arXiv · 2207.10087
Intermediate-scale theory for electrons coupled to frustrated local-moments
Abstract
A classic route for destroying long-lived electronic quasiparticles in a weakly interacting Fermi liquid is to couple them to other low-energy degrees of freedom that effectively act as a bath. We consider here the problem of electrons scattering off the spin fluctuations of a geometrically frustrated antiferromagnet, whose non-linear Landau-Lifshitz dynamics, which remains non-trivial at all temperatures, we model in detail. At intermediate temperatures and in the absence of any magnetic ordering, the fluctuating local-moments lead to a non-trivial angular anisotropy of the scattering-rate along the Fermi surface, which disappears with increasing temperature, elucidating the role of "hot-spots". Over a remarkably broad window of intermediate and high temperatures, the electronic properties can be described by employing a local approximation for the dynamical spin-response. This we contrast with the more familiar setup of electrons scattering off classical phonons, whose high-temperature limit differs fundamentally on account of their unbounded Hilbert space. We place our results in the context of layered magnetic delafossite compounds.
Explore related subjects
Keep this discovery
Adam J. McRoberts, J. F. Mendez-Valderrama, Roderich Moessner, Debanjan Chowdhury. 2022-07-20. Intermediate-scale theory for electrons coupled to frustrated local-moments. https://doi.org/10.1103/physrevb.107.l020402
Cite the original work for its findings. Save a collection to share your selection of sources.