Studying matter-wave emission with ultracold atoms in an optical lattice

POSTER

Abstract

We report experimental and theoretical progress on the implementation of the Weisskopf-Wigner Hamiltonian in an optical lattice scenario. In our system, lattice-trapped atoms are coupled to a continuum of freely moving, untrapped states via an internal state transition. This fully tunable system allows for studies of a plethora of effects including the transition from Markovian to non-Markovian decay and evanescently bound matter-waves. Recent technological advancements in our labroatory, including the development of a blue-detuned optical lattice and a method to measure magnetic fields to high accuracy, will allow for the exploration of new regimes in these models, especially many-body effects such as superradiant dynamics and extended range (tunneling) Hubbard models.

*Work supported by NSF Grant No. PHY-1607633

Authors

  • Arturo Pazmino

    • Dept. of Physics and Astronomy, Stony Brook University
  • Joonhyuk Kwon

    • Dept. of Physics and Astronomy, Stony Brook University
  • Ludwig Krinner

    • Dept. of Physics and Astronomy, Stony Brook University
    • Stony Brook University
  • Michael Stewart

    • Dept. of Physics and Astronomy, Stony Brook University
  • Dominik Schneble

    • Dept. of Physics and Astronomy, Stony Brook University
    • Stony Brook University