Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
8153489 | Journal of Magnetism and Magnetic Materials | 2018 | 19 Pages |
Abstract
The magnetic structures and magnetic phase transitions in intermetallic layered La1-xTbxMn2Si2 compounds (the ThCr2Si2-type structure) are investigated using the first-principles method and XPS measurements. The experimentally observed transition from ferromagnetic (FM) to antiferromagnetic (AFM) ordering of Mn sublattice with increase of terbium concentration is successfully reproduced in calculations for collinear magnetic moments model. The FMâAFM change of interplane magnetic ordering at small x is irrelevant to the number of f-electrons of the rare-earth ion. In contrast it was shown to be related to the Mn-Mn in-plane distance. Calculated Tb critical concentration for this transition xâ0.14 corresponds to the Mn-Mn in-plane distance 0.289â¯nm, very close to the experimentally observed transition distance 0.287â¯nm. The crystal cell compression due to substitution increases an overlap between Mn dxz,yz and the rare-earth ion d orbitals. Resulting hybridized states manifest themselves as an additional peak in the density of states. We suggest that a corresponding interlayer Mn-R-Mn superexchange interaction stabilizes AFM magnetic ordering in these compounds with Tb doping level x>0.2. The results of DFT calculations are in agreement with X-ray photoemission spectra for La1-xTbxMn2Si2.
Related Topics
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Authors
Dm.M. Korotin, S.V. Streltsov, E.G. Gerasimov, N.V. Mushnikov, I.S. Zhidkov, A.I. Kukharenko, L.D. Finkelstein, S.O. Cholakh, E.Z. Kurmaev,