As the first magnetic kagome material to exhibit the charge density wave (CDW) order, FeGe has attracted much attention in recent studies. Similar to AV3Sb5 (A = K, Cs, Rb), FeGe exhibits the CDW pattern with an in-plane 2×2 structure and the existence of van Hove singularities (vHSs) near the Fermi level. However, sharply different from AV3Sb5 which has phonon instability at M point, all the theoretically calculated phonon frequencies in FeGe remain positive. Here, we perform a comprehensive study of the band structures, Fermi surfaces and nesting function of FeGe through first-principles calculations. Surprisingly, we find that the maximum of nesting function is at K point instead of M point. Two Fermi pockets with Fe-dxz and Fe-dx2−y2/dxy orbital characters have large contribution to the Fermi nesting, which evolve significantly with kz, indicating the highly three-dimensional (3D) feature of FeGe in contrast to AV3Sb5. Meanwhile, the vHSs are close to the Fermi surface only in a small kz range, and does not play a leading role in nesting function. Considering the effect of local Coulomb interaction, we reveal that the Fermi level eigenstates nested by vector K are mainly distributed from unequal sublattice occupancy, thus the instability at K point is significantly suppressed. Meanwhile, the wave functions nested by vector M have many ingredients located at the same Fe site, thus the instability at M point is enhanced. This indicates that the electron correlation, rather than electron-phonon interaction, plays a key role in the CDW transition at M point.
@article{arxiv.2302.03622,
title = {Novel three-dimensional Fermi surface and electron-correlation-induced charge density wave in FeGe},
author = {Lin Wu and Yating Hu and Di Wang and Xiangang Wan},
journal= {arXiv preprint arXiv:2302.03622},
year = {2023}
}