Neutron-Induced Cross Sections for Stable Selenium Isotopes (A = 74–82) Using the EMPIRE-3.2 Code with Coupled-Channels Optical Model Calculations
Keywords:
Neutron-induced reactions; Selenium isotopes; Koning-Delaroche optical potential; Coupled-channels; EMPIRE code; Pre-equilibrium reactions; s-process nucleosynthesisAbstract
A comprehensive theoretical evaluation of neutron-induced reaction cross sections
for the stable selenium isotopes 74–82Se is presented using the EMPIRE-3.2 nuclear
reaction modeling code. The global Koning–Delaroche optical model potential is
adopted as the principal interaction framework and is augmented by coupled
channels calculations to explicitly account for vibrational collective excitations in
the even-A isotopes. Pre-equilibrium emission processes are treated with advanced
implementations of the DEGAS and PCROSS modules, enabling a realistic description
of multi-step direct and compound mechanisms. Nuclear structure inputs are taken
from the RIPL-3 database, including microscopic Hartree–Fock–BCS level densities
and generalized Lorentzian γ-ray strength functions to ensure physically consistent
statistical decay modeling. Calculations cover neutron energies from thermal values
up to 30 MeV and include total, elastic and inelastic scattering, as well as (n,γ), (n,p),
(n,2n), and (n,α) reaction channels. Local adjustments of optical model parameters,
supported by systematic sensitivity analyses, are performed to optimize agreement
with available experimental datasets from the EXFOR library. The results
demonstrate excellent reproduction of measured (n,p) excitation functions in the
10–20 MeV region and accurate prediction of (n,2n) reaction thresholds and peak
cross sections. Compared with default TALYS outputs and evaluated nuclear data
libraries ENDF/B-VIII.0 and JENDL-5, the EMPIRE-3.2 calculations show improved
performance in pre-equilibrium-dominated channels, reducing discrepancies to
approximately 10–20%. The refined cross sections provide improved input for
modeling the weak s-process nucleosynthesis in massive stars, particularly at the
branching points near ^79Se and ^80Se, and contribute to enhanced accuracy in
reactor dosimetry and activation analyses. Overall, the study demonstrates the
effectiveness of quantum-mechanical optical model approaches in bridging
experimental data gaps for medium-mass nuclei.
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