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    Proton emission half-lives and shape coexistence for 71≤Z≤83 odd-Z nuclei

    Yongbeom Choi

    Chang-Hwan Lee

    Youngman Kim*

    • School of Physics, Peng Huanwu Collaborative Center for Research and Education, and International Research Center for Big-Bang Cosmology and Element Genesis, Beihang University, 37 Xueyuan Road, Haidian District, Beijing 100191, People's Republic of China

    • Department of Physics and Center for Innovative Physicist Education and Research, Pusan National University, Busan 46241, Korea

    • *Contact author: ykim@ibs.re.kr

    Phys. Rev. C 114, 044305 – Published 5 October, 2026

    DOI: https://doi.org/10.1103/3mzz-nycn

    Abstract

    One-proton emission is a direct probe of nuclear structure near the proton drip line and plays a critical role in understanding exotic decay modes and nucleosynthesis processes. In this study, we investigate the half-lives of one-proton emitters for 71≤Z≤83 odd-Z nuclei by employing the WKB approximation with nuclear potentials obtained from the deformed relativistic Hartree-Bogoliubov theory in continuum (DRHBc) and, for comparison, the relativistic continuum Hartree-Bogoliubov theory. We first compare the calculated half-lives with available experimental data. The inclusion of quadrupole deformation via the DRHBc hardly contributes to improving the predictions of half-lives for the deformed nuclei. We find that all the studied nuclei exhibit ground states with |β2,DRHBc|<0.15, and within this limited deformation range the spectroscopic factor provides the dominant contribution to the half-life, compared to the decay width. In particular, for nuclei exhibiting shape coexistence in DRHBc, such as Au170, where the half-life varies significantly with the quadrupole deformation through its effect on the spectroscopic factor, we expect shape coexistence to exert a substantial influence on the variation of half-lives. Finally, we discuss the half-lives in consideration of shape coexistence. Our results indicate that the calculated half-life is governed not by the total-energy difference between coexisting minima but rather by the spectroscopic factor influenced by the deformation.

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