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Do Quang Tam

Publications and source records attributed to Do Quang Tam.

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Non-locality function of microscopic optical potentials from Skyrme-based nuclear structure models at low energies

The non-locality of the imaginary part of the microscopic optical potential is investigated for neutron elastic scattering on $^{16}$O, $^{40}$Ca, $^{48}$Ca, and $^{208}$Pb at incident energies up to 30~MeV. The potential is derived within the particle-vibration coupling framework using fully self-consistent Skyrme-Hartree-Fock plus RPA calculations with the SLy5 interaction, without \textit{ad hoc} adjustable parameters. By fitting the non-locality coordinate dependence of the absorptive potential $W(R,s) \equiv \mathrm{Im}\,ΔΣ$, where $ΔΣ$ is the dynamical part of the nucleon self-energy, to a Gaussian form at representative volume and surface radial positions, we extract the radius- and energy-dependent non-locality function $β(R,E)$, whose values range from $1.01$ to $2.03$~fm, with a clear dependence on radial position, incident energy, and target mass. These results demonstrate that, for the absorptive part of the optical potential, a single universal constant such as the Perey--Buck value $β= 0.85$~fm cannot capture the radial, energy, and target-mass dependence of the non-locality, and that nucleus-dependent, energy-dependent, and radially-resolved descriptions of the absorptive potential $W$ are required for precision nuclear reaction calculations.

nucl-th

Collective excited states at small amplitude in neutron elastic scattering at low-energies

We investigate the contributions of isoscalar and isovector collective excitations in the neutron elastic scattering of $^{16}$O, $^{40}$Ca, $^{48}$Ca, and $^{208}$Pb nuclei by using a microscopic optical potential (MOP) derived from nuclear structure models based on self-consistent mean-field approaches. Particular attention is given to the role of these collective modes in shaping the imaginary part of the MOP and the resulting angular distributions. Our analysis indicates that both isoscalar and isovector contributions are significant for all considered targets, especially for light and medium targets. Furthermore, the Coulomb interaction is found to play an important role in describing absorption mechanisms and reproducing the experimental angular distributions.

nucl-th