English

Effective operators for valence space calculations from the {\itshape ab initio} No-Core Shell Mode

Nuclear Theory 2022-06-01 v1

Abstract

In recent years, remarkable progress has been achieved in developing novel non-perturbative techniques for constructing valence space shell model Hamiltonians from realistic internucleon interactions. One of these methods is based on the Okubo--Lee--Suzuki (OLS) unitary transformation applied to no-core shell model (NCSM) solutions. In the present work, we implement the corresponding approach to solve for valence space effective electromagnetic operators. To this end, we use the NCSM results for A=1618A=16-18, obtained at Nmax=4N_{\rm max}=4, to derive a charge-dependent version of the effective interaction for the sdsd shell, which allows us to exactly reproduce selected NCSM spectra of 18^{18}O, 18^{18}F and 18^{18}Ne within the two valence nucleon space. We then deduce effective single-particle matrix elements of electric quadrupole (E2E2) and magnetic dipole (M1M1) operators by matching them to the electromagnetic transitions and moments for 17^{17}O and 17^{17}F from the NCSM at Nmax=4N_{\rm max}=4. Thus, effective E2E2 and M1M1 operators are obtained as sets of single-particle matrix elements for the valence space (sdsd shell) which allow us to reproduce the NCSM results for A=17A=17 exactly. Systematic comparison of a large set of sdsd shell results on quadrupole and magnetic dipole moments and transitions for A=18A=18 using effective E2E2 and M1M1 operators that we derive from the full NCSM calculations demonstrates a remarkable agreement.

Keywords

Cite

@article{arxiv.2205.15939,
  title  = {Effective operators for valence space calculations from the {\itshape ab initio} No-Core Shell Mode},
  author = {Zhen Li and N. A. Smirnova and A. M. Shirokov and I. J. Shin and B. R. Barrett and P. Maris and J. P. Vary},
  journal= {arXiv preprint arXiv:2205.15939},
  year   = {2022}
}

Comments

Submitted for publication in the Akito Arima Memorial Volume, World Scientific, T.T.S. Kuo, T. Otsuka and K.K. Phua, Editors

R2 v1 2026-06-24T11:34:48.613Z