Collective Mode at Lifshitz Transition in Iron-Pnictide Superconductors
arXiv:1408.0864 · doi:10.1088/0953-8984/28/37/375701
Abstract
We obtain the exact low-energy spectrum of two mobile holes in a t-J model for an isolated layer in an iron-pnictide superconductor. The minimum d xz and d yz orbitals per iron atom are included, with no hybridization between the two. After tuning the Hund coupling to a putative quantum critical point (QCP) that separates a commensurate spin-density wave from a hidden-order antiferromagnet at half filling, we find an s-wave hole-pair groundstate and a d-wave hole-pair excited state. Near the QCP, both alternate in sign between hole Fermi surface pockets at the Brillouin zone center and emergent electron Fermi surface pockets at momenta that correspond to commensurate spin-density waves (cSDW). The dependence of the energy splitting with increasing Hund coupling yields evidence for a true QCP in the thermodynamic limit near the putative one, at which the s-wave and d-wave Cooper pairs are degenerate. A collective s-to-d-wave oscillation of the macroscopic superconductor that couples to orthorhombic shear strain is also identified. Its resonant frequency is predicted to collapse to zero at the QCP in the limit of low hole concentration. This implies degeneracy of Cooper pairs with s, d and s+id symmetry in the corresponding quantum critical state. We argue that the critical state describes Cooper pairs in hole-doped iron superconductors at the Lifshitz transition, where electron bands first rise above the Fermi level. We thereby predict that the s-to-d-wave collective mode observed by Raman spectroscopy in Ba1-xKxFe2As2 at optimal doping should also be observed at higher doping near the Lifshitz transition.
30 pages, 6 figures, 3 tables + supplemental material. Comparison to Ba1-xKxFe2As2 series
References in corpus (26)
- Superconductivity at 38 K in the iron arsenide (Ba1-xKx)Fe2As2
- Unconventional pairing originating from disconnected Fermi surfaces in superconducting LaFeAsOF}
- High-temperature superconductivity in iron-based materials
- LaFeAsOF: A low carrier density superconductor near itinerant magnetism
- 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
- Strong Correlations and Magnetic Frustration in the High Tc Iron Pnictides
- Competing Orders and Spin-Density-Wave Instability in La(OF)FeAs
- 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
- Pairing Symmetry in a Two-Orbital Exchange Coupling Model of Oxypnictides
- Theory of magnetic excitations in iron-based layered superconductors
- Superconducting gap symmetry of Ba0.6K0.4Fe2As2 studied by angle-resolved photoemission spectroscopy
- Neutron scattering as a probe of the Fe-pnicitide superconducting gap
- Microwave Surface-Impedance Measurements of the Magnetic Penetration Depth in Single Crystal Ba1-xKxFe2As2 Superconductors: Evidence for a Disorder-Dependent Superfluid Density
- Upper critical field, anisotropy, and superconducting properties of BaKFeAs single crystals
- Inter-pocket pairing and gap symmetry in Fe-based superconductors with only electron pockets
- Quasiparticle Heat Transport in BaKFeAs: Evidence for a k-dependent Superconducting Gap without Nodes
- Universality of superconducting gaps in overdoped Ba0.3K0.7Fe2As2 observed by angle-resolved photoemission spectroscopy
- Electronic Evidence of an Insulator-Superconductor Transition in Single-Layer FeSe/SrTiO3 Films
- Abrupt change in the energy gap of superconducting Ba1-xKxFe2As2 single crystals with hole doping
- Competing Pairing Symmetries in a Generalized Two-Orbital Model for the Pnictides
- A balancing act: Evidence for a strong subdominant d-wave pairing channel in
- Fermi surface reconstruction in (BaK)FeAs (0.44 1) probed by thermoelectric power measurements
- Low ordered magnetic moment by off-diagonal frustration in undoped parent compounds to iron-based high-Tc superconductors
- Magnetic excitations in ferro-pnictide materials controlled by a quantum critical point into hidden order