Ultracold bosons in 2D quasicrystalline and Aubry-Andre systems

POSTER

Abstract

Ultracold atoms in optical lattices provide an ideal medium for studies of interacting lattice physics, thanks to their flexible, clean and widely tuneable nature. As such, applying this medium to the investigation of quasiperiodic systems, and the rich physics associated with them, presents a promising avenue to probing a range of physical phenomena, not least those related to localization. This poster presents an overview on our recent experiments studying such systems, in which we load ultracold bosons to both an eight-fold rotationally symmetric 2D optical quasicrystal, and a 2D Aubry-Andre lattice, observing signatures of superfluid, Bose glass, and Mott insulator phases and mapping out phase diagrams of both systems with variable interaction strength. We furthermore study the dynamics in the quasicrystal, looking into both sudden quenches between the superfluid and Bose glass regimes, as well as the transport properties of the system and discuss how the results relate to the underlying system and localization phenomena.

*European Union (ERC), EPSRC, EPSRC hub on Quantum Computing and Simulation

Publication: E. Gottlob and U. Schneider, Hubbard models for quasicrystalline potentials, Phys. Rev. B 107, 144202 as well as https://arxiv.org/abs/2303.00737 and 2 papers in progress, 2 papers planned.

Presenters

  • Lee C Reeve

    • University of Cambridge
    • Univ of Cambridge

Authors

  • Lee C Reeve

    • University of Cambridge
    • Univ of Cambridge
  • Qijun Wu

    • University of Cambridge
  • David Gröters

    • University of Cambridge
  • Zhuoxian Ou

    • University of Cambridge
  • Emmanuel Gottlob

    • University of Cambridge
  • Bo Song

    • Peking University
  • Ulrich Schneider

    • University of Cambridge