Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
8153249 | Journal of Magnetism and Magnetic Materials | 2018 | 16 Pages |
Abstract
Structural and magnetic properties of the disordered and ordered Fe2MnAl Heusler alloys have systematically been investigated by local and bulk experimental methods. Plastic deformation, induced by cold-work, leads to a structural phase transformation from the ordered L21 to a disordered A2-structure, concomitantly with a change from paramagnetic PM to ferromagnetic FM state; an effect attributed to the strain-induced ferromagnetism. This transition is explained assuming a gradual transformation of the L21-structure to the anti-phase boundary APB tubes, which result in Fe-cluster formation. Plastic deformed ribbon annealed at low temperatures (Tanâ¯<â¯673â¯K) favors stabilization of L21-structure with (4â¯0â¯0) preferential orientation and magnetic ordering temperature of about 120â¯K. Considering that Fe atoms order magnetically at 120â¯K, as seen by Mössbauer, and the measured reduction of total magnetization for temperatures below 50â¯K, one proposes that Mn and Fe sublattices interact magnetically in a non-collinear magnetic structure that is established due to Fe-Fe, Mn-Mn and Fe-Mn frustrated magnetic couplings. High temperature annealing (Tanâ¯>â¯673â¯K) favors a strong Mn segregation, concomitantly with formation of disordered Fe-Mn-Al alloys that also have magnetic ordering temperature approaching to 300â¯K.
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Authors
C.E.A. Guimarães, J.R.C. Proveti, V.P. Nascimento, A. Biondo, C. Larica, E.C. Passamani,