Published July 16, 2026 | Version 0.0.0

Data in Shape evolution of krypton isotopes calculated with axially deformed relativistic Hartree-Bogoliubov approach

  • 1. Advanced Energy Science and Technology, Guangdong Laboratory, Huizhou 516000, China
  • 2. ROR icon Institute of Modern Physics
  • 3. ROR icon Chinese Academy of Sciences
  • 4. ROR icon Zhejiang Sci-Tech University
  • 5. ROR icon RIKEN
  • 6. ROR icon Technical University of Munich
  • 7. ROR icon Peking University

Description

Abstract quoted from Physical Review C - Accepted 30 July, 2026 (https://doi.org/10.1103/c5jk-bdp2)[arXiv:2606.01253

We perform a systematic study of the structure and properties of the krypton isotopic chain including both even-even and odd-$A$ nuclei based on the axially deformed relativistic Hartree-Bogoliubov approach. Five effective interactions of three families of covariant density functionals, i.e., PC-L3R, DD-PCX, DD-PC1, DD-MEX, and DD-ME2, are employed to calculate potential energy surfaces of krypton isotopes. $^{74,75}$Kr and $^{90,91,92}$Kr are determined as typical candidates of shape coexistence. The potential surfaces originating from the PC-L3R, DD-PCX, and DD-MEX interactions exhibit an abrupt shape transition from oblate to prolate for $^{73\text{-}74}$Kr, whereas DD-PC1 and DD-ME2 preserve an oblate ground-state shape. Such discrepancies are attributed to the occupations of single-particle levels at the vicinity of the Fermi surface described by these functionals. Moreover, the comparison between spherical and deformed calculations verifies the indispensability of deformation degrees of freedom in this region. The consideration of deformation effects improves the description of two-neutron separation energies, of which its evolution clearly demonstrates the $N=50$ and $82$ shell closures. Interestingly, PC-L3R predicts a more extended two-neutron drip line up to $^{132}$Kr, in agreement with the NL3$^*$ and PC-PK1 nonlinear effective interactions, whereas other functionals estimate a rather short isotopic chain up to $^{119}$Kr. This anomalous extension implies a significant softening or even collapse of the traditional $N=82$ shell closure near the neutron-rich drip line, highlighting the need for future studies based on triaxial deformation and beyond-mean-field correlations in this nuclear region.

Notes (English)

The data for Figures 1, 2, and 3 in Physical Review C - Accepted 30 July, 2026 (https://doi.org/10.1103/c5jk-bdp2) [arXiv:2606.01253] are generated from relativistic Hartree-Bogoliubov approach with 
(i) PC-L3R [Liu et al., Phys. Lett. B 842, 137946 (2023)], 
(ii) DD-PCX [Yüksel et al., Phys. Rev. C 99, 034318 (2019)], 
(iii) DD-PC1 [Nikšić et al., Phys. Rev. C 78, 034318 (2008)],
(iv) DD-MEX [Taninah et al., Phys. Lett. B 800, 135065 (2020)], and 
(v) DD-ME2 [Lalazissis et al., Phys. Rev. C 71, 024312 (2005)] interactions. 
See Physical Review C - Accepted 30 July, 2026 [arXiv:2606.01253] for more details. 

Although some potential energy curve (PEC) points are missing, e.g., the PECs of $\beta$ = -0.60, -0.40, and -0.36 of 105Kr, importantly, the lowest PECs are presented in this database and used for Figures and for analysis. 

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Additional details

Funding

National Natural Science Foundation of China
General Program (常规面上项目) 11775277
Zhejiang Sci-Tech University
Science Foundation 25062123-Y
Deutsche Forschungsgemeinschaft
Germany's Excellence Strategy EXC-2094-390783311

Dates

Submitted
2026-06-03
Accepted
2026-07-30
Accepted with minor correction for clarity