DOE OSTI Β· 2571778
Weak decays in superheavy nuclei
Abstract
Superheavy nuclei represent the extreme atoms and nuclides known at the limit of mass and charge. The observed superheavy nuclei are all proton-rich; they decay primarily by emitting πΌ particles and by fission with a possible small electron capture (EC) branch. Here, due to the huge atomic numbers and associated relativistic effects, EC decays of superheavy systems are expected to differ from what is known in lighter nuclei. In this letter, using the quantified relativistic nuclear density functional theory and the quasiparticle random-phase approximation with the interaction optimized to experimental EC/π½ Β± -decay half-lives, and Gamow-Teller resonance energies, we study the EC/π½ Β± -decays in π=101β118 nuclei. Both allowed (1 + ) and first-forbidden (0 β ,1 β and 2 β ) transitions are considered. We show that the first-forbidden 1 β transitions dominate the decay rates in almost all studied nuclei. For proton-rich nuclei, EC dominates over π½ + decay. Based on calculations with two relativistic energy density functionals, we identify 45 candidate nuclei in which a competition between weak decays and πΌ decay and spontaneous fission is expected.
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RavliΔ, A. [Michigan State University, East Lansing, MI (United States)] (ORCID:0000000196395382), Nazarewicz, W. [Michigan State University, East Lansing, MI (United States)] (ORCID:0000000280847425). 2025-05-19. Weak decays in superheavy nuclei. https://doi.org/10.1103/physrevc.111.l051305
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