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Effective restoration of dipole sum rules within the renormalized random-phase approximation

Authors :
T. V. Nhan Hao
N. Dinh Dang
N. Quang Hung
L. Tan Phuc
Source :
Physical Review C. 94
Publication Year :
2016
Publisher :
American Physical Society (APS), 2016.

Abstract

The dipole excitations for calcium and zirconium isotopes are studied within the fully self-consistent Hartree-Fock mean field incorporated with the renormalized random-phase approximation (RRPA) using the Skyrme interaction SLy5. The RRPA takes into account the effect of ground-state correlations beyond RPA owing to the Pauli principle between the particle-hole pairs that form the RPA excitations as well as the correlations due to the particle-particle and hole-hole transitions, whose effects are treated here in an effective way. By comparing the RPA results with the RRPA ones, which are obtained for isoscalar (IS) and isovector (IV) dipole excitations in $^{48, 52, 58}$Ca and $^{90, 96, 110}$Zr, it is shown that ground-state correlations beyond the RPA reduce the IS transition strengths. They also shift up the energy of the lowest IV dipole state and slightly push down the peak energy of the IV giant dipole resonance. As the result, the energy-weighted sums of strengths of both IS and IV modes decrease, causing the violation of the corresponding energy-weight sum rules (EWSR). It is shown that this sum rule violation can be eliminated by taking into account the contribution of the particle-particle and hole-hole excitations together with the particle-hole ones in a simple and perturbative way. Consequently, the ratio of the energy-weighted sum of strengths of the pygmy dipole resonance to that of the giant dipole resonance increases.<br />Comment: 23 pages, 2 figures, accepted in Physical Review C

Details

ISSN :
24699993 and 24699985
Volume :
94
Database :
OpenAIRE
Journal :
Physical Review C
Accession number :
edsair.doi.dedup.....4b8322058c22b411a67abc4b9bae3172
Full Text :
https://doi.org/10.1103/physrevc.94.064312