论文标题

使用快速无线电爆发引力透镜干涉态度/frb的快速无线电爆发引力透镜干涉测量

A High-Time Resolution Search for Compact Objects using Fast Radio Burst Gravitational Lens Interferometry with CHIME/FRB

论文作者

Kader, Zarif, Leung, Calvin, Dobbs, Matt, Masui, Kiyoshi W., Michilli, Daniele, Mena-Parra, Juan, Mckinven, Ryan, Ng, Cherry, Bandura, Kevin, Bhardwaj, Mohit, Brar, Charanjot, Cassanelli, Tomas, Chawla, Pragya, Dong, Fengqiu Adam, Good, Deborah, Kaspi, Victoria, Lanman, Adam E., Lin, Hsiu-Hsien, Meyers, Bradley W., Pearlman, Aaron B., Pen, Ue-Li, Petroff, Emily, Pleunis, Ziggy, Rafiei-Ravandi, Masoud, Rahman, Mubdi, Sanghavi, Pranav, Scholz, Paul, Shin, Kaitlyn, Siegel, Seth, Smith, Kendrick M., Stairs, Ingrid, Tendulkar, Shriharsh P., Vanderlinde, Keith, Wulf, Dallas

论文摘要

紧凑物体的重力场(例如原始黑洞)可以创建背景源的多个图像。对于诸如快速无线电爆发(FRB)之类的瞬态,可以在时域中解决这些多个图像。在某些情况下,这些图像不仅具有相似的爆发形态,而且在电场水平上也是相位的。通过一种新型的切道化算法和匹配的滤波技术,我们在通过FRB后端的加拿大氢映射强度实验(Chime)的FRB后端(Chime)的FRB后端探测到相同电场波形的重复副本。来自连贯的重力透镜信号的干扰条纹将出现在时间延迟域中,作为时间滞后自相关函数中的统计峰值。我们使用包含没有FRB信号的望远镜数据来校准我们的统计显着性。我们的数据集由$ \ sim $ \ sim $ 100毫米长的电压数据录制,来自172个FRB事件,将其切换到1.25 ns的时间分辨率。这种连贯的搜索算法使我们能够在$ 10^{ - 4} -10^{4}〜\ Mathrm {m _ {\ odot}} $的质量范围内从紧凑型对象中搜索重力镜头签名。在由于衍射闪烁而排除异常候选者后,我们发现在已经分析的172个FRB事件中未发现重力镜头的显着检测。在同伴作品[Leung,Kader+2022]中,我们从此搜索中解释了对暗物质的约束。

The gravitational field of compact objects, such as primordial black holes, can create multiple images of background sources. For transients such as fast radio bursts (FRBs), these multiple images can be resolved in the time domain. Under certain circumstances, these images not only have similar burst morphologies but are also phase-coherent at the electric field level. With a novel dechannelization algorithm and a matched filtering technique, we search for repeated copies of the same electric field waveform in observations of FRBs detected by the FRB backend of the Canadian Hydrogen Mapping Intensity Experiment (CHIME). An interference fringe from a coherent gravitational lensing signal will appear in the time-lag domain as a statistically-significant peak in the time-lag autocorrelation function. We calibrate our statistical significance using telescope data containing no FRB signal. Our dataset consists of $\sim$100-ms long recordings of voltage data from 172 FRB events, dechannelized to 1.25-ns time resolution. This coherent search algorithm allows us to search for gravitational lensing signatures from compact objects in the mass range of $10^{-4}-10^{4} ~\mathrm{M_{\odot}}$. After ruling out an anomalous candidate due to diffractive scintillation, we find no significant detections of gravitational lensing in the 172 FRB events that have been analyzed. In a companion work [Leung, Kader+2022], we interpret the constraints on dark matter from this search.

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