English

Nature of the $\Lambda nn$ $(J^\pi=1/2^+, I=1)$ and ${\rm ^3_\Lambda H^*} (J^\pi=3/2^+, I=0)$ states

Nuclear Theory 2021-03-03 v2 Nuclear Experiment

Abstract

The nature of the Λnn\Lambda nn and Λ3H(Jπ=3/2+, I=0){\rm ^3_\Lambda H^*} (J^\pi=3/2^+,~I=0) states is investigated within a pionless effective field theory at leading order, constrained by the low energy ΛN\Lambda N scattering data and hypernuclear 3- and 4-body data. Bound state solutions are obtained using the stochastic variational method, the continuum region is studied by employing two independent methods - the inverse analytic continuation in the coupling constant method and the complex scaling method. Our calculations yield both the Λnn\Lambda nn and Λ3H{\rm ^3_\Lambda H^*} states unbound. We conclude that the excited state Λ3H{\rm ^3_\Lambda H^*} is a virtual state and the Λnn\Lambda nn pole located close to the three-body threshold in a complex energy plane could convert to a true resonance with Re(E)>0(E)>0 for some considered ΛN\Lambda N interactions. Finally, the stability of resonance solutions is discussed and limits of the accuracy of performed calculations are assessed.

Keywords

Cite

@article{arxiv.2007.10264,
  title  = {Nature of the $\Lambda nn$ $(J^\pi=1/2^+, I=1)$ and ${\rm ^3_\Lambda H^*} (J^\pi=3/2^+, I=0)$ states},
  author = {M. Schäfer and B. Bazak and N. Barnea and J. Mareš},
  journal= {arXiv preprint arXiv:2007.10264},
  year   = {2021}
}