paper

Quadrupole formation and coupling to magnetic and structural degrees of freedom in the double perovskites BaMgReO and BaNaOsO

arXiv:2602.18257

Abstract

We investigate the interplay between charge, magnetic, and structural degrees of freedom in the isostructural and isoelectronic double-perovskites BaMgReO and BaNaOsO. Using first-principles-based electronic structure calculations, we show that both materials exhibit a tendency toward spontaneous quadrupolar order in the cubic paramagnetic phase, which is slightly weaker in BaNaOsO than in BaMgReO. Our analysis further reveals an intimate coupling between the local magnetic moments and charge quadrupoles, mediated by the strong spin-orbit interaction, that leads to the unusual canted configuration of magnetic moments observed in these systems. When structural degrees of freedom are included, the two materials exhibit pronounced differences. In BaMgReO the strong coupling to Jahn-Teller distortions stabilizes the antiferroic order, yielding excellent agreement with available experimental data. In contrast, the Jahn-Teller coupling is significantly weaker in BaNaOsO and appears insufficient to stabilize the antiferroic quadrupolar order. While this is consistent with the absence of any measurable long-range structural distortion above the magnetic transition temperature, it contrasts with experimental results indicating a strong canting of the magnetic moments. Our analysis thus successfully describes the mechanisms shaping the properties of the Re-compound while a full quantitative description of the magnetic ground state of BaNaOsO is still elusive.

12 pages, 5 figures, 1 table