Optical runaway evaporation for multi-BEC production
arXiv:1409.4502 · doi:10.1103/PhysRevA.90.051401
Abstract
We report on parallel production of Bose-Einstein condensates (BECs) in steerable, multi-plexed crossed optical dipole traps. Using a conventional trap-weakening evaporation scheme, where the optical trapping power is lowered, we obtain an array of up to four independent BECs. To improve evaporation efficiency, we propose to target each crossed trap site with a narrow auxiliary laser beam, creating an escape channel for energetic atoms. We experimentally demonstrate runaway evaporation using this scheme, which is characterized by very modest weakening in atomic confinement such that high densities and elastic collision rates can be maintained. Based on discretely time-shared optical tweezers, our approach is particularly suited for addressing the problem of simultaneously cooling atoms in multiple traps clouds, providing the freedom to act locally and in a tailored fashion at individual trap sites.
Accepted for publication in PRA Rapid Communications, 5 pages, 4 figures
References in corpus (10)
- Experimental demonstration of painting arbitrary and dynamic potentials for Bose-Einstein condensates
- Scalable Spin Squeezing for Quantum-Enhanced Magnetometry with Bose-Einstein Condensates
- Interference of an array of independent Bose-Einstein condensates
- Fast, Runaway Evaporative Cooling to Bose-Einstein Condensation in Optical Traps
- A pumped atom laser
- High-resolution imaging of ultracold fermions in microscopically tailored optical potentials
- Versatile two-dimensional potentials for ultra-cold atoms
- All-Optical BEC in a 1.06 micron dipole trap
- Bose-Einstein condensation of 85Rb by direct evaporation in an optical dipole trap
- Runaway evaporation for optically dressed atoms