Three-dimensional potential energy surface for fission of U within covariant density functional theory
arXiv:2302.03864 · doi:10.1088/1674-1137/acc4ac
Abstract
We have calculated the three-dimensional potential energy surface (PES) for the fission of compound nucleus U using the covariant density functional theory with constraints on the axial quadrupole and octupole deformations as well as the nucleon number in the neck . By considering the additonal degree of freedom , coexistence of the elongated and compact fission modes is predicted for . Remarkably, the PES becomes very shallow across a large range of quadrupole and octupole deformations for small , and consequently, the scission line in plane will extend to a shallow band, which leads to a fluctuation for the estimated total kinetic energies by several to ten MeV and for the fragment masses by several to about ten nucleons.
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