English

Inference on gravitational waves from coalescences of stellar-mass compact objects and intermediate-mass black holes

High Energy Astrophysical Phenomena 2016-06-06 v1 General Relativity and Quantum Cosmology

Abstract

Gravitational waves from coalescences of neutron stars or stellar-mass black holes into intermediate-mass black holes (IMBHs) of 100\gtrsim 100 solar masses represent one of the exciting possible sources for advanced gravitational-wave detectors. These sources can provide definitive evidence for the existence of IMBHs, probe globular-cluster dynamics, and potentially serve as tests of general relativity. We analyse the accuracy with which we can measure the masses and spins of the IMBH and its companion in intermediate-mass ratio coalescences. We find that we can identify an IMBH with a mass above 100 M100 ~ M_\odot with 95%95\% confidence provided the massive body exceeds 130 M130 ~ M_\odot. For source masses above 200 M\sim200 ~ M_\odot, the best measured parameter is the frequency of the quasi-normal ringdown. Consequently, the total mass is measured better than the chirp mass for massive binaries, but the total mass is still partly degenerate with spin, which cannot be accurately measured. Low-frequency detector sensitivity is particularly important for massive sources, since sensitivity to the inspiral phase is critical for measuring the mass of the stellar-mass companion. We show that we can accurately infer source parameters for cosmologically redshifted signals by applying appropriate corrections. We investigate the impact of uncertainty in the model gravitational waveforms and conclude that our main results are likely robust to systematics.

Keywords

Cite

@article{arxiv.1511.01431,
  title  = {Inference on gravitational waves from coalescences of stellar-mass compact objects and intermediate-mass black holes},
  author = {Carl-Johan Haster and Zhilu Wang and Christopher P. L. Berry and Simon Stevenson and John Veitch and Ilya Mandel},
  journal= {arXiv preprint arXiv:1511.01431},
  year   = {2016}
}

Comments

9 pages, 11 figures