Constraining Primordial Black Holes using Fast Radio Burst Gravitational-Lens Interferometry with CHIME/FRB
Abstract
Fast radio bursts (FRBs) represent an exciting frontier in the study of gravitational lensing, due to their brightness, extragalactic nature, and the compact, coherent characteristics of their emission. In a companion work [Kader, Leung+2022], we use a novel interferometric method to search for gravitationally lensed FRBs in the time domain using bursts detected by CHIME/FRB. There, we dechannelize and autocorrelate electric field data at a time resolution of 1.25 ns. This enables a search for FRBs whose emission is coherently deflected by gravitational lensing around a foreground compact object such as a primordial black hole (PBH). Here, we use our non-detection of lensed FRBs to place novel constraints on the PBH abundance outside the Local Group. We use a novel two-screen model to take into account decoherence from scattering screens in our constraints. Our constraints are subject to a single astrophysical model parameter -- the effective distance between an FRB source and the scattering screen, for which we adopt a fiducial distance of 1 parsec. We find that coherent FRB lensing is a sensitive probe of sub-solar mass compact objects. Having observed no lenses in bursts from independent sightlines through the cosmic web, we constrain the fraction of dark matter made of compact objects, such as PBHs, to be , if their masses are .
Keywords
Cite
@article{arxiv.2204.06001,
title = {Constraining Primordial Black Holes using Fast Radio Burst Gravitational-Lens Interferometry with CHIME/FRB},
author = {Calvin Leung and Zarif Kader and Kiyoshi W. Masui and Matt Dobbs and Daniele Michilli and Juan Mena-Parra and Ryan Mckinven and Cherry Ng and Kevin Bandura and Mohit Bhardwaj and Charanjot Brar and Tomas Cassanelli and Pragya Chawla and Fengqiu Adam Dong and Deborah Good and Victoria Kaspi and Adam E. Lanman and Hsiu-Hsien Lin and Bradley W. Meyers and Aaron B. Pearlman and Ue-Li Pen and Emily Petroff and Ziggy Pleunis and Masoud Rafiei-Ravandi and Mubdi Rahman and Pranav Sanghavi and Paul Scholz and Kaitlyn Shin and Seth Siegel and Kendrick M. Smith and Ingrid Stairs and Shriharsh P. Tendulkar and Keith Vanderlinde},
journal= {arXiv preprint arXiv:2204.06001},
year = {2022}
}
Comments
20 pages, 5 figures