Suppression of genuine tripartition in heavy nuclei: A self-consistent perspective

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Jaganathen, Yannen, Skalski, Janusz
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866909664479805440
author Jaganathen, Yannen
Skalski, Janusz
author_facet Jaganathen, Yannen
Skalski, Janusz
contents We investigate the ternary fissions of $^{252}$Cf (spontaneous) and $^{236}$U (neutron-induced) into medium-mass fragments, as reported by the Dubna group, using the Hartree-Fock plus BCS method with the SLy6 Skyrme interaction. Compared to microscopic-macroscopic methods used so far, this self-consistent approach provides a greater flexibility of nuclear shapes. Our working hypothesis is that the shape evolution proceeds while the system is still mononuclear. The results show that a ternary fission valley emerges for intermediate elongations of the middle fragment, only when its mass is strongly constrained. This ternary mode is dynamically suppressed by the competition with the dominant binary decay channel. This suggests that a description based solely on quantum tunneling through the energy barrier is insufficient to evaluate its probability. To quantify this suppression, we apply a simple Langevin-type model of overdamped motion with constant damping and temperature, supplemented by a basic estimate of quantum tunneling where relevant. Under assumptions expected to yield an upper bound, we find the probability of ternary fission per binary decay to be on the order of $10^{-8}-10^{-9}$ for $^{252}$Cf and $10^{-10}-10^{-11}$ for $^{236}$U.
format Preprint
id arxiv_https___arxiv_org_abs_2506_22534
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Suppression of genuine tripartition in heavy nuclei: A self-consistent perspective
Jaganathen, Yannen
Skalski, Janusz
Nuclear Theory
We investigate the ternary fissions of $^{252}$Cf (spontaneous) and $^{236}$U (neutron-induced) into medium-mass fragments, as reported by the Dubna group, using the Hartree-Fock plus BCS method with the SLy6 Skyrme interaction. Compared to microscopic-macroscopic methods used so far, this self-consistent approach provides a greater flexibility of nuclear shapes. Our working hypothesis is that the shape evolution proceeds while the system is still mononuclear. The results show that a ternary fission valley emerges for intermediate elongations of the middle fragment, only when its mass is strongly constrained. This ternary mode is dynamically suppressed by the competition with the dominant binary decay channel. This suggests that a description based solely on quantum tunneling through the energy barrier is insufficient to evaluate its probability. To quantify this suppression, we apply a simple Langevin-type model of overdamped motion with constant damping and temperature, supplemented by a basic estimate of quantum tunneling where relevant. Under assumptions expected to yield an upper bound, we find the probability of ternary fission per binary decay to be on the order of $10^{-8}-10^{-9}$ for $^{252}$Cf and $10^{-10}-10^{-11}$ for $^{236}$U.
title Suppression of genuine tripartition in heavy nuclei: A self-consistent perspective
topic Nuclear Theory
url https://arxiv.org/abs/2506.22534