论文标题
使用未来探测器对中子星际黑色孔系统的自旋平衡搜索的敏感性
Sensitivity of spin-aligned searches for neutron star-black hole systems using future detectors
论文作者
论文摘要
当前对紧凑型二进制对象的重力波的搜索主要是为检测主要的重力波模式而设计的,并假设二进制组件具有与轨道角动量对齐的旋转。这些选择导致观察到的源分布的观察性偏见。可能会遗漏具有明显的自旋轨道进液或不平等质量比率的来源,这些源具有不可忽略的副本重力波模式的贡献;特别是,这可能会显着抑制或偏向观察到的中子星 - 黑洞(NSBH)种群。我们模拟了NSBH合并的基准种群,并确定仅考虑主导模式和对齐旋转的搜索的影响。我们比较了高级Ligo设计,A+,Ligo Voyager和Cosmic Explorer观测站的影响。我们发现,对于一个基于旋转分布在方向和统一的基金人群中,我们会错过$ \ sim 25 \%25 \%的$ sources,具有质量比率$ q> 6 $的来源,高达$ \ sim 60 \ sim 60 \%的高度预处理来源$(χ_p> 0.5)$,售后账户,以增加背景。实际上,由于严格的搜索信号一致性测试,真正的观察偏差可能更大。通过高级Ligo设计和先进的处女座观察低自旋,不平等的质量比来源可能部分是由于这些选择效应。对高质量比率敏感的搜索的发展,进攻源可以允许检测新的二进制文件,其自旋特性将为紧凑物体的形成和天体物理学提供关键的见解。
Current searches for gravitational waves from compact-binary objects are primarily designed to detect the dominant gravitational-wave mode and assume that the binary components have spins which are aligned with the orbital angular momentum. These choices lead to observational biases in the observed distribution of sources. Sources with significant spin-orbit precession or unequal-mass-ratios, which have non-negligible contributions from sub-dominant gravitational-wave modes, may be missed; in particular, this may significantly suppress or bias the observed neutron star -- black hole (NSBH) population. We simulate a fiducial population of NSBH mergers and determine the impact of using searches that only account for the dominant-mode and aligned spin. We compare the impact for the Advanced LIGO design, A+, LIGO Voyager, and Cosmic Explorer observatories. We find that for a fiducial population where the spin distribution is isotropic in orientation and uniform in magnitude, we will miss $\sim 25\%$ of sources with mass-ratio $q > 6$ and up to $\sim 60 \%$ of highly precessing sources $(χ_p > 0.5)$, after accounting for the approximate increase in background. In practice, the true observational bias can be even larger due to strict signal-consistency tests applied in searches. The observation of low spin, unequal-mass-ratio sources by Advanced LIGO design and Advanced Virgo may in part be due to these selection effects. The development of a search sensitive to high mass-ratio, precessing sources may allow the detection of new binaries whose spin properties would provide key insights into the formation and astrophysics of compact objects.