Unconventional spin transport in strongly correlated kagome systems
Abstract
Recent progress in material design enables the study of correlated, low-temperature phases and associated anomalous transport in two-dimensional kagome systems. Here, we show that unconventional spin transport can arise in such systems even at elevated temperatures due to emergent dynamical constraints. To demonstrate this effect, we consider a strong-coupling limit of an extended Hubbard model on the kagome lattice with density of . We numerically investigate the charge and spin transport by a cellular automaton circuit, allowing us to perform simulations on large systems to long times while preserving the essential conservation laws. The charge dynamics reflects the constraints and can be understood by a Gaussian field theory of a scalar height field. Moreover, the system exhibits a hidden spin conservation law with a dynamic sublattice structure, which enables additional slow relaxation pathways for spin excitations. These features can be directly tested by measuring the dynamic spin structure factor with neutron scattering.
Keywords
Cite
@article{arxiv.2307.13725,
title = {Unconventional spin transport in strongly correlated kagome systems},
author = {Masataka Kawano and Frank Pollmann and Michael Knap},
journal= {arXiv preprint arXiv:2307.13725},
year = {2024}
}
Comments
11 pages, 7 figures