Hyperfine-structure-resolved laser spectroscopy of many-electron highly charged ions
arXiv:2207.10926 · doi:10.1038/s42005-023-01127-x
Abstract
Hyperfine-structures of highly charged ions (HCIs) are favourable spectroscopic targets for exploring fundamental physics as well as nuclear properties. Recent proposals of HCI atomic clocks highlight their importance, especially for many-electron HCIs, and they have been theoretically investigated by refining atomic-structure calculations. Nonetheless, no established spectroscopic method is currently available to verify these theoretical calculations. Here, we demonstrate hyperfine-structure-resolved laser spectroscopy of HCIs in an electron beam ion trap plasma, employing the magnetic-dipole transition in 45 of I. Ion-state manipulation by controlled electron collisions in the well-defined laboratory plasma enables laser-induced fluorescence spectroscopy of trapped HCIs. The observed spectrum of evaporatively cooled ions under the low magnetic field shows remarkable features reflecting the hyperfine-structures. The present demonstration using the combined optical and plasma approach provides a new benchmark for state-of-the-art atomic calculations of hyperfine-structures in many-electron HCIs and offers possibilities for a variety of unexploited experiments.
11 pages, 5 figures
References in corpus (15)
- Enhanced laboratory sensitivity to variation of the fine-structure constant using highly-charged ions
- Coherent laser spectroscopy of highly charged ions using quantum logic
- An Optical Atomic Clock Based on a Highly Charged Ion
- Hole transitions in multiply-charged ions for precision laser spectroscopy and searching for alpha-variation
- Highly-charged ions for atomic clocks, quantum information, and search for -variation
- Highly charged ions with E1, M1, and E2 transitions within laser range
- Magnetic-dipole transitions in highly-charged ions as a basis of ultra-precise optical clocks
- Optical transitions in highly-charged californium ions with high sensitivity to variation of the fine-structure constant
- Study of highly-charged Ag-like and In-like ions for the development of atomic clocks and search for -variation
- Detection of the orbital crossing and its optical clock transition in Pr
- Optical clock sensitive to variation of the fine structure constant based on the Ho ion
- Atomic properties of Cd-like and Sn-like ions for the development of frequency standards and search for the variation of the fine-structure constant
- Probing Multiple Electric Dipole Forbidden Optical Transitions in Highly Charged Nickel Ions
- Relativistic all-order many-body calculation of energies, wavelengths, and and transition rates for the configurations in tungsten ions
- Resonant Electron Impact Excitation of 3d levels in Fe and Fe