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May 20, 20260 citations

Shell-driven mode evolution in the fission of sub-lead nuclei

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VMV. S. MuddamJBJ. BueteKCK. J. Cook

Key Points

  • This research investigates shell effects in the fission of sub-lead nuclei, focusing on isotopes with varying neutron-to-proton ratios.
  • Systematic measurements of heavy-ion fusion-fission in specific isotopes.
  • Analysis using two-dimensional MR-RTKE distributions and multi-modal Gaussian decomposition.
  • Examination of fission fragments across different proton and neutron numbers.
  • Clear evidence of shell-driven fission beyond the liquid-drop mode in all analyzed systems.
  • Observation of a persistent inner asymmetric mode at a proton number of Z = 36.
  • First experimental evidence for a neutron-driven shell gap influencing fission at N = 36 in Dy and Yb isotopes.

Abstract

Systematic measurements and analysis of the heavy-ion fusion-fission of 148,152,154,158Dy, 160,164,168 Yb, and 176,178,180,184,186Pt isotopes are presented, spanning a wide range of neutron-to-proton ratios in the sub-lead region. We reconstruct two-dimensional MR-RTKE distributions and perform a multi-modal Gaussian decomposition to determine the shell effects driving fission fragment formation. All systems exhibit clear evidence of shell-driven fission beyond the liquid-drop mode. A persistent inner asymmetric mode is observed at a fission fragment proton number of Z = 36 across all isotopic chains. In addition, Dy and Yb isotopes exhibit an outer asymmetric mode correlated with a fission fragment neutron number of N = 36, providing the first experimental evidence for a neutron-driven shell gap influencing fission below lead. These results demonstrate that multiple microscopic shell structures, both proton and neutron, coexist and influence fission fragment formation across isotopic chains in the sub-lead region.

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Cite This Study

Muddam et al. (2026) studied this question.

synapsesocial.com/papers/6a0d5025f03e14405aa9bcc7https://doi.org/10.1051/epjconf/202636800022/pdf
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