Understanding and controlling the transition between antiferromagnetic states having different symmetry content with respect to time-inversion and space-group operations are fundamental challenges for the design of magnetic phases with topologically nontrivial character. Here, we consider a paradigmatic antiferromagnetic oxide insulator, Ca[Formula: see text]RuO[Formula: see text], with symmetrically distinct magnetic ground states and unveil a novel path to guide the transition between them. The magnetic changeover results from structural and orbital reconstruction at the transition metal site that in turn arise as a consequence of substitutional doping. By means of resonant X-ray diffraction we track the evolution of the structural, magnetic, and orbital degrees of freedom for Mn doped Ca[Formula: see text]RuO[Formula: see text] to demonstrate the mechanisms which drive the antiferromagnetic transition. While our analysis focuses on a specific case of substitution, we show that any perturbation that can impact in a similar way on the crystal structure, by reconstructing the induced spin-orbital exchange, is able to drive the antiferromagnetic reorganization.

Porter, D.G., Forte, F., Granata, V., Cannavacciuolo, M., Fittipaldi, R., Cuoco, M., et al. (2022). Guiding antiferromagnetic transitions in Ca2RuO4. SCIENTIFIC REPORTS, 12, 10957-10964 [10.1038/s41598-022-14932-1].

Guiding antiferromagnetic transitions in Ca2RuO4

Granata, V;
2022-01-01

Abstract

Understanding and controlling the transition between antiferromagnetic states having different symmetry content with respect to time-inversion and space-group operations are fundamental challenges for the design of magnetic phases with topologically nontrivial character. Here, we consider a paradigmatic antiferromagnetic oxide insulator, Ca[Formula: see text]RuO[Formula: see text], with symmetrically distinct magnetic ground states and unveil a novel path to guide the transition between them. The magnetic changeover results from structural and orbital reconstruction at the transition metal site that in turn arise as a consequence of substitutional doping. By means of resonant X-ray diffraction we track the evolution of the structural, magnetic, and orbital degrees of freedom for Mn doped Ca[Formula: see text]RuO[Formula: see text] to demonstrate the mechanisms which drive the antiferromagnetic transition. While our analysis focuses on a specific case of substitution, we show that any perturbation that can impact in a similar way on the crystal structure, by reconstructing the induced spin-orbital exchange, is able to drive the antiferromagnetic reorganization.
2022
Porter, D.G., Forte, F., Granata, V., Cannavacciuolo, M., Fittipaldi, R., Cuoco, M., et al. (2022). Guiding antiferromagnetic transitions in Ca2RuO4. SCIENTIFIC REPORTS, 12, 10957-10964 [10.1038/s41598-022-14932-1].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11590/491460
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