Magnetic structure of GdCu through the martensitic structural transformation: A neutron-diffraction study

Citation
Ja. Blanco et al., Magnetic structure of GdCu through the martensitic structural transformation: A neutron-diffraction study, PHYS REV B, 59(1), 1999, pp. 512-518
Citations number
28
Categorie Soggetti
Apllied Physucs/Condensed Matter/Materiales Science
Journal title
PHYSICAL REVIEW B-CONDENSED MATTER
ISSN journal
01631829 → ACNP
Volume
59
Issue
1
Year of publication
1999
Pages
512 - 518
Database
ISI
SICI code
0163-1829(19990101)59:1<512:MSOGTT>2.0.ZU;2-T
Abstract
We report investigations on the magnetic structure through the martensitic structural transformation in the GdCu system obtained by means of neutron-d iffraction experiments. At room temperature, the as-cast bulk samples adopt a CsCl-type crystallographic structure, but when the temperature is lowere d a martensitic structural transformation CsCl-->FeB takes place at around 250 K propagating down to 110 K. After a thermal cycle through the forward and the reverse transformation, at room temperature the percentage of both phases is found to be similar to 25% for the CsCl-type structure and simila r to 75% for the FeB-type one. In contrast, in powdered samples the CsCl-ty pe phase is stable at any temperature. A comparative neutron thermodiffract ometric study in both types of samples allows us to separate and investigat e the magnetic behavior of these phases. The magnetic structure of the CsCl -type phase below T-N(CsCl) = 150 K is most consistent with a simple antife rromagnetic one with a propagation vector Q(CsCl)=(1/2, 1/2, 0), the magnet ic moments lying along the c direction. However, for the FeB-type structure below T-N(FeB)=45 K, the situation is more complex: a helimagnetic structu re with a propagation vector Q(FeB)=(0, 1/4, 1/4) is proposed. Furthermore, it is concluded that while RCu cubic magnetic structures could be understo od within a simple isotropic foe-electron Ruderman-Kittel-Kasuya-Yosida mod el, an exchange anisotropy is needed in the orthorhombic GdNi1-xCux compoun ds to account for the evolution of the magnetic structures. Finally, an ins ight into the mechanism of the martensitic transformation is also discussed . [S0163-1829(99)08401-5].