Love–C relations for elastic hybrid stars

IF 2.1 4区 物理与天体物理 Q2 ASTRONOMY & ASTROPHYSICS
Zoey Zhiyuan Dong, Joshua Cole Faggert, Shu Yan Lau, Kent Yagi
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Abstract

Neutron stars (NSs) provide a unique laboratory to study matter under extreme densities. Recent observations from gravitational and electromagnetic waves have enabled constraints on NS properties, such as tidal deformability (related to the tidal Love number) and stellar compactness. Although each of these two NS observables depends strongly on the stellar internal structure, the relation between them (called the Love–C relation) is known to be equation-of-state insensitive. In this study, we investigate the effects of a possible crystalline phase in the core of hybrid stars (HSs) on the mass–radius and Love–C relations, where HSs are a subclass of NS models with a quark matter core and a nuclear matter envelope with a sharp phase transition in between. We find that both the maximum mass and the corresponding radius increase as one increases the stiffness of the quark matter core controlled by the speed of sound, while the density discontinuity at the nuclear-quark matter transition effectively softens the equations of state. Deviations of the Love–C relation for elastic HSs from that of fluid NSs become more pronounced with a larger shear modulus, lower transition pressure, and larger density gap and can be as large as 60%. These findings suggest a potential method for testing the existence of distinct phases within HSs, though deviations are not large enough to be detected with current measurements of the tidal deformability and compactness.

Abstract Image

弹性混合星的 Love-C 关系
中子星(NS)为研究极端密度下的物质提供了一个独特的实验室。最近的引力波和电磁波观测使我们能够对中子星的特性,如潮汐变形能力(与潮汐爱数有关)和恒星致密性进行约束。尽管这两项NS观测指标中的每一项都在很大程度上取决于恒星内部结构,但它们之间的关系(称为Love-C关系)是已知的对状态方程不敏感的。在这项研究中,我们研究了混合恒星(HSs)内核中可能存在的结晶相对质量-半径和 Love-C 关系的影响,HSs 是 NS 模型的一个亚类,具有夸克物质内核和核物质包层,两者之间有一个急剧的相变。我们发现,随着受音速控制的夸克物质内核刚度的增加,最大质量和相应半径都会增加,而核-夸克物质转变处的密度不连续性会有效地软化状态方程。弹性 HS 的 Love-C 关系与流体 NS 的 Love-C 关系的偏差随着剪切模量的增大、过渡压力的降低和密度间隙的增大而变得更加明显,偏差可高达 60%。这些发现提出了一种潜在的方法来检验 HS 内部是否存在不同的阶段,尽管偏差还不够大,不足以通过目前对潮汐变形性和致密性的测量来检测。
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来源期刊
General Relativity and Gravitation
General Relativity and Gravitation 物理-天文与天体物理
CiteScore
4.60
自引率
3.60%
发文量
136
审稿时长
3 months
期刊介绍: General Relativity and Gravitation is a journal devoted to all aspects of modern gravitational science, and published under the auspices of the International Society on General Relativity and Gravitation. It welcomes in particular original articles on the following topics of current research: Analytical general relativity, including its interface with geometrical analysis Numerical relativity Theoretical and observational cosmology Relativistic astrophysics Gravitational waves: data analysis, astrophysical sources and detector science Extensions of general relativity Supergravity Gravitational aspects of string theory and its extensions Quantum gravity: canonical approaches, in particular loop quantum gravity, and path integral approaches, in particular spin foams, Regge calculus and dynamical triangulations Quantum field theory in curved spacetime Non-commutative geometry and gravitation Experimental gravity, in particular tests of general relativity The journal publishes articles on all theoretical and experimental aspects of modern general relativity and gravitation, as well as book reviews and historical articles of special interest.
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