Nuclear properties for nuclear astrophysics studies

被引:13
作者
Goriely, S. [1 ]
机构
[1] Univ Libre Bruxelles, Inst Astron & Astrophys, CP 226, B-1050 Brussels, Belgium
关键词
R-PROCESS NUCLEOSYNTHESIS; DYNAMICAL MASS EJECTION; MEAN-FIELD MODELS; S-PROCESS; DIPOLE STRENGTH; BETA-DECAY; ELECTROMAGNETIC COUNTERPARTS; LEVEL DENSITY; WHITE-DWARFS; P-PROCESS;
D O I
10.1140/epja/s10050-023-00931-x
中图分类号
O57 [原子核物理学、高能物理学];
学科分类号
070202 ;
摘要
The need for nuclear data for astrophysics applications challenges experimental techniques as well as the robustness and predictive power of present nuclear models. Most of the nuclear data evaluations and predictions are still performed on the basis of phenomenological nuclear models. In the last decades, important progress has been achieved in fundamental nuclear physics, making it now feasible to use more reliable, but also more complex microscopic or semi-microscopic models in the evaluation and prediction of nuclear data for practical applications. In the present contribution, the reliability and accuracy of recent nuclear theories are discussed for most of the quantities needed to estimate reaction cross sections and beta-decay rates, namely nuclear masses, nuclear level densities, gamma-ray strength, fission properties and beta-strength functions. It is shown that nowadays, mean-field models can be tuned at the same level of accuracy as the phenomenological models, renormalized on experimental data if needed, and therefore can replace the phenomenological inputs in the prediction of nuclear data. While fundamental nuclear physicists keep on improving state-of-the-art models, in particular the shell or ab-initio models, nuclear applications could make use of their most recent results as quantitative constraints or guides to improve the predictions in energy or mass domain that will remain inaccessible experimentally.
引用
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页数:16
相关论文
共 158 条
[1]  
Abbott A, 2017, NATURE, V551, P425, DOI 10.1038/551425a
[2]   Impact of phonon coupling on the photon strength function [J].
Achakovskiy, O. ;
Avdeenkov, A. ;
Goriely, S. ;
Kamerdzhiev, S. ;
Krewald, S. .
PHYSICAL REVIEW C, 2015, 91 (03)
[3]   A compilation of charged-particle induced thermonuclear reaction rates [J].
Angulo, C ;
Arnould, M ;
Rayet, M ;
Descouvemont, P ;
Baye, D ;
Leclercq-Willain, C ;
Coc, A ;
Barhoumi, S ;
Aguer, P ;
Rolfs, C ;
Kunz, R ;
Hammer, JW ;
Mayer, A ;
Paradellis, T ;
Kossionides, S ;
Chronidou, C ;
Spyrou, K ;
Degl'Innocenti, S ;
Fiorentini, G ;
Ricci, B ;
Zavatarelli, S ;
Providencia, C ;
Wolters, H ;
Soares, J ;
Grama, C ;
Rahighi, J ;
Shotter, A ;
Rachti, ML .
NUCLEAR PHYSICS A, 1999, 656 (01) :3-183
[4]  
ARNETT WD, 1996, SUPERNOVAE NUCLEOSYN
[5]   The p-process of stellar nucleosynthesis: astrophysics and nuclear physics status [J].
Arnould, A ;
Goriely, S .
PHYSICS REPORTS-REVIEW SECTION OF PHYSICS LETTERS, 2003, 384 (1-2) :1-84
[6]   The r-process of stellar nucleosynthesis: Astrophysics and nuclear physics achievements and mysteries [J].
Arnould, M. ;
Goriely, S. ;
Takahashi, K. .
PHYSICS REPORTS-REVIEW SECTION OF PHYSICS LETTERS, 2007, 450 (4-6) :97-213
[7]   Astronuclear Physics: A tale of the atomic nuclei in the skies [J].
Arnould, M. ;
Goriely, S. .
PROGRESS IN PARTICLE AND NUCLEAR PHYSICS, 2020, 112
[8]   Gorkov algebraic diagrammatic construction formalism at third order [J].
Barbieri, Carlo ;
Duguet, Thomas ;
Soma, Vittorio .
PHYSICAL REVIEW C, 2022, 105 (04)
[9]   γ strength function and level density of 208Pb from forward-angle proton scattering at 295 MeV [J].
Bassauer, S. ;
von Neumann-Cosel, P. ;
Tamii, A. .
PHYSICAL REVIEW C, 2016, 94 (05)
[10]   APPLICATION OF A THEORY AND SIMULATION-BASED CONVECTIVE BOUNDARY MIXING MODEL FOR AGB STAR EVOLUTION AND NUCLEOSYNTHESIS [J].
Battino, U. ;
Pignatari, M. ;
Ritter, C. ;
Herwig, F. ;
Denisenkov, P. ;
Den Hartogh, J. W. ;
Trappitsch, R. ;
Hirschi, R. ;
Freytag, B. ;
Thielemann, F. ;
Paxton, B. .
ASTROPHYSICAL JOURNAL, 2016, 827 (01)