Abstract
There has recently been renewed interest in the possibility that the dark matter in the Universe consists of primordial black holes (PBHs). Current observational constraints leave only a few PBH mass ranges for this possibility. One of them is around 10-12 M. If PBHs with this mass are formed due to an enhanced scalar-perturbation amplitude, their formation is inevitably accompanied by the generation of gravitational waves (GWs) with frequency peaked in the mHz range, precisely around the maximum sensitivity of the LISA mission. We show that, if these primordial black holes are the dark matter, LISA will be able to detect the associated GW power spectrum. Although the GW source signal is intrinsically non-Gaussian, the signal measured by LISA is a sum of the signal from a large number of independent sources suppressing the non-Gaussianity at detection to an unobservable level. We also discuss the effect of the GW propagation in the perturbed Universe. PBH dark matter generically leads to a detectable, purely isotropic, Gaussian and unpolarized GW signal, a prediction that is testable with LISA.
| Original language | English (US) |
|---|---|
| Article number | 211301 |
| Journal | Physical review letters |
| Volume | 122 |
| Issue number | 21 |
| DOIs | |
| State | Published - May 29 2019 |
Bibliographical note
Funding Information:We warmly thank the anonymous referee for asking about the propagation effect. We thank A. Katz for illuminating discussions on the microlensing and neutron star constraints on the PBH abundance and D. Racco for many discussions. We thank C. R. Contaldi for discussions on the GW propagation and M. Hindmarsh for discussion of Gaussianity. N. B. acknowledges partial financial support by the ASI/INAF Agreement I/072/09/0 for the Planck LFI Activity of Phase E2. He also acknowledges financial support by ASI Grant No. 2016-24-H.0. A. R. is supported by the Swiss National Science Foundation (SNSF), project The Non-Gaussian Universe and Cosmological Symmetries, Project No. 200020-178787. A. L. is supported by the European Research Council under the European Union’s Seventh Framework Programme (FP/2007-2013) / ERC Grant Agreement No. [616170].
Publisher Copyright:
© 2019 American Physical Society.
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