Ultracold nonreactive molecules in an optical lattice: connecting chemistry to many-body physics

POSTER

Abstract

We derive effective lattice models for ultracold bosonic or fermionic nonreactive molecules (NRMs) in an optical lattice. In stark contrast to the standard Hubbard model, which is commonly assumed to accurately describe NRMs, we find that the single on-site interaction parameter $U$ is replaced by a multi-channel interaction. The complex, multi-channel collisional physics is unrelated to dipolar interactions, and so occurs even in the absence of an electric field or for homonuclear molecules. We find a crossover between coherent few-channel models and fully incoherent single-channel models as the lattice depth is increased. We devise ways to control the effective model parameters using external fields and lattice anisotropy. We show that these parameters can be determined in lattice modulation experiments, which measure molecular collision dynamics with a vastly sharper energy resolution than experiments in an ultracold gas. We will report our progress calculating this novel model's ground state phase diagram.

Authors

  • Rick Mukherjee

    • Rice University
  • Kevin Ewart

    • Rice University
  • Shah Alam

    • Rice University
  • Michael L. Wall

    • JILA and NIST
    • JILA
    • JILA, NIST, University of Colorado, Boulder
    • JILA, National Institute of Standards and Technology and University of Colorado; Department of Physics, University of Colorado
  • Andris Do\c{c}aj

    • Rice University
  • Kaden Hazzard

    • Rice University