English

Characterisation of a strontium cold atom source using fluorescence spectroscopy and time-of-flight

Atomic Physics 2026-07-10 v1

Abstract

We demonstrate a characterisation methodology for a strontium atomic beam, produced by a two-dimensional magneto-optical trap and delivered via a resonant push beam, using fluorescence spectroscopy and time-of-flight (ToF). This provides insight into the beam characteristics of a cold atom source, allowing for direct measurement of the transverse velocity spread, longitudinal velocity distributions, divergence, and the capturable flux for further cooling. From the ToF measurements, we derive a series of flux-per-longitudinal-velocity distributions at varying push saturation parameters (spushs_{\mathrm{push}}) using both a unidirectional and counter-propagating resonant probe beam. A simulation-derived factor is applied to the unidirectional probe longitudinal velocity distribution to account for differences in the scattering rate scaling. The distributions are integrated up to an estimated 3D-MOT capture velocity of \SI{30}{\meter\per\second}. For our system, we find that at spush=0.45s_{\mathrm{push}} = 0.45, we obtain a flux of (1.7±0.4)×108(1.7 \pm 0.4)\times10^{8} atoms/s and (1.5±0.4)×108(1.5 \pm 0.4)\times10^{8} atoms/s, using a unidirectional probe beam and counter-propagating probe, respectively. These measurements provide a framework for characterising cold atomic sources for applications such as 3D MOT loading and atom interferometers.

Keywords

Cite

@article{arxiv.2607.09604,
  title  = {Characterisation of a strontium cold atom source using fluorescence spectroscopy and time-of-flight},
  author = {Kamran Hussain and Hamza Labiad and Anna L. Marchant and Jonathan N. Tinsley and Tristan Valenzuela and Jonathon Coleman and David Newbold and Mark G. Bason},
  journal= {arXiv preprint arXiv:2607.09604},
  year   = {2026}
}

Comments

12 pages, 7 figures