English

Strain and pseudo-magnetic fields in optical lattices from density-assisted tunneling

Quantum Gases 2022-04-28 v1 Mesoscale and Nanoscale Physics

Abstract

Applying time-periodic modulations is routinely used to control and design synthetic matter in quantum-engineered settings. In lattice systems, this approach is explored to engineer band structures with non-trivial topological properties, but also to generate exotic interaction processes. A prime example is density-assisted tunneling, by which the hopping amplitude of a particle between neighboring sites explicitly depends on their respective occupations. Here, we show how density-assisted tunneling can be tailored in view of simulating the effects of strain in synthetic graphene-type systems. Specifically, we consider a mixture of two atomic species on a honeycomb optical lattice: one species forms a Bose-Einstein condensate in an anisotropic harmonic trap, whose inhomogeneous density profile induces an effective uniaxial strain for the second species through density-assisted tunneling processes. In direct analogy with strained graphene, the second species experiences a pseudo magnetic field, hence exhibiting relativistic Landau levels and the valley Hall effect. Our proposed scheme introduces a unique platform for the investigation of strain-induced gauge fields and their possible interplay with quantum fluctuations and collective excitations.

Keywords

Cite

@article{arxiv.2104.13394,
  title  = {Strain and pseudo-magnetic fields in optical lattices from density-assisted tunneling},
  author = {Maxime Jamotte and Nathan Goldman and Marco Di Liberto},
  journal= {arXiv preprint arXiv:2104.13394},
  year   = {2022}
}

Comments

13 pages, 12 figures