APS Logo

Ferro-octupolar order in d<sup>2</sup> double perovskites of Osmium from first principles

ORAL

Abstract

Conflicting interpretations of experimental data preclude the understanding of the quantum magnetic state of spin-orbit coupled d2 double perovskites. Whether the ground state is a Janh-Teller-distorted order of quadrupoles or the hitherto elusive octupolar order remains debated. We resolve this uncertainty through direct calculations of all-rank inter-site exchange interactions and inelastic neutron scattering cross-section for the d2 double perovskite series Ba2MOsO6  (M= Ca, Mg, Zn). Using advanced many-body first principles methods we show that the ground state is formed by ferro-ordered octupoles and is dominated by superexchange interactions within the ground-state Eg doublet. Computed ordering temperature of the single second-order phase transition is consistent with experimentally observed material-dependent trends. We further investigate the electronic, structural and magnetic properties of such compounds by purely Density Functional Theory (DFT) calculations with a new approach that consists in the constrain of the onsite density matrix, as obtained via DFT +  Dynamical Mean Field Theory calculations. We prove that this method is able to reproduce the ferro-octupolar order and we compare this result to conventional DFT dipolar solutions.

Publication: Ferro-octupolar order and low-energy excitations in d2 double perovskites of Osmium: arXiv:2107.04493<br>Modelling of Multipolar phases in d2 double perovskites from First Principles: planned paper

Presenters

  • Dario Fiore Mosca

    University of Vienna & Vienna Doctoral School of Physics, University of Vienna, A-1090 Vienna, Austria

Authors

  • Dario Fiore Mosca

    University of Vienna & Vienna Doctoral School of Physics, University of Vienna, A-1090 Vienna, Austria

  • Cesare Franchini

    University of Vienna, Univ of Vienna, Univ of Vienna, Univ of Bologna, Universita' di Bologna & University of Vienna, University of Vienna, A-1090 Vienna, Austria, Alma Mater Studiorum–Università di Bologna, Bologna, 40127, Italy

  • Leonid V Pourovskii

    Centre de Physique Theorique Ecole Polytechnique & College de France