arXiv · 1808.00506
Floquet dynamics in driven Fermi-Hubbard systems
Abstract
We study the dynamics and timescales of a periodically driven Fermi-Hubbard model in a three-dimensional hexagonal lattice. The evolution of the Floquet many-body state is analyzed by comparing it to an equivalent implementation in undriven systems. The dynamics of double occupancies for the near- and off-resonant driving regime indicate that the effective Hamiltonian picture is valid for several orders of magnitude in modulation time. Furthermore, we show that driving a hexagonal lattice compared to a simple cubic lattice allows to modulate the system up to 1~s, corresponding to hundreds of tunneling times, with only minor atom loss. Here, driving at a frequency close to the interaction energy does not introduce resonant features to the atom loss.
Explore related subjects
Keep this discovery
Michael Messer, Kilian Sandholzer, Frederik Görg, Joaquín Minguzzi, Rémi Desbuquois, Tilman Esslinger. 2018-08-01. Floquet dynamics in driven Fermi-Hubbard systems. https://doi.org/10.1103/physrevlett.121.233603
Cite the original work for its findings. Save a collection to share your selection of sources.