English

Testing isospin symmetry breaking in ab initio nuclear theory

Nuclear Theory 2021-08-03 v3 Nuclear Experiment

Abstract

In this work we present the first steps towards benchmarking isospin symmetry breaking in ab initio nuclear theory for calculations of superallowed Fermi β\beta-decay. Using the valence-space in-medium similarity renormalization group, we calculate b and c coefficients of the isobaric multiplet mass equation, starting from two different Hamiltonians constructed from chiral effective field theory. We compare results to experimental measurements for all T=1 isobaric analogue triplets of relevance to superallowed β\beta-decay for masses A=10 to A=74 and find an overall agreement within approximately 250 keV of experimental data for both b and c coefficients. A greater level of accuracy, however, is obtained by a phenomenological Skyrme interaction or a classical charged-sphere estimate. Finally, we show that evolution of the valence-space operator does not meaningfully improve the quality of the coefficients with respect to experimental data, which indicates that higher-order many-body effects are likely not responsible for the observed discrepancies.

Keywords

Cite

@article{arxiv.2101.11826,
  title  = {Testing isospin symmetry breaking in ab initio nuclear theory},
  author = {M. S. Martin and S. R. Stroberg and J. D. Holt and K. G. Leach},
  journal= {arXiv preprint arXiv:2101.11826},
  year   = {2021}
}

Comments

6 pages, 4 figures, 2 tables