元素的起源和引力波探测对核物理的其他影响

4open Pub Date : 2020-11-16 DOI:10.1051/fopen/2020014
D. Lunney
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引用次数: 1

摘要

GW170817事件揭示的中子星碰撞让我们第一次看到了大多数重元素的可能诞生地。这一历史事件的多重信使性质结合了引力波、伽马射线爆发和光学天文学的“千新星”,在60年的猜测之后,首次观测到快中子捕获(r过程)核合成。对r过程进行建模需要大量的核物理成分:几乎所有富中子核素的所有量子态和相互作用特性,其中许多可能永远无法在实验室中产生!核物理学对中子星(及其最终合并)的另一个重要贡献是状态方程(EoS),它定义了中子星的结构和组成。结合核结合能的知识,EoS确定了中子星外层地壳的元素分布及其半径和质量之间的关系。此外,EoS还决定了引力波信号的形式。本文结合了教程演示和参考书目,以及将核质谱法与中子星引力波联系起来的最新结果。
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The origin of the elements and other implications of gravitational wave detection for nuclear physics
The neutron-star collision revealed by the event GW170817 gave us a first glimpse of a possible birthplace of most of our heavy elements. The multi-messenger nature of this historical event combined gravitational waves, a gamma-ray burst and optical astronomy of a “kilonova”, bringing the first observations of rapid neutron capture (r process) nucleosynthesis after 60 years of speculation. Modeling the r process requires a prodigious amount of nuclear-physics ingredients: practically all the quantum state and interaction properties of virtually all neutron-rich nuclides, many of which may never be produced in the laboratory! Another essential contribution of nuclear physics to neutron stars (and their eventual coalescence) is the equation of state (EoS) that defines their structure and composition. The EoS, combined with the knowledge of nuclear binding energies, determines the elemental profile of the outer crust of a neutron star and the relationship between its radius and mass. In addition, the EoS determines the form of the gravitational wave signal. This article combines a tutorial presentation and bibliography with recent results that link nuclear mass spectrometry to gravitational waves via neutron stars.
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