Pairing-induced speedup of nuclear spontaneous fission
Jhilam Sadhukhan, J. Dobaczewski, W. Nazarewicz, J. A. Sheikh, and A., Baran

TL;DR
This paper investigates how nucleonic pairing correlations influence nuclear spontaneous fission pathways and lifetimes, revealing that pairing can significantly alter fission dynamics and pathway geometry.
Contribution
It introduces a self-consistent four-dimensional model incorporating shape and pairing coordinates to study fission trajectories, highlighting the dynamic role of pairing correlations.
Findings
Pairing correlations are enhanced along the minimum-action fission path.
Pairing fluctuations can restore axial symmetry in fission trajectories.
Nucleonic pairing significantly impacts the shape and dynamics of fission pathways.
Abstract
Collective inertia is strongly influenced at the level crossing at which quantum system changes diabatically its microscopic configuration. Pairing correlations tend to make the large-amplitude nuclear collective motion more adiabatic by reducing the effect of those configuration changes. Competition between pairing and level crossing is thus expected to have a profound impact on spontaneous fission lifetimes. To elucidate the role of nucleonic pairing on spontaneous fission, we study the dynamic fission trajectories of Fm and Pu using the state-of-the-art self-consistent framework. We employ the superfluid nuclear density functional theory with the Skyrme energy density functional SkM and a density-dependent pairing interaction. Along with shape variables, proton and neutron pairing correlations are taken as collective coordinates. The collective inertia tensor is…
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