Kinetic-beam-energy determination via collinear laser spectroscopy
arXiv:2102.08434 · doi:10.1103/PhysRevA.103.032806
Abstract
An approach to determine the kinetic beam energy at the level is presented, which corresponds to an improvement by more than one order of magnitude compared to conventional methods. Particularly, collinear fluorescence and resonance ionization spectroscopy measurements on rare isotope beams, where the beam energy is a major contribution to the uncertainty, can benefit from this method. The approach is based on collinear spectroscopy and requires no special equipment besides a wavelength meter, which is commonly available. Its advent is demonstrated in a proof-of-principle experiment on a Ni beam. In preparation for the energy measurement, the rest-frame transition frequencies of the transitions in neutral nickel isotopes have been identified to be MHz and MHz.
References in corpus (4)
- Nuclear Charge Radii of Be-7,9,10 and the one-neutron halo nucleus Be-11
- Difference in proton radii of mirror nuclei as a possible surrogate for the neutron skin
- Calibration of the ISOLDE acceleration voltage using a high-precision voltage divider and applying collinear fast beam laser spectroscopy
- A Fluorescence Detection Region for Collinear Laser Spectroscopy
Cited by in corpus (7)
- Charge Radius of Neutron-deficient Ni and Symmetry Energy Constraints Using the Difference in Mirror Pair Charge Radii
- Charge radii of Ni reveal a surprisingly similar behavior at in Ca and Ni isotopes
- Surprising charge-radius kink in the Sc isotopes at N=20
- Ground State Magnetic Dipole Moment of Sc
- High Voltage Determination and Stabilization for Collinear Laser Spectroscopy Applications
- Ultra-stable 3D-printed precision voltage divider for calibrations and experiments
- Spectral line-shape in collinear laser spectroscopy after atomic charge exchange