Iron-Based Superconductors as Parity Odd Superconductors
arXiv:1301.6342
Abstract
Parity is a fundamental quantum number to classify a state of matter. Materials rarely possess ground states with odd parity. We show that the superconducting state in iron-based superconductors is classified as an odd parity s-wave spin-singlet pairing state in a single trilayer FeAs/Se, the building block of the materials. In a low energy effective model constructed on the Fe square bipartite lattice, the superconducting order parameter in this state is a combination of a s-wave normal pairing between two sublattices and a s-wave -pairing within the sublattices. Parity conservation was violated in proposed superconducting states in the past. The state has a fingerprint with a real space sign inversion between the top and bottom As/Se layers. The results demonstrate iron-based superconductors being a new quantum state of matter and suggest that the measurement of the odd parity can establish fundamental principles related to high temperature superconducting mechanism.
10 pages, 6 figures. (The new version combines with arXiv:1303.2624 to form a single paper)
References in corpus (22)
- Unconventional pairing originating from disconnected Fermi surfaces in superconducting LaFeAsOF}
- Superconductivity at 41 K and its competition with spin-density-wave instability in layered CeOFFeAs
- Observation of Fermi-surface-dependent nodeless superconducting gaps in Ba0.6K0.4Fe2As2
- Interface-induced superconductivity and strain-dependent spin density wave in FeSe/SrTiO3 thin films
- Electronic Origin of High Temperature Superconductivity in Single-Layer FeSe Superconductor
- Magnetism and its microscopic origin in iron-based high-temperature superconductors
- 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
- Heavily electron-doped electronic structure and isotropic superconducting gap in AxFe2Se2 (A=K,Cs)
- Electronic Structure and Doping in BaFeAs and LiFeAs: Density Functional Calculations
- Pairing Symmetry in a Two-Orbital Exchange Coupling Model of Oxypnictides
- Iron-based layered superconductor LaOFFeAs: an antiferromagnetic semimetal
- Spin fluctuations and superconductivity in a 3D tight-binding model for BaFe2As2
- Spin-triplet p-wave pairing in a 3-orbital model for iron pnictide superconductors
- d-wave pairing from spin fluctuations in the KxFe{2-y}Se2 superconductors
- Multiple Nodeless Superconducting Gaps in (Ba0.6K0.4)Fe2As2 Superconductor from Angle-Resolved Photoemission Spectroscopy
- 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
- Inter-pocket pairing and gap symmetry in Fe-based superconductors with only electron pockets
- Experimental Consequences of the S-wave Superconductivity in the Iron-Pnictides
- Universality of superconducting gaps in overdoped Ba0.3K0.7Fe2As2 observed by angle-resolved photoemission spectroscopy
- Impact of the 2 Fe unit cell on the electronic structure measured by ARPES in iron pnictides
- Quantum Monte Carlo Study of Pairing Symmetry and Correlation in Iron-based Superconductors