English

Can Ab Initio Theory Explain the Phenomenon of Parity Inversion in ${}^{11}$Be?

Nuclear Theory 2016-12-14 v2 Nuclear Experiment

Abstract

The weakly bound exotic 11{}^{11}Be nucleus, famous for its ground-state parity inversion and distinct n+ 10{}^{10}Be halo structure, is investigated from first principles using chiral two- and three-nucleon forces. An explicit treatment of continuum effects is found to be indispensable. We study the sensitivity of the 11{}^{11}Be spectrum to the details of the three-nucleon force and demonstrate that only certain chiral interactions are capable of reproducing the parity inversion. With such interactions, the extremely large E1 transition between the bound states is reproduced. We compare our photodisintegration calculations to conflicting experimental data and predict a distinct dip around the 3/213/2^-_1 resonance energy. Finally, we predict low-lying 3/2+3/2^+ and 9/2+9/2^+ resonances that are not or not sufficiently measured in experiments.

Keywords

Cite

@article{arxiv.1608.03318,
  title  = {Can Ab Initio Theory Explain the Phenomenon of Parity Inversion in ${}^{11}$Be?},
  author = {Angelo Calci and Petr Navrátil and Robert Roth and Jérémy Dohet-Eraly and Sofia Quaglioni and Guillaume Hupin},
  journal= {arXiv preprint arXiv:1608.03318},
  year   = {2016}
}

Comments

6 pages, 5 figures, plus Supplemental Material