Subshell gaps and onsets of collectivity from proton and neutron pairing gap correlations

被引:0
作者
Orce, Jose Nicolas [1 ,2 ]
机构
[1] Univ Western Cape, Dept Phys & Astron, P-B X17, ZA-7535 Bellville, South Africa
[2] Natl Inst Theoret & Computat Sci NITheCS, Stellenbosch, South Africa
关键词
Atomic masses; Pairing gaps; Reduced transition probability; Correlations; NUCLEAR; SYSTEMATICS; MODEL;
D O I
10.1016/j.adt.2024.101699
中图分类号
O64 [物理化学(理论化学)、化学物理学]; O56 [分子物理学、原子物理学];
学科分类号
070203 ; 070304 ; 081704 ; 1406 ;
摘要
Throughout the nuclear chart, particle-hole correlations give rise to giant resonances and, together with the proton-neutron interaction, deformation and rotational bands. In order to shed light on many-body correlations in open-shell nuclei, I explore macroscopic properties that could manifest from the collective behaviour of protons and neutrons. Intuitively, the correlation of proton and neutron Cooper pairs can be inferred from the respective pairing gaps, that can precisely be extracted from the AME 2020 atomic mass evaluation through odd-even atomic mass differences. This work shows that the combination of large and close-lying proton and neutron pairing gaps is sensitive to onsets of collectivity and subshell gaps in superfluid nuclei, away from major shell closures. Trends of reduced transition probabilities or B(E2) values - which describe the collective overlap between the wave functions of initial and final nuclear states - are revealed in overall agreement with data. Specially interesting is the peak of collectivity in the tin isotopes at 110Sn, instead of at midshell, as expected by large-scale shell-model calculations; a situation that has astounded the nuclear physics community for quite some time.
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页数:4
相关论文
共 58 条
[1]   The AME2012 atomic mass evaluation (I). Evaluation of input data, adjustment procedures [J].
Audi, G. ;
Wang, M. ;
Wapstra, A. H. ;
Kondev, F. G. ;
MacCormick, M. ;
Xu, X. ;
Pfeiffer, B. .
CHINESE PHYSICS C, 2012, 36 (12) :1287-1602
[2]   Quadrupole collectivity in neutron-deficient Sn nuclei: 104Sn and the role of proton excitations [J].
Bader, V. M. ;
Gade, A. ;
Weisshaar, D. ;
Brown, B. A. ;
Baugher, T. ;
Bazin, D. ;
Berryman, J. S. ;
Ekstrom, A. ;
Hjorth-Jensen, M. ;
Stroberg, S. R. ;
Walters, W. B. ;
Wimmer, K. ;
Winkler, R. .
PHYSICAL REVIEW C, 2013, 88 (05)
[3]   Proton-neutron versus α-like correlations above 100Sn [J].
Baran, V. V. ;
Delion, D. S. .
PHYSICAL REVIEW C, 2016, 94 (03)
[4]   THEORY OF SUPERCONDUCTIVITY [J].
BARDEEN, J ;
COOPER, LN ;
SCHRIEFFER, JR .
PHYSICAL REVIEW, 1957, 108 (05) :1175-1204
[5]   Pairing gaps from nuclear mean-field models [J].
Bender, M ;
Rutz, K ;
Reinhard, PG ;
Maruhn, JA .
EUROPEAN PHYSICAL JOURNAL A, 2000, 8 (01) :59-75
[6]   REFERENCE SPECTRUM METHOD FOR NUCLEAR MATTER [J].
BETHE, HA ;
PETSCHEK, AG ;
BRANDOW, BH .
PHYSICAL REVIEW, 1963, 129 (01) :225-&
[7]  
Bonatsos D, 2015, Arxiv, DOI arXiv:1510.01473
[8]  
BORTIGNON PF, 1998, GIANT RESONANCES NUC, P92001
[9]   APPROXIMATE REDUCTION OF THE MANY-BODY PROBLEM FOR STRONGLY INTERACTING PARTICLES TO A PROBLEM OF SELF-CONSISTENT FIELDS [J].
BRUECKNER, KA ;
LEVINSON, CA .
PHYSICAL REVIEW, 1955, 97 (05) :1344-1352
[10]   2-BODY FORCES AND NUCLEAR SATURATION .3. DETAILS OF THE STRUCTURE OF THE NUCLEUS [J].
BRUECKNER, KA .
PHYSICAL REVIEW, 1955, 97 (05) :1353-1366