Magnetic Transitions in the Co-Modified Mn2Sb System

Mn2Sb is ferrimagnetic below its Curie temperature (TC) and passes through a spin flip transition with decreasing temperature. The Co substitution induces an additional first-order phase transition from the ferrimagnetic (FRI) to an antiferromagnetic (AFM) state. This phase transition is connected t...

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Main Authors: Johanna S. Wilden, Andreas Hoser, Mamuka Chikovani, Jörg Perßon, Jörg Voigt, Karen Friese, Andrzej Grzechnik
Format: Article
Language:English
Published: MDPI AG 2018-10-01
Series:Inorganics
Subjects:
Online Access:http://www.mdpi.com/2304-6740/6/4/113
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spelling doaj-b2c453bf0d6949e7a22d7fa3494438a32020-11-24T23:14:52ZengMDPI AGInorganics2304-67402018-10-016411310.3390/inorganics6040113inorganics6040113Magnetic Transitions in the Co-Modified Mn2Sb SystemJohanna S. Wilden0Andreas Hoser1Mamuka Chikovani2Jörg Perßon3Jörg Voigt4Karen Friese5Andrzej Grzechnik6Institute of Crystallography, RWTH Aachen University, 52066 Aachen, GermanyHelmholtz-Zentrum Berlin, Hahn-Meitner Platz 1, 14109 Berlin, GermanyJülich Centre for Neutron Science—2/Peter Grünberg Institute—4, Forschungszentrum Jülich, 52425 Jülich, GermanyJülich Centre for Neutron Science—2/Peter Grünberg Institute—4, Forschungszentrum Jülich, 52425 Jülich, GermanyJülich Centre for Neutron Science—2/Peter Grünberg Institute—4, Forschungszentrum Jülich, 52425 Jülich, GermanyJülich Centre for Neutron Science—2/Peter Grünberg Institute—4, Forschungszentrum Jülich, 52425 Jülich, GermanyInstitute of Crystallography, RWTH Aachen University, 52066 Aachen, GermanyMn2Sb is ferrimagnetic below its Curie temperature (TC) and passes through a spin flip transition with decreasing temperature. The Co substitution induces an additional first-order phase transition from the ferrimagnetic (FRI) to an antiferromagnetic (AFM) state. This phase transition is connected to a sizable magnetocaloric effect (MCE). To understand the underlying mechanisms, the temperature dependence of structural and magnetic changes was analyzed. At the same time, the influence of the Co substitution was explored. Three Mn2−xCoxSb (x = 0.1, 0.15, 0.2) compounds were synthesized by cold crucible induction melting. Neutron powder diffraction was performed to determine the magnetic structures and to obtain the individual magnetic moments on both symmetrically independent Mn sites. In combination with the temperature-dependent magnetization measurements, the magnetic phase transition temperatures were identified. In the low-temperature range, additional antiferromagnetic peaks were detected, which could be indexed with a propagation vector of (0 0 ½). In Mn1.9Co0.1Sb at 50 K and in Mn1.8Co0.2Sb at 200 K, a co-existence of the FRI and the AFM state was observed. The pure AFM state only occurs in Mn1.8Co0.2Sb at 50 K.http://www.mdpi.com/2304-6740/6/4/113co-modified Mn2Sbmagnetocaloric effectneutron powder diffractionmagnetic structuresferrimagnetic compoundsantiferromagnetic compounds
collection DOAJ
language English
format Article
sources DOAJ
author Johanna S. Wilden
Andreas Hoser
Mamuka Chikovani
Jörg Perßon
Jörg Voigt
Karen Friese
Andrzej Grzechnik
spellingShingle Johanna S. Wilden
Andreas Hoser
Mamuka Chikovani
Jörg Perßon
Jörg Voigt
Karen Friese
Andrzej Grzechnik
Magnetic Transitions in the Co-Modified Mn2Sb System
Inorganics
co-modified Mn2Sb
magnetocaloric effect
neutron powder diffraction
magnetic structures
ferrimagnetic compounds
antiferromagnetic compounds
author_facet Johanna S. Wilden
Andreas Hoser
Mamuka Chikovani
Jörg Perßon
Jörg Voigt
Karen Friese
Andrzej Grzechnik
author_sort Johanna S. Wilden
title Magnetic Transitions in the Co-Modified Mn2Sb System
title_short Magnetic Transitions in the Co-Modified Mn2Sb System
title_full Magnetic Transitions in the Co-Modified Mn2Sb System
title_fullStr Magnetic Transitions in the Co-Modified Mn2Sb System
title_full_unstemmed Magnetic Transitions in the Co-Modified Mn2Sb System
title_sort magnetic transitions in the co-modified mn2sb system
publisher MDPI AG
series Inorganics
issn 2304-6740
publishDate 2018-10-01
description Mn2Sb is ferrimagnetic below its Curie temperature (TC) and passes through a spin flip transition with decreasing temperature. The Co substitution induces an additional first-order phase transition from the ferrimagnetic (FRI) to an antiferromagnetic (AFM) state. This phase transition is connected to a sizable magnetocaloric effect (MCE). To understand the underlying mechanisms, the temperature dependence of structural and magnetic changes was analyzed. At the same time, the influence of the Co substitution was explored. Three Mn2−xCoxSb (x = 0.1, 0.15, 0.2) compounds were synthesized by cold crucible induction melting. Neutron powder diffraction was performed to determine the magnetic structures and to obtain the individual magnetic moments on both symmetrically independent Mn sites. In combination with the temperature-dependent magnetization measurements, the magnetic phase transition temperatures were identified. In the low-temperature range, additional antiferromagnetic peaks were detected, which could be indexed with a propagation vector of (0 0 ½). In Mn1.9Co0.1Sb at 50 K and in Mn1.8Co0.2Sb at 200 K, a co-existence of the FRI and the AFM state was observed. The pure AFM state only occurs in Mn1.8Co0.2Sb at 50 K.
topic co-modified Mn2Sb
magnetocaloric effect
neutron powder diffraction
magnetic structures
ferrimagnetic compounds
antiferromagnetic compounds
url http://www.mdpi.com/2304-6740/6/4/113
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