English

Efficient, high-resolution resonance laser ionization spectroscopy using weak transitions to long-lived excited states

Instrumentation and Detectors 2017-04-14 v1 Nuclear Experiment

Abstract

Laser spectroscopic studies on minute samples of exotic radioactive nuclei require very efficient experimental techniques. In addition, high resolving powers are required to allow extraction of nu- clear structure information. Here we demonstrate that by using weak atomic transitions, resonance laser ionization spectroscopy is achieved with the required high efficiency (1-10%) and precision (linewidths of tens of MHz). We illustrate experimentally and through the use of simulations how the narrow experimental linewidths are achieved and how distorted resonance ionization spec- troscopy lineshapes can be avoided. The role of the delay of the ionization laser pulse with respect to the excitation laser pulse is crucial: the use of a delayed ionization step permits the best resolving powers and lineshapes. A high efficiency is maintained if the intermediate level has a lifetime that is at least of the order of the excitation laser pulse width. A model that describes this process re- produces well the observed features and will help to optimize the conditions for future experiments.

Keywords

Cite

@article{arxiv.1704.03875,
  title  = {Efficient, high-resolution resonance laser ionization spectroscopy using weak transitions to long-lived excited states},
  author = {R. P. de Groote and M. Verlinde and V. Sonnenschein and K. T. Flanagan and I. Moore and G. Neyens},
  journal= {arXiv preprint arXiv:1704.03875},
  year   = {2017}
}

Comments

11 pages, 11 figures