First-principles determination of intergranular atomic arrangements and magnetic properties in rare-earth permanent magnets

Development of high-performance permanent magnets relies on both the main-phase compound with superior intrinsic magnetic properties and the microstructure effect for the prevention of magnetization reversal. In this article, the microstructure effect is discussed by focusing on the interface betwee...

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Main Author: Yoshihiro Gohda
Format: Article
Language:English
Published: Taylor & Francis Group 2021-12-01
Series:Science and Technology of Advanced Materials
Subjects:
Online Access:http://dx.doi.org/10.1080/14686996.2021.1877092
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spelling doaj-6cf00eb914544db2b7a13a00da1cfab02021-02-18T10:31:39ZengTaylor & Francis GroupScience and Technology of Advanced Materials1468-69961878-55142021-12-0122111312310.1080/14686996.2021.18770921877092First-principles determination of intergranular atomic arrangements and magnetic properties in rare-earth permanent magnetsYoshihiro Gohda0Tokyo Institute of TechnologyDevelopment of high-performance permanent magnets relies on both the main-phase compound with superior intrinsic magnetic properties and the microstructure effect for the prevention of magnetization reversal. In this article, the microstructure effect is discussed by focusing on the interface between the main phase and an intergranular phase and on the intergranular phase itself. First, surfaces of main-phase grains are considered, where a general trend in the surface termination and its origin are discussed. Next, microstructure interfaces in SmFe12-based magnets are discussed, where magnetic decoupling between SmFe12 grains is found for the SmCu subphase. Finally, general insights into finite-temperature magnetism are discussed with emphasis on the feedback effect from magnetism-dependent phonons on magnetism, which is followed by explanations on atomic arrangements and magnetism of intergranular phases in Nd-Fe-B magnets. Both amorphous and candidate crystalline structures of Nd-Fe alloys are considered. The addition of Cu and Ga to Nd-Fe alloys is demonstrated to be effective in decreasing the Curie temperature of the intergranular phase.http://dx.doi.org/10.1080/14686996.2021.1877092first-principles calculationselectron theoryferromagnetismpermanent magnetscurie temperatureexchange couplingmicrostructureinterfaces
collection DOAJ
language English
format Article
sources DOAJ
author Yoshihiro Gohda
spellingShingle Yoshihiro Gohda
First-principles determination of intergranular atomic arrangements and magnetic properties in rare-earth permanent magnets
Science and Technology of Advanced Materials
first-principles calculations
electron theory
ferromagnetism
permanent magnets
curie temperature
exchange coupling
microstructure
interfaces
author_facet Yoshihiro Gohda
author_sort Yoshihiro Gohda
title First-principles determination of intergranular atomic arrangements and magnetic properties in rare-earth permanent magnets
title_short First-principles determination of intergranular atomic arrangements and magnetic properties in rare-earth permanent magnets
title_full First-principles determination of intergranular atomic arrangements and magnetic properties in rare-earth permanent magnets
title_fullStr First-principles determination of intergranular atomic arrangements and magnetic properties in rare-earth permanent magnets
title_full_unstemmed First-principles determination of intergranular atomic arrangements and magnetic properties in rare-earth permanent magnets
title_sort first-principles determination of intergranular atomic arrangements and magnetic properties in rare-earth permanent magnets
publisher Taylor & Francis Group
series Science and Technology of Advanced Materials
issn 1468-6996
1878-5514
publishDate 2021-12-01
description Development of high-performance permanent magnets relies on both the main-phase compound with superior intrinsic magnetic properties and the microstructure effect for the prevention of magnetization reversal. In this article, the microstructure effect is discussed by focusing on the interface between the main phase and an intergranular phase and on the intergranular phase itself. First, surfaces of main-phase grains are considered, where a general trend in the surface termination and its origin are discussed. Next, microstructure interfaces in SmFe12-based magnets are discussed, where magnetic decoupling between SmFe12 grains is found for the SmCu subphase. Finally, general insights into finite-temperature magnetism are discussed with emphasis on the feedback effect from magnetism-dependent phonons on magnetism, which is followed by explanations on atomic arrangements and magnetism of intergranular phases in Nd-Fe-B magnets. Both amorphous and candidate crystalline structures of Nd-Fe alloys are considered. The addition of Cu and Ga to Nd-Fe alloys is demonstrated to be effective in decreasing the Curie temperature of the intergranular phase.
topic first-principles calculations
electron theory
ferromagnetism
permanent magnets
curie temperature
exchange coupling
microstructure
interfaces
url http://dx.doi.org/10.1080/14686996.2021.1877092
work_keys_str_mv AT yoshihirogohda firstprinciplesdeterminationofintergranularatomicarrangementsandmagneticpropertiesinrareearthpermanentmagnets
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