Holes and magnetic polarons in a triangular lattice antiferromagnet
Jasper van de Kraats, Kristian K. Nielsen, Georg M. Bruun

TL;DR
This paper analytically investigates the behavior of a hole in a triangular lattice antiferromagnet, revealing how geometric frustration influences magnetic polarons and validating the SCBA method in this context.
Contribution
It provides an exact analytical solution for a hole's dynamics in a frustrated triangular lattice, emphasizing the role of geometric frustration and benchmarking the SCBA approximation.
Findings
Magnetic frustration causes a burst of spin wave propagation.
The non-equilibrium dynamics are described by a time-dependent coherent state.
SCBA accurately models the magnetic polaron spectrum in a triangular lattice.
Abstract
The intricate interplay between charge motion and magnetic order in geometrically frustrated lattices is central for the properties of many two-dimensional quantum materials. The triangular lattice antiferromagnet is a canonical example of a frustrated system, and here we analyse the dynamics of a hole in such a lattice focusing on observables that have become accessible in a new generation of experiments. Using the - model, we solve the problem exactly within linear spin wave theory in the limit of strong magnetic interactions, showing that the ground state is described by a coherent state of spin waves. The derivation highlights the crucial role played by the interaction between a static hole and the neighboring spins, which originates in the geometric frustration and has often been omitted in earlier works. Furthermore, we show that the non-equilibrium dynamics after a hole has…
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Taxonomy
TopicsPhysics of Superconductivity and Magnetism · Cold Atom Physics and Bose-Einstein Condensates · Strong Light-Matter Interactions
