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$S_4$ Symmetric Microscopic Model for Iron-Based Superconductors

Superconductivity 2012-06-05 v5 Strongly Correlated Electrons

Abstract

Although iron-based superconductors are multi-orbital systems with complicated band structures, we demonstrate that the low energy physics which is responsible for high-TcT_c superconductivity is essentially governed by one effective Hamiltonianwith two almost decoupled orbitals near half filling. This underlining electronic structure is protected by the S4S_4 symmetry. With repulsive or strong next nearest neighbor antiferromagnetic exchange interactions, each single-orbital effective Hamiltonian results in a robust A1gA_{1g} s-wave pairing which can be exactly mapped to the d-wave pairing observed in cuprates. The classification of the superconducting(SC) states according to the S4S_4 symmetry leads to a natural prediction of the existence of two different phases named A and B phases. In the B phase, the superconducting order has an overall sign change along c-axis between the top and bottom As(Se) planes in a single Fe-(As)Se trilayer structure, which is an analogy of the sign change under the 9090^\circ degree rotation in the d-wave SC state of cuprates. Our derivation provides a unified understanding of iron-pnictides and iron-chalcogenides, and suggests that cuprates and iron-based superconductors share identical high-TcT_c superconducting mechanism.

Keywords

Cite

@article{arxiv.1202.5881,
  title  = {$S_4$ Symmetric Microscopic Model for Iron-Based Superconductors},
  author = {Jiangping Hu and Ningning Hao},
  journal= {arXiv preprint arXiv:1202.5881},
  year   = {2012}
}

Comments

8 figures. 10 pages. Note: the paper Arxiv:1203.2304 are combined together in this new version

R2 v1 2026-06-21T20:25:30.746Z