Loading of atoms into an optical trap with high initial phase-space density
arXiv:1611.08960 · doi:10.1103/PhysRevA.96.013402
Abstract
We report a method for loading cold atoms into an optical trap with high initial phase-space density (PSD). When the trap beam is overlapped with atoms in optical molasses of optimized parameters including large cooling beam detuning compared with conventional detuning used for a magneto-optical trap (MOT), more than rubidium atoms with an initial temperature less than 20 K are loaded into a single beam trap. The obtained maximum initial PSD is estimated to be , which is one or two orders of magnitude greater than that achieved with the conventional loading into an optical trap from atoms in a MOT. The proposed method is promising for creating a quantum gas with a large number of atoms in a short evaporation time.
6 pages, 5 figures
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