Skip to main content

Research publications repository

    • čeština
    • English
  • English 
    • čeština
    • English
  • Login
View Item 
  •   CU Research Publications Repository
  • Fakulty
  • Faculty of Mathematics and Physics
  • View Item
  • CU Research Publications Repository
  • Fakulty
  • Faculty of Mathematics and Physics
  • View Item
JavaScript is disabled for your browser. Some features of this site may not work without it.

Low-temperature antiferromagnetism in quaternary Mn2FeSi0.5Al0.5 alloys

original article
Creative Commons License IconCreative Commons BY Icon
published version
  • no other version
Thumbnail
File can be accessed only after logging in.Login to access
Author
Zivotsky, Ondrej
Gembalova, Lucie
Skotnicova, Katerina
Szurman, Ivo
Cegan, Tomas
Jurica, Jan
Malina, Ondrej
Čížek, JakubORCiD Profile - 0000-0001-9961-8545WoS Profile - F-6163-2010Scopus Profile - 25648995100

Show other authors

Publication date
2024
Published in
AIP Advances
Volume / Issue
14 (1)
ISBN / ISSN
ISSN: 2158-3226
ISBN / ISSN
eISSN: 2158-3226
Metadata
Show full item record
Collections
  • Faculty of Mathematics and Physics

This publication has a published version with DOI 10.1063/9.0000716

Abstract
In this work, the quaternary Mn2FeSi0.5Al0.5 alloys are prepared for the first time in the form of cylinder-shaped ingots by traditional induction melting technique followed by homogenization annealing at 773 K for 100 h. The microstructural and magnetic properties of as-cast and annealed Mn2FeSi0.5Al0.5 samples are analyzed in detail and compared to the Mn2FeSi and Mn2FeAl ternary alloys. The Mn2FeSi0.5Al0.5 ingots are two-phase both before and after annealing, and their diffractograms correspond to the primitive cubic beta-Mn structure. Obtained lattice constant of 0.6274 nm is only slightly lower than that of Mn2FeAl alloy (0.6339 nm) and different from Mn2FeSi (0.5672 nm). The existence of both phases enriched in Si at the expense of Al and Mn was confirmed by differential thermal analysis showing two endothermic and exothermic peaks at temperatures of 1363 K and 1407 K. The magnetic properties of both quaternary samples studied in wide temperature range from 5 K to 573 K indicate paramagnetic behavior at room and elevated temperatures. The annealed system has the values of Curie temperature and effective paramagnetic moment comparable to the ternary Mn2FeAl alloy. The transition to antiferromagnetic state occurring at Neel temperatures of 34 K (as-cast sample) and 37 K (annealed sample) is caused by strong geometric frustration of beta-Mn structure. The magnetic transitions observed in both samples between Neel and room temperature are discussed in terms of the existence of Griffiths phase.
Keywords
Magnetism, Phase transitions, Geometric frustration, Spintronic devices, Differential thermal analysis, Alloys, Scanning electron microscopy, X-ray diffraction
Permanent link
https://hdl.handle.net/20.500.14178/2968
Show publication in other systems
WOS:001144149100004
SCOPUS:2-s2.0-85182735216
License

Full text of this result is licensed under: Creative Commons Uveďte původ 4.0 International

Show license terms

xmlui.dri2xhtml.METS-1.0.item-publication-version-

DSpace software copyright © 2002-2016  DuraSpace
Contact Us | Send Feedback
Theme by 
Atmire NV
 

 

About Repository

About This RepositoryResearch outputs typologyRequired metadataDisclaimerCC Linceses

Browse

All of DSpaceCommunities & CollectionsWorkplacesBy Issue DateAuthorsTitlesSubjectsThis CollectionWorkplacesBy Issue DateAuthorsTitlesSubjects

DSpace software copyright © 2002-2016  DuraSpace
Contact Us | Send Feedback
Theme by 
Atmire NV