TY - JOUR
T1 - Ab initio coupled-cluster approach to nuclear structure with modern nucleon-nucleon interactions
AU - Hagen, G.
AU - Papenbrock, T.
AU - Dean, D. J.
AU - Hjorth-Jensen, M.
PY - 2010/9/30
Y1 - 2010/9/30
N2 - We perform coupled-cluster calculations for the doubly magic nuclei He4, O16, Ca40,48, for neutron-rich isotopes of oxygen and fluorine, and employ "bare" and secondary renormalized nucleon-nucleon interactions. For the nucleon-nucleon interaction from chiral effective field theory at order next-to-next-to-next-to leading order, we find that the coupled-cluster approximation including triples corrections binds nuclei within 0.4 MeV per nucleon compared to data. We employ interactions from a resolution-scale dependent similarity renormalization group transformations and assess the validity of power counting estimates in medium-mass nuclei. We find that the missing contributions from three-nucleon forces are consistent with these estimates. For the unitary correlator model potential, we find a slow convergence with respect to increasing the size of the model space. For the G-matrix approach, we find a weak dependence of ground-state energies on the starting energy combined with a rather slow convergence with respect to increasing model spaces. We also analyze the center-of-mass problem and present a practical and efficient solution.
AB - We perform coupled-cluster calculations for the doubly magic nuclei He4, O16, Ca40,48, for neutron-rich isotopes of oxygen and fluorine, and employ "bare" and secondary renormalized nucleon-nucleon interactions. For the nucleon-nucleon interaction from chiral effective field theory at order next-to-next-to-next-to leading order, we find that the coupled-cluster approximation including triples corrections binds nuclei within 0.4 MeV per nucleon compared to data. We employ interactions from a resolution-scale dependent similarity renormalization group transformations and assess the validity of power counting estimates in medium-mass nuclei. We find that the missing contributions from three-nucleon forces are consistent with these estimates. For the unitary correlator model potential, we find a slow convergence with respect to increasing the size of the model space. For the G-matrix approach, we find a weak dependence of ground-state energies on the starting energy combined with a rather slow convergence with respect to increasing model spaces. We also analyze the center-of-mass problem and present a practical and efficient solution.
UR - http://www.scopus.com/inward/record.url?scp=78751664142&partnerID=8YFLogxK
U2 - 10.1103/PhysRevC.82.034330
DO - 10.1103/PhysRevC.82.034330
M3 - Article
AN - SCOPUS:78751664142
SN - 0556-2813
VL - 82
JO - Physical Review C - Nuclear Physics
JF - Physical Review C - Nuclear Physics
IS - 3
M1 - 034330
ER -