论文标题
科学驱动的宇宙探索器探测器的可调设计
Science-Driven Tunable Design of Cosmic Explorer Detectors
论文作者
论文摘要
可以通过调整信号提取腔的响应来调整地面重力波检测器,例如宇宙探险器(例如宇宙探险家)以提高其敏感性。增强的灵敏度高于2 kHz,可以测量来自二进制中子星星合并的合并后重力波谱,这在非常取决于热,超密集的物质状态的未知方程。 500 Hz低于500 Hz的灵敏度有利于通过黑洞响声信号对极端重力进行精确测试,并改善了检测前景,同时促进了在宇宙学距离下对源特性的改进测量。在中间频率下,更敏感的检测器可以更好地测量中子星的潮汐特性。我们介绍并表征了调谐的宇宙探索器配置的性能,这些配置旨在优化不同天体物理源种群的检测。这些调整选项使宇宙探险家具有针对具有相同检测器基础设施的各种科学目标的灵活性。我们发现,除了获得合并后物理学以外的所有关键科学目标外,40公里的宇宙探险家探测器在所有关键科学目标中的表现都优于20公里。这表明宇宙探险家应至少包括一个40公里的设施。
Ground-based gravitational-wave detectors like Cosmic Explorer can be tuned to improve their sensitivity at high or low frequencies by tuning the response of the signal extraction cavity. Enhanced sensitivity above 2 kHz enables measurements of the post-merger gravitational-wave spectrum from binary neutron star mergers, which depends critically on the unknown equation of state of hot, ultra-dense matter. Improved sensitivity below 500 Hz favors precision tests of extreme gravity with black hole ringdown signals and improves the detection prospects while facilitating an improved measurement of source properties for compact binary inspirals at cosmological distances. At intermediate frequencies, a more sensitive detector can better measure the tidal properties of neutron stars. We present and characterize the performance of tuned Cosmic Explorer configurations that are designed to optimize detections across different astrophysical source populations. These tuning options give Cosmic Explorer the flexibility to target a diverse set of science goals with the same detector infrastructure. We find that a 40 km Cosmic Explorer detector outperforms a 20 km in all key science goals other than access to post-merger physics. This suggests that Cosmic Explorer should include at least one 40 km facility.