Enhanced magnetism and suppressed magnetoelastic coupling induced by electron doping in Ca 1 - x Y x MnReO 6

The Ca MnReO double perovskite is a spin-orbit-assisted Mott insulator with exotic magnetic properties, including a largely non-collinear Mn spin arrangement and nearly orthogonal coupling between such spins and the much smaller Re 5 magnetic moments. Here, the electron-doped compound Ca Y MnReO ( =...

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Veröffentlicht in:Journal of physics. Condensed matter 2022-04, Vol.34 (24), p.245803
Hauptverfasser: Cavichini, A S, Orlando, M T D, Fantini, M C A, Tartaglia, R, Galdino, C W, Damay, F, Porcher, F, Granado, E
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Sprache:eng
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Zusammenfassung:The Ca MnReO double perovskite is a spin-orbit-assisted Mott insulator with exotic magnetic properties, including a largely non-collinear Mn spin arrangement and nearly orthogonal coupling between such spins and the much smaller Re 5 magnetic moments. Here, the electron-doped compound Ca Y MnReO ( = 0.1, 0.2 and 0.3) is reported and a detailed investigation is conducted for = 0.3. Neutron and x-ray powder diffraction confirm that nearly full chemical order is maintained at the Mn and Re sites under the Y substitution at the Ca site. X-ray absorption measurements and an analysis of the Mn-O/Re-O bond distances show that the Mn oxidation state remains stable at +2 whereas Re is reduced upon doping. The electron doping increases the magnetic ordering temperature from = 121 to 150 K and also enhances significantly the ferromagnetic component of the Mn spins at the expense of the antiferromagnetic component at the base temperature ( = 3 K). The lattice parameter anomalies at observed in the parent compound are suppressed by the electron doping. The possible reasons for the enhanced magnetism and the suppressed magnetoelastic coupling in Ca Y MnReO are discussed.
ISSN:0953-8984
1361-648X
DOI:10.1088/1361-648X/ac61b5