English

The potential role of binary neutron star merger afterglows in multimessenger cosmology

High Energy Astrophysical Phenomena 2022-01-27 v2 Cosmology and Nongalactic Astrophysics General Relativity and Quantum Cosmology

Abstract

Binary neutron star mergers offer a new and independent means of measuring the Hubble constant H0H_0 by combining the gravitational-wave inferred source luminosity distance with its redshift obtained from electromagnetic follow-up. This method is limited by intrinsic degeneracy between the system distance and orbital inclination in the gravitational-wave signal. Observing the afterglow counterpart to a merger can further constrain the inclination angle, allowing this degeneracy to be partially lifted and improving the measurement of H0H_0. In the case of the binary neutron star merger GW170817, afterglow light-curve and imagery modeling thus allowed to improve the H0H_0 measurement by a factor of 3. However, systematic access to afterglow data is far from guaranteed. In fact, though each one allows a leap in H0H_0 precision, these afterglow counterparts should prove rare in forthcoming multimessenger campaigns. We combine models for emission and detection of gravitational-wave and electromagnetic radiation from binary neutron star mergers with realistic population models and estimates for afterglow inclination angle constraints. Using these models, we quantify how fast H0H_0 will be narrowed-down by successive multimessenger events with and without the afterglow. We find that, because of its rareness and though it greatly refines angle estimates, the afterglow counterpart should not significantly contribute to the measurement of H0H_0 in the long run.

Keywords

Cite

@article{arxiv.2012.12836,
  title  = {The potential role of binary neutron star merger afterglows in multimessenger cosmology},
  author = {S. Mastrogiovanni and R. Duque and E. Chassande-Mottin and F. Daigne and R. Mochkovitch},
  journal= {arXiv preprint arXiv:2012.12836},
  year   = {2022}
}