Quantum Hall phase diagram of two-component Bose gases: Intercomponent entanglement and pseudopotentials
arXiv:1703.07222 · doi:10.1103/PhysRevA.96.053626
Abstract
We study the ground-state phase diagram of two-dimensional two-component (or pseudospin-1/2) Bose gases in a high synthetic magnetic field in the space of the total filling factor and the ratio of the intercomponent coupling to the intracomponent one . Using exact diagonalization, we find that when the intercomponent coupling is attractive (), the product states of a pair of nearly uncorrelated quantum Hall states are remarkably robust and persist even when is close to . This contrasts with the case of an intercomponent repulsion, where a variety of spin-singlet quantum Hall states with high intercomponent entanglement emerge for . We interpret this marked dependence on the sign of in light of pseudopotentials on a sphere, and also explain recent numerical results in two-component Bose gases in mutually antiparallel magnetic fields where a qualitatively opposite dependence on the sign of is found. Our results thus unveil an intriguing connection between multicomponent quantum Hall systems and quantum spin Hall systems in minimal setups.
13 pages, 17 figures. v2: Some changes in the result for the total filling factor 4/3
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