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α-decay chains of 173288115 and 172287115 in the relativistic mean field theory

  • L. S. Geng*
  • , H. Toki
  • , J. Meng
  • *Corresponding author for this work
  • The University of Osaka
  • Peking University

Research output: Contribution to journalArticlepeer-review

Abstract

In the recent experiments designed to synthesize the element 115 in the 243Am+48Ca reaction at Dubna in Russia, three similar decay chains consisting of five consecutive α decays and another different decay chain of four consecutive α decays are detected, and the decay properties of these synthesized nuclei are claimed to be consistent with consecutive α decays originating from the parent isotopes of the new element 115, 288115 and 287115, respectively. Here in the present work, the recently developed deformed relativistic mean field+BCS method with a density-independent δ function interaction in the pairing channel is applied to the analysis of these newly synthesized superheavy nuclei. The calculated α-decay energies and half-lives agree well with the experimental values and with those of the macroscopic-microscopic finite-range droplet model with folded-Yukawa single-particle potentials and Yukawa-plus-exponential model with Woods-Saxon single-particle potentials. In the mean field Lagrangian, the TMA parameter set is used. Particular emphasis is laid on the influence to both the ground-state properties and energy surfaces introduced by different treatments of pairing. Two different effective interactions in the particle-particle channel, i.e., the constant pairing and the density-independent δ-function interaction, together with the blocking effect are discussed in detail.

Original languageEnglish
Article number061303
Pages (from-to)613031-613035
Number of pages5
JournalPhysical Review C - Nuclear Physics
Volume68
Issue number6
DOIs
StatePublished - Dec 2003
Externally publishedYes

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