English

A Magneto-Optical Trap of Titanium Atoms

Atomic Physics 2025-01-13 v1

Abstract

We realize laser cooling and trapping of titanium (Ti) atoms in a mangeto-optical trap (MOT). While Ti does not possess a transition suitable for laser cooling out of its 3d24s2\mathrm{3d^24s^2} a3F\mathrm{a^3F} ground term, there is such a transition, at an optical wavelength of λ=498nm\lambda=498\mathrm{nm}, from the long-lived 3d3(4F)4s\mathrm{3d^3(^4F)4s} a5F5\mathrm{a^5F_5} metastable state to the 3d3(4F)4p\mathrm{3d^3(^4F)4p} y5G6o\mathrm{y^5G^o_6} excited state. Without the addition of any repumping light, we observe MOTs of metastable 46Ti\mathrm{^{46}Ti}, 48Ti\mathrm{^{48}Ti}, and 50Ti\mathrm{^{50}Ti}, the three stable nuclear-spin-zero bosonic isotopes of Ti. While MOTs can be observed when loaded directly from our Ti sublimation source, optical pumping of ground term atoms to the a5F5\mathrm{a^5F_5} state increases the loading rate by a factor of 120, and the steady-state MOT atom number by a factor of 30. At steady state, the MOT of 48Ti\mathrm{^{48}Ti} holds up to 8.30(26)×1058.30(26)\times10^5 atoms at a maximum density of 1.3(4)×1011cm31.3(4)\times10^{11}\mathrm{cm}^{-3} and at a temperature of 90(15)μK90(15)\mathrm{\mu K}. By measuring the decay of the MOT upon suddenly reducing the loading rate, we place upper bounds on the leakage branching ratio of the cooling transition (2.5×106)(\leq2.5\times 10^{-6}) and the two-body loss coefficient (2×1010cm3s1)(\leq2\times10^{-10}\mathrm{cm}^3\mathrm{s}^{-1}). Our approach to laser cooling Ti can be applied to other transition metals, enabling a significant expansion of the elements that can be laser cooled.

Keywords

Cite

@article{arxiv.2501.05544,
  title  = {A Magneto-Optical Trap of Titanium Atoms},
  author = {Scott Eustice and Jackson Schrott and Anke Stöltzel and Julian Wolf and Diego Novoa and Kayleigh Cassella and Dan M. Stamper-Kurn},
  journal= {arXiv preprint arXiv:2501.05544},
  year   = {2025}
}

Comments

6 pages, 4 figures, 1 table