Engineering interactions and anyon statistics by multicolor lattice-depth modulations
arXiv:1604.08829 · doi:10.1103/PhysRevA.94.023615
Abstract
We show that a multicolor modulation of the depth of an optical lattice allows for a flexible independent control of correlated hopping, occupation-dependent gauge fields, effective on-site interactions without Feshbach resonances, and nearest-neighbor interactions. As a result, the lattice-depth modulation opens the possibility of engineering with minimal experimental complexity a broad class of lattice models in current experiments with ultra-cold atoms, including Hubbard models with correlated hopping, peculiar extended models, and two-component anyon-Hubbard models.
5 pages, 4 figures
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Cited by in corpus (36)
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- Realization of density-dependent Peierls phases to engineer quantized gauge fields coupled to ultracold matter
- Tailoring quantum gases by Floquet engineering
- Observation of density-dependent gauge fields in a Bose-Einstein condensate based on micromotion control in a shaken two-dimensional lattice
- Symmetry-broken states in a system of interacting bosons on a two-leg ladder with a uniform Abelian gauge field
- Bosonic continuum theory of one-dimensional lattice anyons
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- Suppressing dissipation in a Floquet-Hubbard system
- Phases of Attractive Fermi Gases in Synthetic Dimensions
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- Quantum computation from fermionic anyons on a 1D lattice
- Quantum walk of two anyons across a statistical boundary
- Exact spectral function of the Tonks-Girardeau gas at finite temperature
- Statistics-tuned phases of pseudofermions in one dimension
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- Tunneling Spectroscopy in Superconducting Circuit Lattices
- Bosonization study of a generalized statistics model with four Fermi points
- Anderson-Mott transition in a disordered Hubbard model with correlated hopping
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