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arXiv:2608.14202·v1·Nuclear Theory

Enhancement of alpha-decay by positive hexadecapole deformation

Kai Ren · Minghui Hu · Pengfei Ma · Junlong Tian · Cheng Li

Abstract

Whether hexadecapole deformation () influences decay remains controversial: machine-learning analyses suggest a strong link to cluster preformation, while empirical formulas find only marginal effects. We show that this discrepancy originates in the treatment of shell effects---without an explicit shell correction, residuals near magic numbers are absorbed into the deformation coefficients, obscuring the genuine dependence. Adding the inverse Casten factor , which encodes valence proton--neutron correlations relative to the nearest closed shells, and the parent-nucleus deformation to the Royer formula reduces the root-mean-square deviation from 0.309 to 0.184 for 192 even--even nuclei. The fitted negative coefficient shows that positive hexadecapole deformation systematically shortens half-lives, consistent with enhanced -cluster preformation at locally convex surface regions. For the isotopic chain (Pu), where pronounced occurs, the original Royer formula overestimates half-lives by up to ~dex, providing a clear, testable signature of this surface-preformation effect. The same correction also improves the UDL and yields predictions for 1060 even--even nuclei.

Comments: 19 pages,7 figures