Density-dependent synthetic magnetism for ultracold atoms in optical lattices

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Abstract

Raman-assisted hopping can allow for the creation of density-dependent synthetic magnetism for cold neutral gases in optical lattices. We show that the density-dependent fields lead to a nontrivial interplay between density modulations and chirality. This interplay results in a rich physics for atoms in two-leg ladders, characterized by a density-driven Meissner-superfluid to vortex-superfluid transition, and a nontrivial dependence of the density imbalance between the legs. Density-dependent fields also lead to intriguing physics in square lattices. In particular, it leads to a density-driven transition between a nonchiral and a chiral superfluid, both characterized by nontrivial charge density-wave amplitude. We finally show how the physics due to the density-dependent fields may be easily probed in experiments by monitoring the expansion of doublons and holes in a Mott insulator, which presents a remarkable dependence on quantum fluctuations.

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Greschner, S., Huerga, D., Sun, G., Poletti, D., & Santos, L. (2015). Density-dependent synthetic magnetism for ultracold atoms in optical lattices. Physical Review B - Condensed Matter and Materials Physics, 92(11). https://doi.org/10.1103/PhysRevB.92.115120

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