| Literature DB >> 34035305 |
Man Li1, Qi Wang1, Guangwei Wang2, Zhihong Yuan2, Wenhua Song1, Rui Lou3,4,5, Zhengtai Liu6, Yaobo Huang7, Zhonghao Liu8,9, Hechang Lei10, Zhiping Yin11, Shancai Wang12.
Abstract
Kagome-lattices of 3d-transition metals hosting Weyl/Dirac fermions and topological flat bands exhibit non-trivial topological characters and novel quantum phases, such as the anomalous Hall effect and fractional quantum Hall effect. With consideration of spin-orbit coupling and electron correlation, several instabilities could be induced. The typical characters of the electronic structure of a kagome lattice, i.e., the saddle point, Dirac-cone, and flat band, around the Fermi energy (EF) remain elusive in magnetic kagome materials. We present the experimental observation of the complete features in ferromagnetic kagome layers of YMn6Sn6 helically coupled along the c-axis, by using angle-resolved photoemission spectroscopy and band structure calculations. We demonstrate a Dirac dispersion near EF, which is predicted by spin-polarized theoretical calculations, carries an intrinsic Berry curvature and contributes to the anomalous Hall effect in transport measurements. In addition, a flat band and a saddle point with a high density of states near EF are observed. These multi-sets of kagome features are of orbital-selective origin and could cause multi-orbital magnetism. The Dirac fermion, flat band and saddle point in the vicinity of EF open an opportunity in manipulating the topological properties in magnetic materials.Entities:
Year: 2021 PMID: 34035305 DOI: 10.1038/s41467-021-23536-8
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919