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    Refined shell-model calculations of the δC correction to superallowed 0+→0+ nuclear β decay and standard-model implications

    L. Xayavong1,2, N. A. Smirnova2, and F. Nowacki3

    • 1Department of Physics, Yonsei University, Seoul 03722, South Korea
    • 2LP2IB (CNRS/IN2P3-Université de Bordeaux), F-33170 Gradignan Cedex, France
    • 3Université de Strasbourg, CNRS, IPHC UMR 7178, 23 rue du Loess, F-67 000 Strasbourg, France

    Phys. Rev. C 112, 055503 – Published 14 November, 2025

    DOI: https://doi.org/10.1103/pwl4-7y27

    Abstract

    Refined calculations of the radial mismatch correction, δC2, to superallowed 0+→0+ nuclear β decay are performed using the shell model with realistic Woods-Saxon radial wave functions. Two important improvements are introduced: (i) charge radii used to constrain the length parameter are evaluated within a generalized formula, where proton occupation numbers are substituted by sums of spectroscopic factors, while radial wave functions are required to match separation energies with respect to the intermediate (A−1)-nucleon states by adjusting parameters such as the potential depth; (ii) configuration mixing wave functions and energies for many-particle states are obtained through the diagonalization of well-established effective interactions in large configuration spaces without truncation. Furthermore, a variation of ±0.1fm in the surface diffuseness parameter is now incorporated as a source of uncertainty. The present results are generally in fairly good agreement with those from previous studies. As an exception, the δC2 value obtained for Ne18 is smaller by approximately a factor of 2, principally due to the updated charge-radius treatment. A reduction is also observed in most cases with A≥38, through the deviations generally remain within the newly assigned error bars. The smaller isospin-mixing counterpart, δC1, is strongly interaction dependent, roughly following an inverse-square law with respect to the energy separation between the lowest admixed states. Therefore, an additional procedure to ensure the accurate level spacing, as well as isobaric displacements within the isospin multiplets, appears to be indispensable. Our results for δC2 lead to a new averaged Ft¯ value of 3073.11(99)stat(36)δR′(173)δNS′s with χ2/ν=0.624. The corresponding |Vud| value is 0.97359(33).

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