English

Nuclear excitation by electron capture in optical-laser-generated plasmas

Plasma Physics 2018-06-20 v2 Nuclear Theory

Abstract

The process of nuclear excitation by electron capture in plasma environments generated by the interaction of ultra-strong optical lasers with solid-state samples is investigated theoretically. With the help of a plasma model we perform a comprehensive study of the optimal parameters for most efficient nuclear excitation and determine the corresponding laser setup requirements. We discern between the low-density plasma regime, modeled by scaling laws, and the high-density regime, for which we perform particle-in-cell calculations. As nuclear transition case study we consider the 4.85 keV nuclear excitation starting from the long-lived 93m^{93\mathrm{m}}Mo isomer. Our results show that the optimal plasma and laser parameters are sensitive to the chosen observable and that measurable rates of nuclear excitation and isomer depletion of 93m^{93\mathrm{m}}Mo should be already achievable at laser facilities existing today.

Keywords

Cite

@article{arxiv.1804.03694,
  title  = {Nuclear excitation by electron capture in optical-laser-generated plasmas},
  author = {Jonas Gunst and Yuanbin Wu and Christoph H. Keitel and Adriana Pálffy},
  journal= {arXiv preprint arXiv:1804.03694},
  year   = {2018}
}

Comments

19 pages, 16 figures; minor modifications made; accepted for publication in Physical Review E