Novoselova, Iuliia P.; Ingason, Árni Sigurdur; Salikhov, Ruslan; Kapaklis, Vassilios; Hase, Thomas; Spasova, Marina; Petruhins, Andrejs; Rosen, Johanna; Palisaitis, Justinas; Magnus, Fridrik; Wiedwald, Ulf; Farle, Michael:
Large uniaxial magnetostriction with sign inversion at the first order phase transition in the nanolaminated Mn2GaC MAX phase
In: Scientific Reports, Band 8 (2018), S. 2637
2018Artikel/Aufsatz in ZeitschriftOA Gold
Physik (inkl. Astronomie)Forschungszentren » Center for Nanointegration Duisburg-Essen (CENIDE)Fakultät für Physik » Experimentalphysik
Damit verbunden: 1 Publikation(en)
Titel in Englisch:
Large uniaxial magnetostriction with sign inversion at the first order phase transition in the nanolaminated Mn2GaC MAX phase
Autor*in:
Novoselova, Iuliia P.;Ingason, Árni Sigurdur;Salikhov, Ruslan
Sonstiges
korrespondierende*r Autor*in
;
Kapaklis, Vassilios
ORCID
0000-0002-6105-1659ORCID iD
;
Hase, Thomas;Spasova, MarinaUDE
LSF ID
3606
Sonstiges
der Hochschule zugeordnete*r Autor*in
;
Petruhins, Andrejs;Rosen, Johanna;Palisaitis, Justinas
ORCID
0000-0003-3203-7935ORCID iD
;
Magnus, Fridrik;Wiedwald, UlfUDE
GND
130011681
LSF ID
3609
ORCID
0000-0002-3209-4078ORCID iD
Sonstiges
der Hochschule zugeordnete*r Autor*in
;
Farle, MichaelUDE
GND
1029383219
LSF ID
3560
ORCID
0000-0002-1864-3261ORCID iD
Sonstiges
der Hochschule zugeordnete*r Autor*in
Erscheinungsjahr:
2018
Open Access?:
OA Gold
DuEPublico 1 ID
Scopus ID
Notiz:
OA Förderung 2018 - OA gold - CA Salikhov
Sprache des Textes:
Englisch
Schlagwort, Thema:
Electronic properties and materials ; Magnetic properties and materials ; Phase transitions and critical phenomena

Abstract in Englisch:

In 2013, a new class of inherently nanolaminated magnetic materials, the so called magnetic MAX phases, was discovered. Following predictive material stability calculations, the hexagonal Mn2GaC compound was synthesized as hetero-epitaxial films containing Mn as the exclusive M-element. Recent theoretical and experimental studies suggested a high magnetic ordering temperature and non-collinear antiferromagnetic (AFM) spin states as a result of competitive ferromagnetic and antiferromagnetic exchange interactions. In order to assess the potential for practical applications of Mn2GaC, we have studied the temperature-dependent magnetization, and the magnetoresistive, magnetostrictive as well as magnetocaloric properties of the compound. The material exhibits two magnetic phase transitions. The Néel temperature is T N  ~ 507 K, at which the system changes from a collinear AFM state to the paramagnetic state. At T t  = 214 K the material undergoes a first order magnetic phase transition from AFM at higher temperature to a non-collinear AFM spin structure. Both states show large uniaxial c-axis magnetostriction of 450 ppm. Remarkably, the magnetostriction changes sign, being compressive (negative) above T t and tensile (positive) below the T t . The sign change of the magnetostriction is accompanied by a sign change in the magnetoresistance indicating a coupling among the spin, lattice and electrical transport properties.