Ultracold anions for high-precision antihydrogen experiments
Abstract
Experiments with antihydrogen () for a study of matter--antimatter symmetry and antimatter gravity require ultracold 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 THz and its transition rate to be s. 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.
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