Non-collinear antiferromagnetic states in Ru-based Heusler compounds induced by biquadratic coupling
Abstract
We investigate the magnetic properties of RuMn ( = Sn, Sb, Ge, Si) chemically ordered full Heusler compounds for zero as well as finite temperatures. Based on first principles calculations we derive the interatomic isotropic bilinear and biquadratic couplings between Mn atoms from the paramagnetic state. We find frustrated isotropic couplings for all compounds and in case of = Si and Sb a nearest-neighbor biquadratic coupling that favors perpendicular alignment between the Mn spins. By using an extended classical Heisenberg model in combination with spin dynamics simulations we obtain the magnetic equilibrium states. From these simulations we conclude that the biquadratic coupling, in combination with the frustrated isotropic interactions, leads to non-collinear magnetic ground states in the RuMnSi and RuMnSb compounds. In particular, for these alloys we find two distinct, non-collinear ground states which are energetically equivalent and can be identified as and states on a frustrated fcc lattice. Investigating the thermal stability of the non-collinear phase we find that in case of RuMnSi the multiple phase undergoes a transition to the single phase, while in case of RuMnSb the corresponding transition is not obtained due to the larger magnitude of the nearest-neighbor biquadratic coupling.
Keywords
Cite
@article{arxiv.1912.10299,
title = {Non-collinear antiferromagnetic states in Ru-based Heusler compounds induced by biquadratic coupling},
author = {Eszter Simon and Andreas Donges and László Szunyogh and Ulrich Nowak},
journal= {arXiv preprint arXiv:1912.10299},
year = {2020}
}
Comments
7 pages, 6 figures, 1 table