Microscopic dynamical description of proton-induced fission with the Constrained Molecular Dynamics (CoMD) Model
N. Vonta, G.A. Souliotis, M. Veselsky, A. Bonasera

TL;DR
This paper uses the Constrained Molecular Dynamics (CoMD) model to simulate proton-induced nuclear fission, providing insights into fission dynamics, fragment distributions, and energy release at intermediate energies, with implications for nuclear physics and astrophysics.
Contribution
It demonstrates the capability of the CoMD model to accurately describe the complex many-body dynamics of proton-induced fission at various energies, including fragment distributions and timescales.
Findings
CoMD reproduces experimental fission fragment mass distributions.
The model estimates fission timescales consistent with experimental data.
Sensitivity of results to the symmetry energy affects fission observables.
Abstract
The microscopic description of nuclear fission still remains a topic of intense basic research. Un- derstanding nuclear fission, apart from a theoretical point of view, is of practical importance for energy production and the transmutation of nuclear waste. In nuclear astrophysics, fission sets the upper limit to the nucleosynthesis of heavy elements via the r-process. In this work we initiated a systematic study of intermediate energy proton-induced fission using the Constrained Molecu- lar Dynamics (CoMD) code. The CoMD code implements an effective interaction with a nuclear matter compressibility of K=200 (soft EOS) with several forms of the density dependence of the nucleon-nucleon symmetry potential. Moreover, a constraint is imposed in the phase-space occu- pation for each nucleon restoring the Pauli principle at each time step of the collision. A proper choice of the surface…
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