Publication | Open Access
Quantum cluster approach to the spinful Haldane-Hubbard model
31
Citations
74
References
2016
Year
Quantum ScienceQuantum Cluster MethodsQuantum Lattice SystemEngineeringQuantum ComputingPhysicsMany-body Quantum PhysicCluster Perturbation TheoryApplied PhysicsQuantum Field TheoryCondensed Matter PhysicsQuantum Cluster ApproachDisordered Quantum SystemTopological Quantum StateTopological PhaseVariational Cluster Approximation
We study the spinful fermionic Haldane-Hubbard model at half-filling using a combination of quantum cluster methods: cluster perturbation theory, the variational cluster approximation, and cluster dynamical mean-field theory. We explore possible zero-temperature phases of the model as a function of onsite repulsive interaction strength and next-nearest-neighbor hopping amplitude and phase. Our approach allows us to access the regime of intermediate interaction strength, where charge fluctuations are significant and effective spin model descriptions may not be justified. Our approach also improves upon mean-field solutions of the Haldane-Hubbard model by retaining local quantum fluctuations and treating them nonperturbatively. We find a correlated topological Chern insulator for weak interactions and a topologically trivial N\'eel antiferromagnetic insulator for strong interactions. For intermediate interactions, we find that topologically nontrivial N\'eel antiferromagnetic insulating phases and/or a topologically nontrivial nonmagnetic insulating phase may be stabilized.
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