论文标题

在天体物理前景存在下,具有原始GW背景的精密宇宙学

Precision cosmology with primordial GW backgrounds in presence of astrophysical foregrounds

论文作者

Racco, Davide, Poletti, Davide

论文摘要

引力波(GW)天文学的时代将从未解决的二进制黑洞合并以及探测原始GW背景的存在的前景中赋予天体物理GW背景。特别是,GW频谱的低频尾部用于因果生成的原始信号(如相位过渡)提供了一个绝佳的机会,可以在重新组合之前测量明确的宇宙学参数作为宇宙状态的明确宇宙学参数,或者是宇宙的自由流颗粒。我们讨论该程序是否因与原始背景共存的天体物理GW前景的不确定性危害。我们详细介绍了可以假定天体物理前景的动机假设,并且只有其归一化不确定。在这种情况下,对原始信号的敏感性可以通过简单且数值敏捷的过程来计算,其中最佳滤波器功能减去频谱形状接近信号的天体物理前景的成分。我们表明,在天体物理前景存在下对信号的敏感性的降解仅限于少数因素,并且仅在信号更接近前景的频率周围。我们的结果强调了建模怪异或中间质量黑洞对GW背景的贡献的重要性,以巩固前景以使用原始GW背景执行精确宇宙学。

The era of Gravitational-Wave (GW) astronomy will grant the detection of the astrophysical GW background from unresolved mergers of binary black holes, and the prospect of probing the presence of primordial GW backgrounds. In particular, the low-frequency tail of the GW spectrum for causally-generated primordial signals (like a phase transition) offers an excellent opportunity to measure unambiguously cosmological parameters as the equation of state of the universe, or free-streaming particles at epochs well before recombination. We discuss whether this programme is jeopardised by the uncertainties on the astrophysical GW foregrounds that coexist with a primordial background. We detail the motivated assumptions under which the astrophysical foregrounds can be assumed to be known in shape, and only uncertain in their normalisation. In this case, the sensitivity to a primordial signal can be computed by a simple and numerically agile procedure, where the optimal filter function subtracts the components of the astrophysical foreground that are close in spectral shape to the signal. We show that the degradation of the sensitivity to the signal in presence of astrophysical foregrounds is limited to a factor of a few, and only around the frequencies where the signal is closer to the foregrounds. Our results highlight the importance of modelling the contributions of eccentric or intermediate-mass black hole binaries to the GW background, to consolidate the prospects to perform precision cosmology with primordial GW backgrounds.

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