Microscopic positive-energy potential based on the Gogny interaction
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Publication date
2015Metadata
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Blanchon, G.
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Microscopic positive-energy potential based on the Gogny interaction
Abstract
We present a nucleon elastic scattering calculation based on Green’s function formalism in the random-phase
approximation. For the first time, the finite-range Gogny effective interaction is used consistently throughout
the whole calculation to account for the complex, nonlocal, and energy-dependent optical potential. Effects of
intermediate single-particle resonances are included and found to play a crucial role in the account for measured
reaction cross sections. Double counting of the particle-hole second-order contribution is carefully addressed.
The resulting integro-differential Schr¨odinger equation for the scattering process is solved without localization
procedures. The method is applied to neutron and proton elastic scattering from 40Ca. A successful account
for differential and integral cross sections, including analyzing powers, is obtained for incident energies up to
30 MeV. Discrepancies at higher energies are related to a much-too-high volume integral of the real potential
for large partial waves. This work opens the way to simultaneously assess effective interactions suitable for both
nuclear structure and reactions.
General note
Artículo de publicación ISI
Patrocinador
FONDECYT under Grant No. 1120396
Identifier
URI: https://repositorio.uchile.cl/handle/2250/132860
DOI: DOI: 10.1103/PhysRevC.91.014612
ISSN: 0556-2813
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Physical Review C 91, 014612 (2015)
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