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GW170817: Implications for the Stochastic Gravitational-Wave Background from Compact Binary Coalescences

  • LIGO Scientific Collaboration and Virgo Collaboration
  • California Institute of Technology
  • Louisiana State University
  • University of Salerno
  • National Institute for Nuclear Physics
  • University of Florida
  • Monash University
  • National Science Foundation
  • Université Savoie Mont Blanc
  • University of Sannio
  • Max Planck Institute for Gravitational Physics (Albert Einstein Institute)
  • University of Mississippi
  • University of Illinois at Urbana-Champaign
  • University of Cambridge
  • National Institute for Subatomic Physics
  • Instituto Nacional de Pesquisas Espaciais
  • Gran Sasso Science Institute
  • Inter-University Centre for Astronomy and Astrophysics India
  • Tata Institute of Fundamental Research
  • University of Wisconsin-Milwaukee
  • Leibniz University Hannover
  • University of Pisa
  • Australian National University
  • IN2P3-CNRS
  • University of the West of Scotland
  • IN2P3/CNRS
  • California State University Fullerton
  • European Gravitational Observatory
  • SPIC Science Foundation
  • University of Rome Tor Vergata
  • University of Hamburg
  • Cardiff University
  • Embry-Riddle Aeronautical University
  • Université Paris Cité

Research output: Contribution to journalArticlepeer-review

227 Scopus citations

Abstract

The LIGO Scientific and Virgo Collaborations have announced the event GW170817, the first detection of gravitational waves from the coalescence of two neutron stars. The merger rate of binary neutron stars estimated from this event suggests that distant, unresolvable binary neutron stars create a significant astrophysical stochastic gravitational-wave background. The binary neutron star component will add to the contribution from binary black holes, increasing the amplitude of the total astrophysical background relative to previous expectations. In the Advanced LIGO-Virgo frequency band most sensitive to stochastic backgrounds (near 25 Hz), we predict a total astrophysical background with amplitude ΩGW(f=25 Hz)=1.8-1.3+2.7×10-9 with 90% confidence, compared with ΩGW(f=25 Hz)=1.1-0.7+1.2×10-9 from binary black holes alone. Assuming the most probable rate for compact binary mergers, we find that the total background may be detectable with a signal-to-noise-ratio of 3 after 40 months of total observation time, based on the expected timeline for Advanced LIGO and Virgo to reach their design sensitivity.

Original languageEnglish
Article number091101
JournalPhysical Review Letters
Volume120
Issue number9
DOIs
StatePublished - Feb 28 2018

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