How superconductivity emerges in the vicinity of an antiferromagnetic insulating state is a long-standing issue of strong correlation physics. We study the transition from an antiferromagnetic insulator to a superconductor by hole-doping based on a bilayer generalization of a Hubbard-like model. The projector quantum Monte-Carlo simulations are employed, which are sign-problem-free both at and away from half-filling. An anisotropic Ising antiferromagnetic Mott insulating phase occurs at half-filling, which is weakened by hole-doping. Below a critical doping value, antiferromagnetism coexists with the singlet superconductivity, which is a pairing across each rung with an extended s-wave symmetry. As further increasing doping, the antiferromagnetic order vanishes, leaving only a superconducting phase. These results provide important information on how superconductivity appears upon doping the parent Mott-insulating state.
@article{arxiv.1806.03652,
title = {Doping-driven Antiferromagnetic Insulator -- Superconductor Transition: a Quantum Monte Carlo Study},
author = {Tianxing Ma and Da Wang and Congjun Wu},
journal= {arXiv preprint arXiv:1806.03652},
year = {2022}
}
Comments
Somre more data are added and some figures are updated