English

Magneto-optical trapping of aluminum monofluoride

Atomic Physics 2025-10-22 v2 Quantum Physics

Abstract

Magneto-optical trapping of molecules has thus far been restricted to molecules with 2Σ^2\Sigma electronic ground states. These species are chemically reactive and only support a simple laser cooling scheme from their first excited rotational level. Here, we demonstrate a magneto-optical trap (MOT) of aluminum monofluoride (AlF), a deeply bound and intrinsically stable diatomic molecule with a 1Σ+^1\Sigma^+ electronic ground state. The MOT operates on the strong A1Π^1\Pi\leftarrow{}X1Σ+^1\Sigma^+ transition near 227.5~nm, whose Q(J)(J) lines are all rotationally closed. We demonstrate a MOT of about 6×1046\times 10^4 molecules for the J=1J=1 level of AlF, more than 10410^4 molecules for J=2J=2 and 33, and with no fundamental limit in going to higher rotational levels. Laser cooling and trapping of AlF is conceptually similar to the introduction of alkaline-earth atoms into cold atom physics, and is key to leveraging its spin-forbidden a3Π^3\Pi \leftarrow{}X1Σ+^1\Sigma^+ transition for precision spectroscopy and narrow-line cooling.

Keywords

Cite

@article{arxiv.2506.02266,
  title  = {Magneto-optical trapping of aluminum monofluoride},
  author = {J. E. Padilla-Castillo and J. Cai and P. Agarwal and P. Kukreja and R. Thomas and B. G. Sartakov and S. Truppe and G. Meijer and S. C. Wright},
  journal= {arXiv preprint arXiv:2506.02266},
  year   = {2025}
}

Comments

7 pages, 3 figures. Version accepted in Physical Review Letters after review