English

Laser-driven Sisyphus cooling in an optical dipole trap

Atomic Physics 2015-05-30 v2

Abstract

We propose a novel Sisyphus cooling scheme for atoms confined in a far off resonance optical dipole trap. Utilizing the differential trap-induced AC Stark shift, two electronic levels of the atom are resonantly coupled by a cooling laser preferentially near the trap bottom. After absorption of a cooling photon, the atom loses energy by climbing the steeper potential, and then spontaneously decays preferentially away from the trap bottom. The proposed method is particularly suited to cooling alkaline-earth-like atoms where two-level systems with narrow electronic transitions are present. Numerical simulations for the cases of 88^{88}Sr and 174^{174}Yb demonstrate the expected recoil and Doppler temperature limits. The method requires a relatively small number of scattered photons and can potentially lead to phase space densities approaching quantum degeneracy in sub-second timescales.

Keywords

Cite

@article{arxiv.1110.3439,
  title  = {Laser-driven Sisyphus cooling in an optical dipole trap},
  author = {Vladyslav V. Ivanov and Subhadeep Gupta},
  journal= {arXiv preprint arXiv:1110.3439},
  year   = {2015}
}

Comments

9 pages, 8 figures

R2 v1 2026-06-21T19:20:49.787Z