English

Spin-charge-lattice coupling across the charge density wave transition in a Kagome lattice antiferromagnet

Strongly Correlated Electrons 2024-08-14 v1

Abstract

Understanding spin and lattice excitations in a metallic magnetic ordered system form the basis to unveil the magnetic and lattice exchange couplings and their interactions with itinerant electrons. Kagome lattice antiferromagnet FeGe is interesting because it displays rare charge density wave (CDW) deep inside the antiferromagnetic ordered phase that interacts with the magnetic order. We use neutron scattering to study the evolution of spin and lattice excitations across the CDW transition TCDWT_{\rm CDW} in FeGe. While spin excitations below \sim100 meV can be well described by spin waves of a spin-1 Heisenberg Hamiltonian, spin excitations at higher energies are centered around the Brillouin zone boundary and extend up to 180\sim180 meV consistent with quasiparticle excitations across spin-polarized electron-hole Fermi surfaces. Furthermore, cc-axis spin wave dispersion and Fe-Ge optical phonon modes show a clear hardening below TCDWT_{\rm CDW} due to spin-charge-lattice coupling but with no evidence for a phonon Kohn anomaly. By comparing our experimental results with density functional theory calculations in absolute units, we conclude that FeGe is a Hund's metal in the intermediate correlated regime where magnetism has contributions from both itinerant and localized electrons arising from spin polarized electronic bands near the Fermi level.

Keywords

Cite

@article{arxiv.2404.04459,
  title  = {Spin-charge-lattice coupling across the charge density wave transition in a Kagome lattice antiferromagnet},
  author = {Xiaokun Teng and David W. Tam and Lebing Chen and Hengxin Tan and Yaofeng Xie and Bin Gao and Garrett E. Granroth and Alexandre Ivanov and Philippe Bourges and Binghai Yan and Ming Yi and Pengcheng Dai},
  journal= {arXiv preprint arXiv:2404.04459},
  year   = {2024}
}