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Correlated topological phases and exotic magnetism with ultracold fermions

  • Peter P. Orth
  • , Daniel Cocks
  • , Stephan Rachel
  • , Michael Buchhold
  • , Karyn Le Hur
  • , Walter Hofstetter
  • Institute of Meteorology and Climate Research
  • Goethe University Frankfurt am Main
  • Technical University Dresden
  • University of Innsbruck

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

Résumé

Motivated by the recent progress in engineering artificial non-Abelian gauge fields for ultracold fermions in optical lattices, we investigate the time-reversal-invariant Hofstadter-Hubbard model. We include an additional staggered lattice potential and an artificial Rashba-type spin-orbit coupling term available in experiment. Without interactions, the system can be either a (semi)-metal, a normal or a topological insulator, and we present the non-Abelian generalization of the Hofstadter butterfly. Using a combination of real-space dynamical mean-field theory (RDMFT), analytical arguments, and Monte-Carlo simulations we study the effect of strong on-site interactions. We determine the interacting phase diagram, and discuss a scenario of an interaction-induced transition from a normal to a topological insulator. At half-filling and large interactions, the system is described by a quantum spin Hamiltonian, which exhibits exotic magnetic order due to the interplay of Rashba-type spin-orbit coupling and the artificial time-reversal-invariant magnetic field term. We determine the magnetic phase diagram: both for the itinerant model using RDMFT and for the corresponding spin model in the classical limit using Monte-Carlo simulations.

langue originaleAnglais
Numéro d'article134004
journalJournal of Physics B: Atomic, Molecular and Optical Physics
Volume46
Numéro de publication13
Les DOIs
étatPublié - 14 juil. 2013

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