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Precision cosmology from future lensed gravitational wave and electromagnetic signals

机译:来自未来透镜引力波和电磁信号的精密宇宙学

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摘要

The standard siren approach of gravitational wave cosmology appeals to the direct luminosity distance estimation through the waveform signals from inspiralling double compact binaries, especially those with electromagnetic counterparts providing redshifts. It is limited by the calibration uncertainties in strain amplitude and relies on the fine details of the waveform. The Einstein telescope is expected to produce 104–105 gravitational wave detections per year, 50–100 of which will be lensed. Here, we report a waveform-independent strategy to achieve precise cosmography by combining the accurately measured time delays from strongly lensed gravitational wave signals with the images and redshifts observed in the electromagnetic domain. We demonstrate that just 10 such systems can provide a Hubble constant uncertainty of 0.68% for a flat lambda cold dark matter universe in the era of third-generation ground-based detectors.
机译:引力波宇宙学的标准警报器方法通过启发性的双紧凑二进制文件(特别是那些具有电磁对应物的红移二进制文件)的波形信号吸引直接光度距离估算。它受到应变幅度校准不确定性的限制,并依赖于波形的精细细节。预计爱因斯坦望远镜每年会产生10 4 –10 5 引力波探测,其中有50–100会被透镜化。在这里,我们报告了一种与波形无关的策略,通过将来自强透镜引力波信号的精确测量的时延与在电磁域中观察到的图像和红移相结合,来实现精确的宇宙成像。我们证明,在第三代地面探测器的时代,对于平坦的λ冷暗物质宇宙,只有10个这样的系统可以提供0.68%的哈勃常数不确定性。

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