English

Theory of unconventional magnetism in a Cu-based kagome metal

Strongly Correlated Electrons 2026-02-17 v2

Abstract

Kagome metals have established a new arena for correlated electron physics. To date, the predominant experimental evidence centers around unconventional charge order, nematicity, and superconductivity, while magnetic fluctuations due to electronic interactions, i.e., beyond local atomic magnetism, have largely been elusive. We find the challenge of locating the appropriate parameter regime for such exotic order to center around two aspects. First, the correlations implied by low-energy orbitals have to be sufficiently large to yield a dominance of magnetic fluctuations and weak to retain an itinerant parent state. Second, the kinematic kagome profile at the Fermi level demands an efficient mitigation of sublattice interference causing the suppression of magnetic fluctuations descending from electronic on-site repulsion. We elucidate our methodology by analyzing the potential copper-based kagome compound CsCu3_3Cl5_5: From ab initio design and many-body analysis, we develop a model framework of realistic Cu-based kagome materials the simulations of which reveal unconventional magnetic order in a kagome metal.

Keywords

Cite

@article{arxiv.2411.03563,
  title  = {Theory of unconventional magnetism in a Cu-based kagome metal},
  author = {Anja Wenger and Armando Consiglio and Hendrik Hohmann and Matteo Dürrnagel and Fabian O. von Rohr and Harley D. Scammell and Julian Ingham and Domenico Di Sante and Ronny Thomale},
  journal= {arXiv preprint arXiv:2411.03563},
  year   = {2026}
}

Comments

6 pages, 3 figures