Simulation of magnetism in a triangular optical lattice

ORAL

Abstract

We have realized a quantum simulator for magnetism with scalar bosons in a triangular optical lattice. To this end, we identify the local superfluid phase with a classical spin. By tuning the tunneling matrix elements between neighboring lattice sites in magnitude and sign, we can emulate a large variety of magnetic phases in this lattice geometry. We could confirm all the expected magnetic phases, ranging from ferromagnetic via parallel- and staggered-spin-chains to mixed anitferromagnetic-ferromagnetic phases and fully antiferromagneitc systems. In the latter case, we could even observe spin frustration which leads to spontaneous symmetry breaking.\\ We will present the experimental results obtained for the relevant regions of the spin-phase diagram together with a discussion on the technical realization of the spin-emulator. These results open the perspective to extremely complex and yet not well understood phases like the spin-liquid in a quantum xy-model and the dynamics of different types of phase transitions.

Authors

  • Patrick Windpassinger

    Institute of Laser Physics, University of Hamburg, Institute of Laser Physics, University of Hamburg, Luruper Chaussee 149, D-22761 Hamburg, Germany

  • Julian Struck

    Institute of Laser Physics, University of Hamburg

  • Christoph \"Olschl\"ager

    Institute of Laser Physics, University of Hamburg

  • Christina Staarmann

    Institute of Laser Physics, University of Hamburg, Institute of Laser Physics, University of Hamburg, Luruper Chaussee 149, D-22761 Hamburg, Germany

  • Parvis Soltan-Panahi

    Institute of Laser Physics, University of Hamburg, Institute of Laser Physics, University of Hamburg, Luruper Chaussee 149, D-22761 Hamburg, Germany

  • Rodolphe Le Targat

    Institute of Laser Physics, University of Hamburg

  • Klaus Sengstock

    Institute of Laser Physics, University of Hamburg