English

Charge symmetry breaking in the A=4 hypernuclei

Nuclear Theory 2016-08-05 v4 High Energy Physics - Phenomenology Nuclear Experiment

Abstract

Charge symmetry breaking (CSB) in the Λ\Lambda-nucleon strong interaction generates a charge dependence of Λ\Lambda separation energies in mirror hypernuclei, which in the case of the A=4A=4 mirror hypernuclei 0+0^+ ground states is sizable, ΔBΛJ=0BΛJ=0(Λ4He)BΛJ=0(Λ4H)=230±90\Delta B^{J=0}_{\Lambda}\equiv B^{J=0}_{\Lambda} (_{\Lambda}^4{\rm He}) -B^{J=0}_{\Lambda}(_{\Lambda}^4{\rm H})=230\pm 90 keV, and of opposite sign to that induced by the Coulomb repulsion in light hypernuclei. Recent ab-initio calculations of the (Λ4H,Λ4He_{\Lambda}^4{\rm H},{_{\Lambda}^4{\rm He}}) mirror hypernuclei 0g.s.+0^+_{\rm g.s.} and 1exc+1^+_{\rm exc} levels have demonstrated that a ΛΣ0\Lambda - \Sigma^0 mixing CSB model due to Dalitz and von Hippel (1964) is capable of reproducing this large value of ΔBΛJ=0\Delta B^{J=0}_{\Lambda}. These calculations are discussed here with emphasis placed on the leading-order chiral EFT hyperon-nucleon strong-interaction Bonn-Juelich potential model used and the no-core shell-model calculational scheme applied. The role of one-pion exchange in producing sizable CSB level splittings in the A=4A=4 mirror hypernuclei is discussed.

Keywords

Cite

@article{arxiv.1604.03434,
  title  = {Charge symmetry breaking in the A=4 hypernuclei},
  author = {Daniel Gazda and Avraham Gal},
  journal= {arXiv preprint arXiv:1604.03434},
  year   = {2016}
}

Comments

this v4 version matches the version published in the NPA Special Issue on Recent Progress in Strangeness and Charm in Hadronic and Nuclear Physics, plus (i) an added footnote #4 on OPE CSB contributions, and (ii) an added Appendix A on the present NCSM application to hypernuclei

R2 v1 2026-06-22T13:30:31.217Z