Laser cooling and trapping of Ra
arXiv:2308.00241 · doi:10.1103/PhysRevResearch.5.043201
Abstract
We report laser cooling and trapping of Ra ions. This was realized via two-step photoionization loading of radium into an ion trap. A robust source for Ra atoms, which have a 3.6-day half-life, was realized with an effusive oven containing Th, which has a 1.9-yr half-life, which continuously generates Ra via its -decay. We characterized the efficacy of this source and found that after depleting built-up radium the thorium decay provides a continuous source of radium atoms suitable for ion trapping. The vacuum system has been sealed for more than 6 months and continues to trap ions on demand. We also report a measurement of the Ra SP transition frequency: 621 043 830(60) MHz, which is helpful for efficient photoionization. With this measurement and previous isotope shift measurements we find that the frequency of the same transition in Ra is 621 037 830(60) MHz, which disagrees with the most precise measurement, 621 038 489(15) MHz, which is used for the recommended value in the National Institute of Standards and Technology Atomic Spectra Database.
6 pages, 6 figures
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Cited by in corpus (5)
- Lifetimes of the Metastable and States of Ra
- Spectroscopy of electric dipole and quadrupole transitions in Ra
- Laser Cooling and Hyperfine Measurements of Radium-225 Ions
- Radioactive Molecules as Laboratories of Fundamental Physics
- Application of the Variational R-matrix Method for the Dirac Equation to the Be Atom