论文标题

极端质量比由大型黑洞二进制触发的灵感:从相对论动力学到宇宙学率

Extreme Mass Ratio Inspirals triggered by Massive Black Hole Binaries: from Relativistic Dynamics to Cosmological Rates

论文作者

Mazzolari, Giovanni, Bonetti, Matteo, Sesana, Alberto, Colombo, Riccardo M., Dotti, Massimo, Lodato, Giuseppe, Izquierdo-Villalba, David

论文摘要

极高的质量比灵感(EMRIS)是紧凑的二进制系统,其特征是质量比率$ q = m/m $,范围内$ 〜10^{ - 9} -9} -10^{ - 4} $,代表了即将出现的激光器干扰器空间天线(LISA)的主要引力波(GW)源。尽管它们的标准地层渠道涉及放松过程,这些过程在中央大型黑洞周围偏转了非常低的角动量轨道上的紧凑物体,但已经提出了许多替代的地层通道,包括二进制潮汐分解,增生磁盘以及周围的大量黑洞binary Binary Binary Binary Binary(MBHB)。在这项工作中,我们对后一种情况进行了广泛的仔细研究,调查了如何由Galaxy合并后形成的MBHB触发Emris。通过采用一套相对论的三体模拟,我们评估了EMRI形成在MBHB的不同参数中的效率,评估了世俗和混乱动力学的重要性。通过对星系核中紧凑型物体的分布进行建模,我们估计所得的EMRI形成速率,发现EMRI是在急剧爆发中产生的,峰值速率比标准的两体松弛频道高10-100倍,持续时间为10 $^6 $ -10 $ -10 $^8 $。通过将我们的结果与宇宙MBHB合并率的估计结合在一起,我们最终预测,丽莎可以观察到$ {\ cal o}(10)$每年由此渠道形成的Emris。

Extreme mass ratio inspirals (EMRIs) are compact binary systems characterized by a mass-ratio $q=m/M$ in the range $~10^{-9}-10^{-4}$ and represent primary gravitational wave (GW) sources for the forthcoming Laser Interferometer Space Antenna (LISA). While their standard formation channel involves relaxation processes deflecting compact objects on very low angular momentum orbits around the central massive black hole, a number of alternative formation channels has been proposed, including binary tidal break-up, migration in accretion disks and secular and chaotic dynamics around a massive black hole binary (MBHB). In this work, we take an extensive closer look at this latter scenario, investigating how EMRIs can be triggered by a MBHBs, formed in the aftermath of galaxy mergers. By employing a suite of relativistic three-body simulations, we evaluate the efficiency of EMRI formation for different parameters of the MBHB, assessing the importance of both secular and chaotic dynamics. By modelling the distribution of compact objects in galaxy nuclei, we estimate the resulting EMRI formation rate, finding that EMRI are produced in a sharp burst, with peak rates that are 10-100 times higher than the standard two-body relaxation channel, lasting for 10$^6$--10$^8$ years. By coupling our results with an estimate of the cosmic MBHB merger rate, we finally forecast that LISA could observe ${\cal O}(10)$ EMRIs per year formed by this channel.

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