| Literature DB >> 30013056 |
Kyoo Kim1,2, Junho Seo1,3, Eunwoo Lee4,5,6, K-T Ko1,2, B S Kim4,5, Bo Gyu Jang7, Jong Mok Ok1,3, Jinwon Lee1,3, Youn Jung Jo8, Woun Kang9, Ji Hoon Shim7, C Kim4,5, Han Woong Yeom1,3, Byung Il Min1, Bohm-Jung Yang10,11,12, Jun Sung Kim13,14.
Abstract
Topological semimetals host electronic structures with several band-contact points or lines and are generally expected to exhibit strong topological responses. Up to now, most work has been limited to non-magnetic materials and the interplay between topology and magnetism in this class of quantum materials has been largely unexplored. Here we utilize theoretical calculations, magnetotransport and angle-resolved photoemission spectroscopy to propose Fe3GeTe2, a van der Waals material, as a candidate ferromagnetic (FM) nodal line semimetal. We find that the spin degree of freedom is fully quenched by the large FM polarization, but the line degeneracy is protected by crystalline symmetries that connect two orbitals in adjacent layers. This orbital-driven nodal line is tunable by spin orientation due to spin-orbit coupling and produces a large Berry curvature, which leads to a large anomalous Hall current, angle and factor. These results demonstrate that FM topological semimetals hold significant potential for spin- and orbital-dependent electronic functionalities.Entities:
Year: 2018 PMID: 30013056 DOI: 10.1038/s41563-018-0132-3
Source DB: PubMed Journal: Nat Mater ISSN: 1476-1122 Impact factor: 43.841