English

Robust Polarization Gradient Cooling of Trapped Ions

Atomic Physics 2022-03-31 v2

Abstract

We implement three-dimensional polarization gradient cooling of trapped ions. Counter-propagating laser beams near 393393\,nm impinge in lin\,\perp\,lin configuration, at a frequency below the S1/2_{1/2} to P3/2_{3/2} resonance in 40^{40}Ca+^+. We demonstrate mean phonon numbers of 5.4(4)5.4(4) at a trap frequency of 2π×2852\pi \times 285\,kHz and 3.3(4)3.3(4) at 2π×4802\pi\times480\,kHz, in the axial and radial directions, respectively. Our measurements demonstrate that cooling with laser beams detuned to lower frequencies from the resonance is robust against an elevated phonon occupation number, and thus works well for an initial ion motion far out of the Lamb-Dicke regime, for up to four ions, and for a micromotion modulation index β0.1\beta\leq 0.1. Still, we find that the spectral impurity of the laser field influences both, cooling rates and cooling limits. Thus, a Fabry-P\'{e}rot cavity filter is employed for efficiently suppressing amplified spontaneous emission of the diode laser.

Keywords

Cite

@article{arxiv.2109.00575,
  title  = {Robust Polarization Gradient Cooling of Trapped Ions},
  author = {Wenbing Li and Sebastian Wolf and Lukas Klein and Dmitry Budker and Christoph E. Düllmann and Ferdinand Schmidt-Kaler},
  journal= {arXiv preprint arXiv:2109.00575},
  year   = {2022}
}

Comments

11 pages and 9 figures

R2 v1 2026-06-24T05:36:27.610Z