Topological spin models in Rydberg lattices
arXiv:1609.02736 · doi:10.1007/s00340-016-6596-4
Abstract
We show that resonant dipole-dipole interactions between Rydberg atoms in a triangular lattice can give rise to artificial magnetic fields for spin excitations. We consider the coherent dipole-dipole coupling between and Rydberg states and derive an effective spin-1/2 Hamiltonian for the excitations. By breaking time-reversal symmetry via external fields we engineer complex hopping amplitudes for transitions between two rectangular sub-lattices. The phase of these hopping amplitudes depends on the direction of the hop. This gives rise to a staggered, artificial magnetic field which induces non-trivial topological effects. We calculate the single-particle band structure and investigate its Chern numbers as a function of the lattice parameters and the detuning between the two sub-lattices. We identify extended parameter regimes where the Chern number of the lowest band is or .
10 pages, 7 figures
References in corpus (17)
- Many-Body Physics with Ultracold Gases
- Single-Atom Resolved Fluorescence Imaging of an Atomic Mott Insulator
- Quantum Simulation of Antiferromagnetic Spin Chains in an Optical Lattice
- Single-Spin Addressing in an Atomic Mott Insulator
- Tunable gauge potential for neutral and spinless particles in driven lattices
- A Bose-Einstein Condensate in a Uniform Light-induced Vector Potential
- Non-Abelian gauge potentials for ultra-cold atoms with degenerate dark states
- Quasiclassical calculations of BBR-induced depopulation rates and effective lifetimes of Rydberg nS, nP and nD alkali-metal atoms with n < 80
- Non-Abelian gauge fields and topological insulators in shaken optical lattices
- Consequences of Zeeman Degeneracy for van der Waals Blockade between Rydberg Atoms
- Coherent Excitation Transfer in a Spin Chain of Three Rydberg Atoms
- A General Theorem Relating the Bulk Topological Number to Edge States in Two-dimensional Insulators
- Designing Frustrated Quantum Magnets with Laser-Dressed Rydberg Atoms
- Experimental demonstration of single-site addressability in a two-dimensional optical lattice
- Anomalous Behavior of Spin Systems with Dipolar Interactions
- Optical lattice quantum Hall effect
- Topological bands with Chern number C=2 by dipolar exchange interactions