English

Ultracold anions for high-precision antihydrogen experiments

Atomic Physics 2018-04-04 v2 Optics Quantum Physics

Abstract

Experiments with antihydrogen (H\overline{\text{H}}) for a study of matter--antimatter symmetry and antimatter gravity require ultracold H\overline{\text{H}} to reach ultimate precision. A promising path towards anti-atoms much colder than a few kelvin involves the pre-cooling of antiprotons by laser-cooled anions. Due to the weak binding of the valence electron in anions - dominated by polarization and correlation effects - only few candidate systems with suitable transitions exist. We report on a combination of experimental and theoretical studies to fully determine the relevant binding energies, transition rates and branching ratios of the most promising candidate La^{-}. Using combined transverse and collinear laser spectroscopy, we determined the resonant frequency of the laser cooling transition to be ν=96.592713(91)\nu = 96.592\,713(91) THz and its transition rate to be A=4.90(50)×104A = 4.90(50) \times 10^{4} s1^{-1}. Using a novel high-precision theoretical treatment of La^- we calculated yet unmeasured energy levels, transition rates, branching ratios, and lifetimes to complement experimental information on the laser cooling cycle of La^-. The new data establish the suitability of La^- for laser cooling and show that the cooling transition is significantly stronger than suggested by a previous theoretical study.

Keywords

Cite

@article{arxiv.1712.08275,
  title  = {Ultracold anions for high-precision antihydrogen experiments},
  author = {G. Cerchiari and A. Kellerbauer and M. S. Safronova and U. I. Safronova and P. Yzombard},
  journal= {arXiv preprint arXiv:1712.08275},
  year   = {2018}
}

Comments

5 pages, 4 figures

R2 v1 2026-06-22T23:26:54.649Z