Skip to main navigation Skip to search Skip to main content

Constraining the delay time distribution of compact binary objects from the stochastic gravitational-wave background searches

Research output: Contribution to journalArticlepeer-review

Abstract

The initial separation of massive star binaries sets the timescale over which their compact remnants merge through the emission of gravitational waves. We show that the delay time distribution (DTD) of binary neutron stars or black holes can be inferred from the stochastic gravitational wave background (SGWB). If the DTD of a population is long, most of the mergers take place at low redshifts and the background would be rather quiet compared to a scenario in which the DTD is short leading to few individual detections at low redshift but a rather loud background. We show that different DTDs predict a factor of 5 difference in the magnitude of the gravitational wave background energy density (ΩGW) and have the dominant effect on ΩGW over other factors such as the mass function of the primary BH mass, p(m1), the maximum considered BH mass (Mmax), and the effective spin of the black hole (ceff ). A nondetection of such a background can rule out the short DTD scenario. We show that SGWB searches can rule out the short DTD scenario for the BBHs within about four years of observing time at advanced LIGO design sensitivity for a local merger rate of 30 Gpc-3yr-1 assuming p (m1 )∝ μ m1-1 , and Mmax = 50M⊙.

Original languageEnglish (US)
JournalAstrophysical Journal
Volume901
Issue number2
DOIs
StatePublished - Oct 1 2020
Externally publishedYes

All Science Journal Classification (ASJC) codes

  • Astronomy and Astrophysics
  • Space and Planetary Science

Keywords

  • Astrophysical black holes (98)
  • Gravitational wave astronomy (675)
  • Gravitational wave detectors (676)
  • Gravitational wave sources (677)
  • Gravitational waves (679)
  • Neutron stars (1108)

Fingerprint

Dive into the research topics of 'Constraining the delay time distribution of compact binary objects from the stochastic gravitational-wave background searches'. Together they form a unique fingerprint.

Cite this