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Cooling an Optically Trapped Ultracold Fermi Gas by Periodical Driving
Published on: March 30, 2017
Semisynthetic zigzag optical lattice for ultracold bosons
E Anisimovas1, M Račiūnas1, C Sträter2
1Institute of Theoretical Physics and Astronomy, Vilnius University, Saulėtekio 3, LT-10222 Vilnius, Lithuania.
We demonstrate a novel cold-atom system realizing a zigzag ladder with a synthetic dimension. This setup reveals a unique gapped phase in strongly interacting bosons due to frustration and non-local interactions.
Area of Science:
- Atomic, Molecular & Optical Physics
- Condensed Matter Physics
- Quantum Simulation
Background:
- Synthetic dimensions offer novel platforms for quantum simulation.
- Cold-atom systems provide controllable environments for studying quantum phenomena.
Purpose of the Study:
- To propose and investigate a cold-atom realization of a zigzag ladder using a synthetic dimension.
- To explore the ground-state properties of strongly interacting bosons in this novel lattice geometry.
Main Methods:
- Utilizing cold atoms with two internal spin states as a synthetic dimension.
- Employing a spin-dependent optical lattice to create a zigzag geometry.
- Investigating ground-state properties of bosons with strong interactions and frustration.
Main Results:
- Achieved a zigzag ladder configuration with tunneling accompanied by spatial displacements.
- Demonstrated nonlocal atom-atom interactions along the diagonal direction.
- Discovered a gapped phase at fractional filling factors arising from frustration and interactions.
Conclusions:
- The proposed cold-atom zigzag ladder is a promising platform for studying quantum many-body physics.
- The system exhibits unique phases driven by the interplay of frustration, interactions, and synthetic dimensions.
- This work opens new avenues for exploring exotic quantum states in engineered lattice structures.
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