N = 8 Shell Breaking in 12Be from a Single-Particle Perspective

Experimental observations of the low-lying states in 12Be and their accurate modeling play an essential role in understanding the disappearance of the N=8 magic number. Long-standing experimental ambiguities have been clarified using an one-neutron adding (d,p) reaction on 11Be using the ISOLDE Solenoidal Spectrometer at CERN’s HIE-ISOLDE facility. The single-particle energies of 1s1=2, 0d5=2, and 0p1=2 orbitals in 12Be have been determined from the extracted spectroscopic factors. A significant reduction between the separation of 1s1=2 and 0p1=2 orbitals is found in comparison with the carbon isotones, highlighting the breakdown of the N¼ 8 shell. These observations serve as an important test of different effects incorporated in theoretical models. It is found that two synergistic mechanisms, core deformation and weak binding, are responsible for the N¼ 8 shell breaking and the exotic near-threshold phenomena observed in 12Be, including the narrow unnatural-parity resonance 0−1 and the possible halolike nature of the 0+2 isomer.

DOI
10.1103/3vts-dwst
Publication date
Reference
Physical Review Letters 136, 222501 (2026)
Authors
J. Chen, B. P. Kay, D. K. Sharp, L. P. Gaffney, S. J. Freeman, S. M. Wang, J. G. Li, P. T. MacGregor, C. R. Hoffman, Y. Ayyad, P. A. Butler, S. Carollo, A. Ceulemans, D. J. Clarke, A. J. Dolan, C. Everett, Z. Favier, K. Garrett, J. Geng, H. Jayatissa, M. Labiche, I. Lazarus, W. P. Liu, Y. F. Niu, B. Olaizola, J. Ojala, C. A. A. Page, R. D. Page, O. Poleshchuk, R. Raabe, M. R. Xie, C. X. Yuan, Z. Yue, Y. N. Zhang