论文标题

从存在$ \ sim 2.6〜m _ {\ odot} $中子星的存在中探测状态的核方程式:GW190814难题

Probing the nuclear equation of state from the existence of a $\sim 2.6~M_{\odot}$ neutron star: the GW190814 puzzle

论文作者

Kanakis-Pegios, A., Koliogiannis, P. S., Moustakidis, Ch. C.

论文摘要

2019年8月14日,Ligo/Pirgo合作将质量$ \ sim 2.59 _ { - 0.09}^{+0.08} 〜M _ {\ odot} $作为一个系统的组件作为一个系统的组件,其中主要同伴是一个带有质量$ \ sim 23〜M _ M _ sim 23〜M _} $的系统的组件。关于低质量成分的鉴定,它落入中子星 - 黑洞质量间隙时,就开始了一项科学辩论。对GW190814事件的性质的理解将提供有关开放问题,声音速度以及可能的相位过渡到其他自由度的丰富信息。在目前的工作中,我们努力与GW190814事件一起探究国家核方程。首先,我们从考虑到低质量伴侣是缓慢或迅速旋转的中子星的考虑到对状态的核方程的可能限制。在这种情况下,与密集的核物质特性有关,上限在声音速度上的作用被揭示出来。其次,我们系统地研究了作为单个恒星或二元中子星系中可能存在的高质量候选者的潮汐变形性。由于潮汐变形性和半径对状态的中子星方程非常敏感,因此它们是密集物质特性的出色计数器。我们猜想宇宙中可能存在类似的孤立的中子星或系统,它们可能的未来观察将揭示最大的中子星质量问题。

On August 14, 2019, the LIGO/Virgo collaboration observed a compact object with mass $\sim 2.59_{-0.09}^{+0.08}~M_{\odot}$, as a component of a system where the main companion was a black hole with mass $\sim 23~M_{\odot}$. A scientific debate initiated concerning the identification of the low mass component, as it falls into the neutron star - black hole mass gap. The understanding of the nature of GW190814 event will offer rich information concerning open issues, the speed of sound and the possible phase transition into other degrees of freedom. In the present work, we made an effort to probe the nuclear equation of state along with the GW190814 event. Firstly, we examine possible constraints on the nuclear equation of state inferred from the consideration that the low mass companion is a slow or rapidly rotating neutron star. In this case, the role of the upper bounds on the speed of sound is revealed, in connection with the dense nuclear matter properties. Secondly, we systematically study the tidal deformability of a possible high mass candidate existing as an individual star or as a component one in a binary neutron star system. As the tidal deformability and radius are quantities very sensitive on the neutron star equation of state, they are excellent counters on dense matter properties. We conjecture that similar isolated neutron stars or systems may exist in the Universe and their possible future observation will shed light on the maximum neutron star mass problem.

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