Abstract
Abstract
We study experimentally the optical dipole trapping of a cloud of cold atoms in a high-finesse cavity in the parameter regime where the atomic back-action on the cavity mode is significant. Back-action based effects lead to state selective optical manipulation schemes. We identify a parameter range where the collective back action of the atoms is needed for the trapping, i.e. a single atom would not be trapped under the same laser drive conditions. The collective self-trapping is demonstrated by the observation of a significant increase of the trapping time as a function of the atom number. The atomic back action on the cavity field gives rise to a simultaneous real-time monitoring of the number of trapped atoms. This is used to show a non-exponential collapse of the atom trap.
Funder
Quantum Information National Laboratory of Hungary
National Research, Development and Innovation Office of Hungary
Guest Professor program of the Hungarian Academy of Sciences
János Bolyai Fellowship
Subject
General Physics and Astronomy
Cited by
3 articles.
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