English

How correlations change the magnetic structure factor of the kagome Hubbard model

Strongly Correlated Electrons 2021-11-04 v1

Abstract

The kagome Hubbard model (KHM) is a paradigmatic example of a frustrated two-dimensional model. While its strongly correlated regime, described by a Heisenberg model, is of topical interest due to its enigmatic prospective spin-liquid ground state, the weakly and moderately correlated regimes remain largely unexplored. Motivated by the rapidly growing number of metallic kagome materials (e.g., Mn3_3Sn, Fe3_3Sn2_2, FeSn, Co3_3Sn2_2S2_2, Gd3_3Ru4_4Al12_{12}), we study the respective regimes of the KHM by means of three complementary numerical methods: the dynamical mean-field theory (DMFT), the dynamical vertex approximation (DΓ\GammaA), and determinant quantum Monte Carlo (DQMC). In contrast to the archetypal square-lattice, we find no tendencies towards magnetic ordering, as magnetic correlations remain short-range. Nevertheless, the magnetic correlations undergo a remarkable crossover as the system approaches the metal-to-insulator transition. The Mott transition itself does however not affect the magnetic correlations. Our equal-time and dynamical structure factors can be used as a reference for inelastic neutron scattering experiments on the growing family of metallic kagome materials.

Keywords

Cite

@article{arxiv.2011.01085,
  title  = {How correlations change the magnetic structure factor of the kagome Hubbard model},
  author = {Josef Kaufmann and Klaus Steiner and Richard T. Scalettar and Karsten Held and Oleg Janson},
  journal= {arXiv preprint arXiv:2011.01085},
  year   = {2021}
}

Comments

18 pages, 14 figures