Structural-transition-induced quasi two-dimensional Fermi surface in FeSe
arXiv:1610.03211 · doi:10.1103/PhysRevB.94.134505
Abstract
We report detailed study of angular-dependent magnetoresistance (AMR) with tilting angel from -axis ranging from 0 to 360 on a high-quality FeSe single crystal. A pronounced AMR with twofold symmetry is observed, which is caused by the quasi two-dimensional (2D) Fermi surface. The pronounced AMR is observed only in the orthorhombic phase, indicating that the quasi-2D Fermi surface is induced by the structural transition. Details about the influence of the multiband effect to the AMR are also discussed. Besides, the angular response of a possible Dirac-cone-like band structure is investigated by analyzing the detailed magnetoresistance at different . The obtained characteristic field () can be also roughly scaled in the 2D approximation, which indicates that the Dirac-cone-like state is also 2D in nature.
7 pages, 5 figures
References in corpus (15)
- Superconductivity in single-layer films of FeSe with a transition temperature above 100 K
- Superconductivity at 36 K in beta-Fe1.01Se with the compression of the interlayer separation under pressure
- Two-dimensional Dirac fermions in a topological insulator: transport in the quantum limit
- Topological origin of subgap conductance in insulating bilayer graphene
- The Structural Phase Transition in FeSe (Fe1+dSe)
- Orbital-driven nematicity in FeSe
- Field-induced superconducting phase of FeSe in the BCS-BEC cross-over
- Emergence of the nematic electronic state in FeSe
- Observation of Dirac Holes and Electrons in a Topological Insulator
- Reconstruction of Band Structure Induced by Electronic Nematicity in an FeSe Superconductor
- Origin of the tetragonal-to-orthorhombic (nematic) phase transition in FeSe: a combined thermodynamic and NMR study
- Lifting of xz/yz orbital degeneracy at the structural transition in detwinned FeSe
- Anomalous Fermi surface in FeSe seen by Shubnikov-de Haas oscillation measurements
- Superconducting properties of sulfur-doped iron selenide
- Electric Transport of a Single Crystal Iron Chalcogenide FeSe Superconductor: Evidence of Symmetry Breakdown Nematicity and Additional Ultrafast Dirac cone-Like Carriers