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arXiv · 2111.07612

Microscopic study of higher-order deformation effects on the ground states of superheavy nuclei around $^{270}$Hs

Abstract

We study the effects of higher-order deformations $β_λ$ ($λ=4,6,8,$ and $10$) on the ground state properties of superheavy nuclei (SHN) near the doubly magic deformed nucleus $^{270}$Hs by using the multidimensionally-constrained (MDC) relativistic mean-field (RMF) model with five effective interactions PC-PK1, PK1, NL3$^{*}$, DD-ME2, and PKDD. The doubly magic properties of $^{270}$Hs are featured by the large energy gaps at $N=162$ and $Z=108$ in the single-particle spectra. By investigating the binding energies and single-particle levels of $^{270}$Hs in multidimensional deformation space, we find that the deformation $β_6$ has the greatest impact on the binding energy among these higher-order deformations and influences the shell gaps considerably. Similar conclusions hold for other SHN near $^{270}$Hs. Our calculations demonstrate that the deformation $β_6$ must be considered when studying SHN by using MDC-RMF.

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Xiao-Qian Wang, Xiang-Xiang Sun, Shan-Gui Zhou. 2021-11-15. Microscopic study of higher-order deformation effects on the ground states of superheavy nuclei around $^{270}$Hs. https://doi.org/10.1088/1674-1137%2Fac3904

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