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    Deblurring fission fragment mass distributions

    Pierre Nzabahimana1,*, Amy E. Lovell1, and Patrick Talou1,2

    • *Contact author: pierre@lanl.gov

    Phys. Rev. C 112, 064607 – Published 9 December, 2025

    DOI: https://doi.org/10.1103/dk6w-xzy8

    Abstract

    Measurements of fission fragment mass distributions provide valuable insights into the properties of fissioning systems and the dynamics of the fission process. Preneutron emission distributions, essential for fission fragment evaporation codes like CGMF, are extracted from distributions that are always measured after neutron emission, as the timescale of the emission of prompt fission neutrons is too short for direct measurement before the emission. However, obtaining accurate preneutron emission distributions requires methods that eliminate the effects of mass resolution and detector efficiency. We propose a deblurring technique based on the Richardson-Lucy (RL) algorithm, commonly used in optics for image restoration, to correct for these experimental effects. The RL algorithm uses the measured mass distributions and a transfer matrix to perform iterative deconvolution. The advantage of this method over others is that it does not assume any predefined shape such as a sum of Gaussians, as in CGMF, for the distributions. In this paper, we apply the algorithm to the fission fragment mass distributions measured in the spontaneous fission of Cf252 to extract preneutron emission fission fragment mass distributions. The results from deblurring are then used as inputs to CGMF, and we compare the CGMF results obtained using deblurring inputs with the default CGMF results.

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