PaperPanorama

Nuclear Theory·nucl-th

Wednesday·May 14, 2025

4 papers2 primary·2 cross-listed

  1. 01

    Influence of effective interactions and nuclear densities on the dynamics of heavy-ion fusion

    Shilpa Rana · Raj Kumar · M. Bhuyan

    The study aims to explore the mechanism of heavy-ion fusion using various effective nucleon-nucleon (NN) interactions and nuclear density distributions. The nuclear potentials are obtained by folding the relativistic effective NN interaction (R3Y) with densities derived from the relativistic mean-field (RMF) approach. The RMF formalism with the NL3 parameter set and the relativistic-Hartree-Bogoliubov (RHB) approach with the DDME2 parameter set are used to obtain the medium-independent R3Y and density-dependent R3Y (DDR3Y) NN potentials. The results of these relativistic interactions are compared with the Reid and Paris M3Y NN interactions and their density-dependent versions. Nuclear potentials are used to calculate the fusion barrier characteristics and cross-sections within the -summed Wong model for O+Sm, Ca+Pb, O+Sm, and Ca+U reactions. The relativistic R3Y and DDR3Y NN potentials provide higher cross-sections than both the Reid and Paris versions. The inclusion of in-medium effects in all interactions results in more repulsive potentials, leading to higher fusion barriers and reduced cross-sections. The impact of nuclear shape degrees of freedom is included for O+Sm and Ca+U reactions involving deformed targets. Results using RMF-NL3 densities are also compared with those from the two-parameter Fermi (2pF) formula for O+Sm, showing higher cross-sections with RMF densities. A comparison of calculated cross-sections with experimental data shows that the R3Y NN potential with RMF-NL3 densities provides good agreement for reactions involving both spherical and deformed nuclei.

    nucl-thPRC(2025)·2 citations
  2. 02

    On the role of pairing correlations in calculation of \b{eta}-decay half-lives within QRPA formalism

    Jameel-Un Nabi · Mavra Ishfaq

    In this paper we show that the proton-neutron residual interaction can play an important role in the reliability of calculated -decay half-lives. It may also improve the prediction power of the quasiparticle random phase approximation (QRPA) model. We further demonstrate that a reasonable choice of the particle-particle (attractive) and particle-hole force (repulsive) parameters can result in calculated half-lives in very good comparison with the measured ones. Pairing gaps have affect on calculated half-lives which we explore in this paper. We present our half-lives calculation using the proton-neutron QRPA (pn-QRPA) model possessing a multi-shell single-particle deformed space including a schematic interaction for some medium mass neutron-deficient nuclei undergoing /EC decay. Our study shows a better agreement with the available experimental data as compared to former calculations.

    nucl-thNew Astron.(2020)·1 citation

Affiliations

first authorsco-authorsvia INSPIRE