Hubble without the Hubble: cosmology using advanced gravitational-wave detectors alone
arXiv:1108.5161 · doi:10.1103/PhysRevD.85.023535
Abstract
We investigate a novel approach to measuring the Hubble constant using gravitational-wave (GW) signals from compact binaries by exploiting the narrowness of the distribution of masses of the underlying neutron-star population. Gravitational-wave observations with a network of detectors will permit a direct, independent measurement of the distance to the source systems. If the redshift of the source is known, these inspiraling double-neutron-star binary systems can be used as standard sirens to extract cosmological information. Unfortunately, the redshift and the system chirp mass are degenerate in GW observations. Thus, most previous work has assumed that the source redshift is obtained from electromagnetic counterparts. In this paper, we explore what we can learn about the background cosmology and the mass distribution of neutron stars from the set of neutron-star (NS) mergers detected by such a network. We use a Bayesian formalism to analyze catalogs of NS-NS inspiral detections. We find that it is possible to constrain the Hubble constant, H_0, and the parameters of the NS mass function using gravitational-wave data alone, without relying on electromagnetic counterparts. Under reasonable assumptions, we will be able to determine H_0 to +/- 10% using ~100 observations, provided the Gaussian half-width of the underlying double NS mass distribution is less than 0.04 solar masses. The expected precision depends linearly on the intrinsic width of the NS mass function, but has only a weak dependence on H_0 near the default parameter values. Finally, we consider what happens if, for some fraction of our data catalog, we have an electromagnetically measured redshift. The detection, and cataloging, of these compact-object mergers will allow precision astronomy, and provide a determination of H_0 which is independent of the local distance scale.
22 pages, 8 figures, 3 tables. Minor changes, including formatting, to reflect published version. Some references updated and corrected
References in corpus (14)
- LIGO: The Laser Interferometer Gravitational-Wave Observatory
- The missing link: Merging neutron stars naturally produce jet-like structures and can power short Gamma-Ray Bursts
- Determination of Dark Energy by the Einstein Telescope: Comparing with CMB, BAO and SNIa Observations
- Precision of Hubble constant derived using black hole binary absolute distances and statistical redshift information
- Host Galaxies Catalog Used in LIGO Searches for Compact Binary Coalescence Events
- Jet Breaks in Short Gamma-Ray Bursts. II: The Collimated Afterglow of GRB 051221A
- Reconstructing the massive black hole cosmic history through gravitational waves
- Calibration of the LIGO Gravitational Wave Detectors in the Fifth Science Run
- Gravitational-Wave Astronomy with Inspiral Signals of Spinning Compact-Object Binaries
- LISA extreme-mass-ratio inspiral events as probes of the black hole mass function
- On the mass distribution of neutron stars
- Localizing compact binary inspirals on the sky using ground-based gravitational wave interferometers
- Estimation of compact binary coalescense rates from short gamma-ray burst redshift measurements
- Detailed comparison of LIGO and Virgo Inspiral Pipelines in Preparation for a Joint Search
Cited by in corpus (5)
- The Gravitational-Wave Physics
- Host redshifts from gravitational-wave observations of binary neutron star mergers
- The population of merging compact binaries inferred using gravitational waves through GWTC-3
- Unbiased likelihood-free inference of the Hubble constant from light standard sirens
- Matters of Gravity, The Newsletter of the Division of Gravitational Physics of the American Physical Society, Volume 48, December 2016