English

Sisyphus Cooling of Lithium

Atomic Physics 2014-03-24 v3 Quantum Physics

Abstract

Laser cooling to sub-Doppler temperatures by optical molasses is thought to be inhibited in atoms with unresolved, near-degenerate hyperfine structure in the excited state. We demonstrate that such cooling is possible in one to three dimensions, not only near the standard D2 line for laser cooling, but over a range extending to the D1 line. Via a combination of Sisyphus cooling followed by adiabatic expansion, we reach temperatures as low as 40 \mu K, which corresponds to atomic velocities a factor of 2.6 above the limit imposed by a single photon recoil. Our method requires modest laser power at a frequency within reach of standard frequency locking methods. It is largely insensitive to laser power, polarization and detuning, magnetic fields, and initial hyperfine populations. Our results suggest that optical molasses should be possible with all alkali species.

Keywords

Cite

@article{arxiv.1308.1935,
  title  = {Sisyphus Cooling of Lithium},
  author = {Paul Hamilton and Geena Kim and Trinity Joshi and Biswaroop Mukherjee and Daniel Tiarks and Holger Müller},
  journal= {arXiv preprint arXiv:1308.1935},
  year   = {2014}
}

Comments

5 pages, 3 figures