TY - JOUR
T1 - Realistic shell-model calculations for p -shell nuclei including contributions of a chiral three-body force
AU - Fukui, T.
AU - De Angelis, L.
AU - Ma, Y. Z.
AU - Coraggio, L.
AU - Gargano, A.
AU - Itaco, N.
AU - Xu, F. R.
N1 - Funding Information:
This work has been supported by the Natural Science Foundation of China under Grants No. 11320101004 and No. 11575007; and the CUSTIPEN (China-U.S. Theory Institute for Physics with Exotic Nuclei) funded by the US Department of Energy, Office of Science under Grant No. DE-SC0009971. The authors thank P. Navrátil, G. De Gregorio, and T. Miyagi for helpful comments and fruitful discussions. The calculations have been carried out at MARCONI of CINECA, Italy.
Funding Information:
This work has been supported by the Natural Science Foundation of China under Grants No. 11320101004 and No.11575007; and the CUSTIPEN (China-U.S. Theory Institute for Physics with Exotic Nuclei) funded by the US Department of Energy, Office of Science under Grant No. DE-SC0009971. The authors thank P. Navrtil, G. De Gregorio, and T. Miyagi for helpful comments and fruitful discussions. The calculations have been carried out at MARCONI of CINECA, Italy.
Publisher Copyright:
© 2018 American Physical Society.
PY - 2018/10/5
Y1 - 2018/10/5
N2 - In this paper we present an evolution of our derivation of the shell-model effective Hamiltonian, namely introducing effects of three-body contributions. More precisely, we consider a three-body potential at next-to-next-to-leading order in chiral perturbation theory, and the induced three-body forces that arise from many-body correlations among valence nucleons. The first one is included, in the derivation of the effective Hamiltonian for one- and two-valence nucleon-systems, at first order in the many-body perturbation theory. Namely, we include only the three-body interaction between one or two valence nucleons and those belonging to the core. For nuclei with more than two valence particles, both induced - turned on by the two-body potential - and genuine three-body forces come into play. Since it is difficult to perform shell-model calculations with three-body forces, these contributions are estimated for the ground-state energy only. To establish the reliability of our approximations, we focus attention on nuclei belonging to the p shell, aiming to benchmark our calculations against those performed with the ab initio no-core shell model. The obtained results are satisfactory, and pave the way to the application of our approach to nuclear systems with heavier masses.
AB - In this paper we present an evolution of our derivation of the shell-model effective Hamiltonian, namely introducing effects of three-body contributions. More precisely, we consider a three-body potential at next-to-next-to-leading order in chiral perturbation theory, and the induced three-body forces that arise from many-body correlations among valence nucleons. The first one is included, in the derivation of the effective Hamiltonian for one- and two-valence nucleon-systems, at first order in the many-body perturbation theory. Namely, we include only the three-body interaction between one or two valence nucleons and those belonging to the core. For nuclei with more than two valence particles, both induced - turned on by the two-body potential - and genuine three-body forces come into play. Since it is difficult to perform shell-model calculations with three-body forces, these contributions are estimated for the ground-state energy only. To establish the reliability of our approximations, we focus attention on nuclei belonging to the p shell, aiming to benchmark our calculations against those performed with the ab initio no-core shell model. The obtained results are satisfactory, and pave the way to the application of our approach to nuclear systems with heavier masses.
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U2 - 10.1103/PhysRevC.98.044305
DO - 10.1103/PhysRevC.98.044305
M3 - Article
AN - SCOPUS:85054510328
SN - 2469-9985
VL - 98
JO - Physical Review C
JF - Physical Review C
IS - 4
M1 - 044305
ER -