Detecting intermediate-mass black hole binaries with atom interferometer observatories: Using the resonant mode for the merger phase

IF 4.2 Q2 QUANTUM SCIENCE & TECHNOLOGY
Alejandro Torres-Orjuela
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Abstract

Atom interferometry detectors like AION, ZAIGA, and AEDGE will be able to detect gravitational waves (GWs) at dHz covering the band between large space-based laser interferometers LISA/TianQin/Taiji and ground-based facilities LIGO/Virgo/KAGRA. They will detect the late inspiral and merger of GW sources containing intermediate-mass black holes (IMBHs) in the mass range 102−105 M⊙. We study how accurately the parameters of an IMBH binary can be measured using AION's power spectral density. Furthermore, we propose a detection scheme where the early inspiral of the binary is detected using the regular broadband mode while the merger is detected using the resonant mode. We find that using such a detection scheme, the signal-to-noise ratio of the detection and the detection accuracy of the parameters can be enhanced compared to the full detection of the signal using the broadband mode. We, further, assess the impact of the necessary detection gap while switching from broadband to resonant mode studying the case of a short (30 s) and a long (600 s) gap. We find that the improvement in the detection accuracy for both gaps is around 40% for the total mass and the spin of the heavier black hole. For the short gap, the accuracy always improves ranging between 2% and 31% for the other parameters. For the long gap, there is a decrease in the detection accuracy for the luminosity distance, the inclination, and the initial phase but only by 1%–6% while for the remaining parameters, we have improved accuracies of around 2%–20%.
用原子干涉仪观测中质量黑洞双星:利用合并相位的共振模式
像AION、ZAIGA和AEDGE这样的原子干涉测量探测器将能够探测到覆盖在大型天基激光干涉仪LISA/TianQin/Taiji和地面设施LIGO/Virgo/KAGRA之间的dHz波段的引力波。他们将探测到含有质量范围在102 ~ 105 M⊙的中质量黑洞(IMBHs)的GW源的后期激发和合并。我们研究了利用AION的功率谱密度测量IMBH双星参数的准确性。此外,我们还提出了一种检测方案,其中使用常规宽带模式检测双星的早期启发,而使用谐振模式检测合并。我们发现,与使用宽带模式对信号进行全检测相比,使用这种检测方案可以提高检测的信噪比和参数的检测精度。我们进一步评估了从宽带模式切换到谐振模式时必要的检测间隙的影响,研究了短(30秒)和长(600秒)间隙的情况。我们发现,对于总质量和较重黑洞的自旋,两个间隙的探测精度都提高了40%左右。对于短间隙,其他参数的精度提高幅度在2% ~ 31%之间。对于较长的间隙,光度距离、倾角和初始相位的检测精度下降了1% ~ 6%,其余参数的检测精度提高了2% ~ 20%左右。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
9.90
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