paper

Complex Antiferromagnetic Order in the Metallic Triangular Lattice Compound SmAuAlGe

arXiv:2308.13945

Abstract

The compounds AuAlGe ( lanthanide) form in a structure that features two-dimensional triangular lattices of ions that are stacked along the crystalline axis. Together with crystal electric field effects, magnetic anisotropy, and electron-mediated spin exchange interactions, this sets the stage for the emergence of strongly correlated spin and electron phenomena. Here we investigate SmAuAlGe, which exhibits weak paramagnetism that strongly deviates from conventional Curie-Weiss behavior. Complex antiferromagnetic ordering emerges at 13.2 K and 7.4 K, where heat capacity measurements show that these transitions are first and second order, respectively. These measurements also reveal that the Sommerfeld coefficient is not enhanced compared to the nonmagnetic analog YAuAlGe, consistent with the charge carrier quasiparticles exhibiting typical Fermi liquid behavior. The temperature-dependent electrical resistivity follows standard metallic behavior, but linear magnetoresistance unexpectedly appears within the ordered state. We compare these results to other AuAlGe materials, which have already been established as localized -electron magnets that are hosts for interesting magnetic and electronic phases. From this, SmAuAlGe emerges as a complex quantum spin metal, inviting further investigations into its properties and the broader family of related materials.

9 pages, 6 figures