Charting the Nanohertz Gravitational Wave Sky with Pulsar Timing Arrays

Reginald Christian Bernardo, Kin-Wang Ng
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Abstract

In the summer of 2023, the pulsar timing arrays (PTAs) announced a compelling evidence for the existence of a nanohertz stochastic gravitational wave background (SGWB). Despite this breakthrough, however, several critical questions remain unanswered: What is the source of the signal? How can cosmic variance be accounted for? To what extent can we constrain nanohertz gravity? When will individual supermassive black hole binaries become observable? And how can we achieve a stronger detection? These open questions have spurred significant interests in PTA science, making this an opportune moment to revisit the astronomical and theoretical foundations of the field, as well as the data analysis techniques employed. In this review, we focus on the theoretical aspects of the SGWB as detected by PTAs. We provide a comprehensive derivation of the expected signal and its correlation, presented in a pedagogical manner, while also addressing current constraints. Looking ahead, we explore future milestones in the field, with detailed discussions on emerging theoretical considerations such as cosmic variance, the cumulants of the one- and two-point functions, subluminal gravitational waves, and the anisotropy and polarization of the SGWB.
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用脉冲星定时阵列描绘纳赫兹引力波天空
2023 年夏天,脉冲星定时阵列(PTAs)宣布了纳赫兹随机引力波背景(SGWB)存在的有力证据。尽管取得了这一突破,但仍有几个关键问题没有得到解答:信号源是什么?如何解释宇宙方差?我们能在多大程度上约束纳赫兹引力?何时才能观测到单个超大质量黑洞双星?我们怎样才能实现更强的探测?这些悬而未决的问题激发了人们对 PTA 科学的浓厚兴趣,因此现在正是回顾该领域的天文学和理论基础以及所采用的数据分析技术的大好时机。在这篇综述中,我们将重点讨论 PTA 所探测到的 SGWB 的理论方面。我们对预期信号及其相关性进行了全面的阐述,以教学方式呈现,同时也探讨了当前的制约因素。展望未来,我们探讨了该领域的未来里程碑,并详细讨论了新出现的理论问题,如宇宙方差、单点和两点函数的累积、亚层引力波以及 SGWB 的各向异性和极化。
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