Evolution of the Fermi surface topology in doped 122 iron pnictides
arXiv:1311.7047 · doi:10.1103/PhysRevB.88.214510
Abstract
Based on the minimum two-orbital model and the phase diagram recently proposed by Tai et al.\ (Europhys. Lett. \textbf{103}, 67001(2013)) for both electron- and hole-doped 122 iron-based superconducting compounds, we use the Bogoliubov-de Gennes equations to perform a comprehensive investigation of the evolution of the Fermi surface (FS) topology in the presence of the collinear spin-density-wave (SDW) order as the doping is changed. In the parent compound, the ground state is the SDW order, where the FS is not completely gapped, and two types of Dirac cones, one electron-doped and the other hole-doped emerge in the magnetic Brillouin zone. Our findings are qualitatively consistent with recent angle-resolved photoemission spectroscopy and magneto-resistivity measurements. We also examine the FS evolution of both electron- and hole-doped cases and compare them with measurements, as well as with those obtained by other model Hamiltonians.
6 pages, 5 figures
References in corpus (25)
- Unconventional pairing originating from disconnected Fermi surfaces in superconducting LaFeAsOF}
- Observation of Fermi-surface-dependent nodeless superconducting gaps in Ba0.6K0.4Fe2As2
- Near-degeneracy of several pairing channels in multiorbital models for the Fe-pnictides
- A minimal two-band model for the superconducting Fe-pnictides
- Funtional Renormalization Group Study of the Pairing Symmetry and Pairing Mechanism of the FeAs Based High Temperature Superconductors
- Superconductivity and Crystal Structures of (Ba1-xKx)Fe2As2 (x = 0 - 1)
- Pairing Symmetry in a Two-Orbital Exchange Coupling Model of Oxypnictides
- Coexistence of the spin-density-wave and superconductivity in the (Ba,K)Fe2As2
- Multiband magnetism and superconductivity in Fe-based compounds
- Nodal Spin Density Wave and band topology of the FeAs based materials
- Spin-triplet p-wave pairing in a 3-orbital model for iron pnictide superconductors
- Bandwidth and Fermi surface of Iron-Oxypnictides: covalency and sensitivity to structural changes
- Phase Diagram of Ba1-xKxFe2As2
- Multiple Nodeless Superconducting Gaps in (Ba0.6K0.4)Fe2As2 Superconductor from Angle-Resolved Photoemission Spectroscopy
- A neutron scattering study of the interplay between structure and magnetism in Ba(FeCo)As
- Space group symmetry, spin-orbit coupling and the low energy effective Hamiltonian for iron based superconductors
- Spin Fluctuations, Interband Coupling, and Unconventional Pairing in Iron-based Superconductors
- Momentum-dependence of Superconducting Gap, strong-coupling dispersion Kink, and tightly bound Cooper pairs in the high-Tc (Sr,Ba)1-x(K,Na)xFe2As2 superconductors
- Electron and hole Dirac cone states in-pairs in Ba(FeAs) confirmed by magnetoresistance
- Interplay between magnetism and superconductivity in Fe-pnictides
- Electronic structure of heavily electron-doped BaFeCoAs studied by angle-resolved photoemission
- Observation of the Josephson effect in Pb/(Ba,K)Fe2As2 single crystal junctions
- Homogeneous vs. inhomogeneous coexistence of magnetic order and superconductivity probed by NMR in Co and K doped iron pnictides
- Enhanced Orbital Degeneracy in Momentum Space for LaOFeAs
- Quasiparticle states around a nonmagnetic impurity in electron-doped iron-based superconductors with spin-density-wave order
Cited by in corpus (5)
- Low-energy microscopic models for iron-based superconductors: a review
- GPU-based acceleration of free energy calculations in solid state physics
- Evolution of quasiparticle states with and without a Zn-impurity in doped 122 iron pnictides
- Phase diagram of the isovalent phosphorous-substituted 122-type iron pnictides
- Observation of the Dirac Dispersions in Co-doped CaFe2As2