructureofsolidmattertonewpermanentmagnets
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