English

Testing Super-Heavy Dark Matter from Primordial Black Holes with Gravitational Waves

High Energy Physics - Phenomenology 2022-06-14 v2 Cosmology and Nongalactic Astrophysics

Abstract

Ultra-light primordial black holes with masses MBH<109M_{BH}<10^9~g evaporate before big-bang nucleosynthesis producing all matter fields, including dark matter, in particular super-heavy dark matter: MDM1010M_{DM}\gtrsim 10^{10} GeV. If the dark matter gets its mass via U(1)U(1) symmetry-breaking, the phase transition that gives a mass to the dark matter also produces cosmic strings which radiate gravitational waves. Because the symmetry-breaking scale ΛCS\Lambda_{CS} is of the same order as MDMM_{DM}, the gravitational waves radiated by the cosmic strings have a large enough amplitude to be detectable across all frequencies accessible with current and planned experimental facilities. Moreover, an epoch of early primordial black hole domination introduces a unique spectral break in the gravitational wave spectrum whose frequency is related to the super-heavy dark matter mass. Hence, the features of a stochastic background of primordial gravitational waves could indicate that super-heavy dark matter originated from primordial black holes. In this perspective, the recent finding of a stochastic common-spectrum process across many pulsars by two nano-frequency pulsar timing arrays would fix the dark matter mass to be 3×1013 GeVMDM1014 GeV3\times 10^{13}~\text{GeV} \lesssim M_{DM} \lesssim 10^{14}~\text{GeV}. The (non-)detection of a spectral break at 0.2 Hzf0.4 Hz0.2~\text{Hz} \lesssim f_* \lesssim 0.4~\text{Hz} would (exclude) substantiate this interpretation of the signal.

Keywords

Cite

@article{arxiv.2112.04836,
  title  = {Testing Super-Heavy Dark Matter from Primordial Black Holes with Gravitational Waves},
  author = {Rome Samanta and Federico R. Urban},
  journal= {arXiv preprint arXiv:2112.04836},
  year   = {2022}
}

Comments

29 pages, 7 figures, matches with the JCAP version