English

Gravitational wave background from Population III binary black holes consistent with cosmic reionization

Astrophysics of Galaxies 2016-07-27 v2 Cosmology and Nongalactic Astrophysics

Abstract

The recent discovery of the gravitational wave source GW150914 has revealed a coalescing binary black hole (BBH) with masses of 30 M\sim 30~M_\odot. Previous proposals for the origin of such a massive binary include Population III (PopIII) stars. PopIII stars are efficient producers of BBHs and of a gravitational wave background (GWB) in the 1010010-100 Hz band, and also of ionizing radiation in the early Universe. We quantify the relation between the amplitude of the GWB (Ωgw\Omega_{\rm gw}) and the electron scattering optical depth (τe\tau_{\rm e}), produced by PopIII stars, assuming that fesc10%f_{\rm esc}\approx 10\% of their ionizing radiation escapes into the intergalactic medium. We find that PopIII stars would produce a GWB that is detectable by the future O5 LIGO/Virgo if τe0.07\tau_{\rm e} \gtrsim 0.07, consistent with the recent Planck measurement of τe=0.055±0.09\tau_e=0.055 \pm 0.09. Moreover, the spectral index of the background from PopIII BBHs becomes as small as dlnΩgw/dlnf0.3{\rm d}\ln \Omega_{\rm gw}/{\rm d}\ln f\lesssim 0.3 at f30f \gtrsim 30 Hz, which is significantly flatter than the value 2/3\sim 2/3 generically produced by lower-redshift and less-massive BBHs. A detection of the unique flattening at such low frequencies by the O5 LIGO/Virgo will indicate the existence of a high-chirp mass, high-redshift BBH population, which is consistent with the PopIII origin. A precise characterization of the spectral shape near 305030-50 Hz by the Einstein Telescope could also constrain the PopIII initial mass function and star formation rate.

Keywords

Cite

@article{arxiv.1603.06921,
  title  = {Gravitational wave background from Population III binary black holes consistent with cosmic reionization},
  author = {Kohei Inayoshi and Kazumi Kashiyama and Eli Visbal and Zoltan Haiman},
  journal= {arXiv preprint arXiv:1603.06921},
  year   = {2016}
}

Comments

6 pages, 5 figures, accepted for publication in MNRAS, discussions and a figure added

R2 v1 2026-06-22T13:16:25.721Z