Exploring the effect of positive Q-value neutron transfer in coupled-channels calculations using microscopic nuclear potentials
N. Jain, M. Bhuyan, P. Mohr, and Raj Kumar

TL;DR
This study examines how positive Q-value neutron transfer influences sub-barrier fusion cross-sections in heavy-ion reactions, demonstrating the importance of including transfer channels and microscopic potentials for accurate modeling.
Contribution
It introduces a microscopic nuclear potential based on relativistic mean-field formalism and shows the significance of neutron transfer channels in fusion calculations.
Findings
Inclusion of transfer channels enhances sub-barrier fusion cross-sections.
R3Y potential outperforms Woods-Saxon potential at energies below the barrier.
Positive Q-value neutron transfer notably increases fusion probability in specific reactions.
Abstract
We investigated the effect of the degree of freedom of neutron transfer on the cross section of heavy-ion fusion reactions, using the relativistic mean-field formalism within the coupled channel approach (CCFULL). We obtain the microscopic nuclear interaction potential in terms of the density distributions for the targets and projectiles with the NL3 parameter set and corresponding R3Y nucleon-nucleon potential. The present analysis includes the O-induced reactions, for which experimental fusion cross-section is available around the Coulomb barrier. It is evident from the results that including vibrational and/or rotational degrees of freedom enhances the fusion cross-section at energies below the barrier. However, fusion hindrance persists in this energy region. To address this, we incorporated the two-neutron transfer channels in the Coupled Channel calculation. A…
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Taxonomy
TopicsNuclear Physics and Applications · Advanced NMR Techniques and Applications · Solid-state spectroscopy and crystallography
