High-Resolution Spectroscopy of Yb Ions
arXiv:2601.09585 · doi:10.1103/rcdh-s4d7
Abstract
Compared to other stable isotopes of , has a richer hyperfine structure, which leads to more favorable clock transitions, spectroscopic techniques for probing new physics, and more sophisticated quantum computing architectures. However, to date, its electronic spectrum remains poorly characterized. Here, we report on efficient laser cooling, state preparation, and detection of a single trapped ion. The previously unobserved electric quadrupole transition at 436 nm is coherently excited, and the isotope shift between and on this transition is determined with an uncertainty of 1.4 Hz. Using microwave spectroscopy, we resolve the hyperfine structure (HFS) of the state with a relative uncertainty below . From the HFS measurement data, we infer for Yb a nuclear magnetic octupole moment with uncertainty reduced by more than 2 orders of magnitude compared to previous studies. The data also allow us to determine hyperfine anomalies for the and states.
7 pages, 3 figures, 4 pages supplemental material, Published in Physical Review Letters. Open Access under CC BY 4.0