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Probing the pairing interaction through two-neutron transfer reactions
- Source :
- 6th International Conference on Nuclear Structure and Related Topics (NSRT), 6th International Conference on Nuclear Structure and Related Topics (NSRT), Jul 2012, Dubna, Russia. pp.04001, ⟨10.1051/epjconf/20123804001⟩, Physical Review C, Physical Review C, American Physical Society, 2010, 83, pp.034613. ⟨10.1103/PhysRevC.83.034613⟩, XX International School on Nuclear Physics, Neutron Physics and Applications (Varna2013), XX International School on Nuclear Physics, Neutron Physics and Applications (Varna2013), Sep 2013, Golden Sands, Bulgaria. pp.012003, ⟨10.1088/1742-6596/533/1/012003⟩, EPJ Web of Conferences, Vol 38, p 04001 (2012)
- Publication Year :
- 2011
- Publisher :
- American Physical Society (APS), 2011.
-
Abstract
- International audience; The treatment of the pairing interaction in mean-field-based models is addressed. In particular, the possibility to use pair transfers as a tool to better constrain this interaction is discussed. First, pairing inter- actions with various density dependencies (surface/volume mixing) are used in the microscopic Hartree-Fock- Bogoliubov + quasiparticle random-phase approximation model to generate the form factors to be used in reac- tion calculations. Cross sections for (p,t) two-neutron transfer reactions are calculated in the one-step zero-range distorted-wave Born approximation for some Tin isotopes and for incident proton energies from 15 to 35 MeV. Three different surface/volume mixings of a zero-range density-dependent pairing interaction are employed in the microscopic calculations and the sensitivity of the cross sections to the different mixings is analyzed. Differences among the three different theoretical predictions are found espacially for the nucleus 136Sn and they are more important at the incident proton energy of 15 MeV. We thus indicate (p,t) two-neutron transfer reactions with very neutron-rich Sn isotopes and at proton energies around 15 MeV as good experimental cases where the sur- face/volume mixing of the pairing interaction may be probed. In the second part of the manuscript, ground-state to ground-state transitions are investigated. Approximations made to estimate two-nucleon transfer probabilities in ground-state to ground-state transitions and the physical interpretation of these probabilities are discussed. Probabilities are often calculated by approximating both ground states of the initial nucleus A and of the final nucleus A±2 by the same quasiparticle vacuum.We analyze two improvements of this approach. First, the effect of using two different ground states with average numbers of particles A and A±2 is quantified. Second, by using projection techniques, the role of particle number restoration is analyzed. Our analysis shows that the improved treatment plays a role close to magicity, leading to an enhancement of the pair-transfer probability. In midshell regions, part of the error made by approximating the initial and final ground states by a single vacuum is com- pensated by projecting onto a good particle number. Surface effects are analyzed by using pairing interactions with a different volume/surface mixing. Finally, a simple expression of the pair-transfer probability is given in terms of occupation probabilities in the canonical basis.We show that, in the canonical basis formulation, surface effects that are visible in the transfer probability are related to the fragmentation of single-particle occupancies close to the Fermi energy. This provides a complementary interpretation with respect to the standard quasiparti- cle representation where surface effects are generated by the integrated radial profiles of the contributing wave functions.
- Subjects :
- Nuclear reaction
History
Nuclear and High Energy Physics
Nuclear Theory
[PHYS.NUCL]Physics [physics]/Nuclear Theory [nucl-th]
Proton
QC1-999
FOS: Physical sciences
Molecular physics
01 natural sciences
Education
Nuclear Theory (nucl-th)
Nuclear physics
Isotopes of tin
0103 physical sciences
Cr isotopes
Neutron
Nuclear drip line
Statistical physics
Born approximation
Wave function
Nuclear Experiment
010306 general physics
Line (formation)
Physics
Isotope
010308 nuclear & particles physics
Fermi energy
Computer Science Applications
Excited state
Pairing
Quasiparticle
Atomic physics
Nucleon
Ground state
Subjects
Details
- ISSN :
- 1089490X, 05562813, 24699985, and 24699993
- Volume :
- 83
- Database :
- OpenAIRE
- Journal :
- Physical Review C
- Accession number :
- edsair.doi.dedup.....0af239aef79c7184dbaf95c29f84b423
- Full Text :
- https://doi.org/10.1103/physrevc.83.034613