Realization of the Hofstadter Hamiltonian with Ultracold Atoms in Optical Lattices
Abstract
We demonstrate the experimental implementation of an optical lattice that allows for the generation of large homogeneous and tunable artificial magnetic fields with ultracold atoms. Using laser-assisted tunneling in a tilted optical potential, we engineer spatially dependent complex tunneling amplitudes. Thereby, atoms hopping in the lattice accumulate a phase shift equivalent to the Aharonov-Bohm phase of charged particles in a magnetic field. We determine the local distribution of fluxes through the observation of cyclotron orbits of the atoms on lattice plaquettes, showing that the system is described by the Hofstadter model. Furthermore, we show that for two atomic spin states with opposite magnetic moments, our system naturally realizes the time-reversal-symmetric Hamiltonian underlying the quantum spin Hall effect; i.e., two different spin components experience opposite directions of the magnetic field.
- Publication:
-
Physical Review Letters
- Pub Date:
- November 2013
- DOI:
- arXiv:
- arXiv:1308.0321
- Bibcode:
- 2013PhRvL.111r5301A
- Keywords:
-
- 67.85.-d;
- 03.65.Vf;
- 03.75.Lm;
- 73.20.-r;
- Ultracold gases trapped gases;
- Phases: geometric;
- dynamic or topological;
- Tunneling Josephson effect Bose-Einstein condensates in periodic potentials solitons vortices and topological excitations;
- Electron states at surfaces and interfaces;
- Condensed Matter - Quantum Gases;
- Condensed Matter - Strongly Correlated Electrons;
- Quantum Physics
- E-Print:
- Phys. Rev. Lett. 111, 185301 (2013)