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原子核如何聚类。

How atomic nuclei cluster.

机构信息

CEA/DAM/DIF, F-91297 Arpajon, France.

出版信息

Nature. 2012 Jul 18;487(7407):341-4. doi: 10.1038/nature11246.

DOI:10.1038/nature11246
PMID:22810698
Abstract

Nucleonic matter displays a quantum-liquid structure, but in some cases finite nuclei behave like molecules composed of clusters of protons and neutrons. Clustering is a recurrent feature in light nuclei, from beryllium to nickel. Cluster structures are typically observed as excited states close to the corresponding decay threshold; the origin of this phenomenon lies in the effective nuclear interaction, but the detailed mechanism of clustering in nuclei has not yet been fully understood. Here we use the theoretical framework of energy-density functionals, encompassing both cluster and quantum liquid-drop aspects of nuclei, to show that conditions for cluster formation can in part be traced back to the depth of the confining nuclear potential. For the illustrative example of neon-20, we show that the depth of the potential determines the energy spacings between single-nucleon orbitals in deformed nuclei, the localization of the corresponding wavefunctions and, therefore, the degree of nucleonic density clustering. Relativistic functionals, in particular, are characterized by deep single-nucleon potentials. When compared to non-relativistic functionals that yield similar ground-state properties (binding energy, deformation, radii), they predict the occurrence of much more pronounced cluster structures. More generally, clustering is considered as a transitional phenomenon between crystalline and quantum-liquid phases of fermionic systems.

摘要

核物质呈现出量子液体结构,但在某些情况下,有限的核类似于由质子和中子团簇组成的分子。团簇结构是从轻核(从铍到镍)中经常观察到的特征。团簇结构通常表现为接近相应衰变阈值的激发态;这种现象的起源在于有效核相互作用,但核中团簇形成的详细机制尚未完全理解。在这里,我们使用能量密度泛函的理论框架,包括核的团簇和量子液体滴方面,表明团簇形成的条件部分可以追溯到约束核势的深度。对于氖-20 的说明性示例,我们表明,势的深度决定了变形核中单核子轨道之间的能量间隔,相应波函数的定位,因此,核子密度团簇的程度。相对论泛函的特点是具有深的单核子势。与产生相似基态性质(结合能、变形、半径)的非相对论泛函相比,它们预测会出现更为明显的团簇结构。更一般地说,团簇被认为是费米子系统的晶体和量子液体相之间的过渡现象。

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α-Clustering in atomic nuclei from first principles with statistical learning and the Hoyle state character.基于统计学习和霍伊尔态特征从第一性原理研究原子核中的α 聚类
Nat Commun. 2022 Apr 27;13(1):2234. doi: 10.1038/s41467-022-29582-0.
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Nuclear physics: Nucleons come together.核物理学:核子聚集在一起。

本文引用的文献

1
Linear chain structure of four-α clusters in 16O.16O 中四-α 团簇的线性链结构。
Phys Rev Lett. 2011 Sep 9;107(11):112501. doi: 10.1103/PhysRevLett.107.112501.
2
Revised rates for the stellar triple-alpha process from measurement of 12C nuclear resonances.通过对¹²C核共振的测量得到的恒星三阿尔法过程的修正速率。
Nature. 2005 Jan 13;433(7022):136-9. doi: 10.1038/nature03219.
3
Alpha cluster condensation in 12C and 16O.12C和16O中的α团簇凝聚
Nature. 2012 Jul 18;487(7407):309-10. doi: 10.1038/487309a.
Phys Rev Lett. 2001 Nov 5;87(19):192501. doi: 10.1103/PhysRevLett.87.192501. Epub 2001 Oct 17.
4
Behavior of the nuclear charge radii systematics in the s-d shell from muonic atom measurements.通过μ介子原子测量得到的s-d壳层中核电荷半径系统的行为。
Phys Rev C Nucl Phys. 1992 Jan;45(1):80-89. doi: 10.1103/physrevc.45.80.