暗物质尖峰中具有修正引力的紧凑双星合并率

Saeed Fakhry, Sara Gholamhoseinian and Marzieh Farhang
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引用次数: 0

摘要

在这项研究中,我们研究了修正引力(MG)对超大质量黑洞(SMBH)周围暗物质峰内紧凑双星合并率的影响。具体来说,我们计算了在Hu-Sawicki f(R)引力和Dvali-Gabadze-Porrati(nDGP)引力的正态分支中,涉及原始黑洞(PBHs)和/或中子星(NSs)的双星合并率,以及三种SMBH质量函数:Benson、Vika 和 Shankar。结果表明,与广义相对论(GR)相比,在这些引力模型中预测的 PBH-PBH 和 PBH-NS 双星合并率一直较高,特别是在 SMBH 质量较低和暗物质尖峰密度曲线较陡的情况下。我们将预测的合并率与 LIGO-Virgo-KAGRA 的观测结果进行了比较,以约束理论参数。特别是,我们发现与 GR 相比,MG 情景中的暗物质尖峰密度曲线更陡峭。与目前观测到的 PBH 丰度约束相比,我们发现在给定合并率的情况下,Hu-Sawicki f(R) 模型所允许的质量范围比 nDGP 模型所允许的质量范围要宽。结果在很大程度上取决于所选择的 SMBH 质量函数,维卡和香卡质量函数预测的丰度较低。结果对假定引力情景和 SMBH 质量函数的相当敏感性表明,在对紧凑双星合并率以及 PBH 特性进行相对稳健的预测时,有必要纳入相应的理论不确定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Compact Binary Merger Rate with Modified Gravity in Dark Matter Spikes
In this study, we investigate the impact of modified gravity (MG) on the merger rate of compact binaries within dark matter spikes surrounding supermassive black holes (SMBHs). Specifically, we calculate the binary merger rates involving primordial black holes (PBHs) and/or neutron stars (NSs) in Hu–Sawicki f(R) gravity and the normal branch of Dvali–Gabadadze–Porrati (nDGP) gravity, with three SMBH mass functions: Benson, Vika, and Shankar. The results show consistently higher merger rates predicted for PBH–PBH and PBH–NS binaries in these gravity models compared to general relativity (GR), in particular at lower SMBH masses and for steeper dark matter spike density profiles. The predicted merger rates are compared to the LIGO–Virgo–KAGRA observations in constraining the parameters of the theory. In particular, we find steeper dark matter spike density profiles in the MG scenarios compared to GR. When compared to current observational constraints on PBH abundance, the mass ranges allowed by Hu–Sawicki f(R) models are found to be wider than those allowed by nDGP models, for given merger rates. The results are highly dependent on the choice of SMBH mass function, with the Vika and Shankar mass functions predicting lower abundances. The considerable sensitivity of the results to the assumed gravity scenario and SMBH mass function demonstrates the necessity of incorporating the corresponding theoretical uncertainties when making relatively robust predictions on compact binary merger rates and, as a result, on PBH properties.
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