English

Detection and characterization of spin-orbit resonances in the advanced gravitational wave detectors era

General Relativity and Quantum Cosmology 2018-10-24 v2

Abstract

In this paper, we test the performance of templates in detection and characterization of Spin-orbit resonant (SOR) binaries. We use precessing SEOBNRv3 waveforms as well as {\it four} numerical relativity (NR) waveforms to model GWs from SOR binaries and filter them through IMRPhenomD, SEOBNRv4 (non-precessing) and IMRPhenomPv2 (precessing) approximants. We find that IMRPhenomD and SEOBNRv4 recover only 70%\sim70\% of injections with fitting factor (FF) higher than 0.97 (or 90\% of injections with FF>0.9{\rm FF} >0.9).However, using the sky-maxed statistic, IMRPhenomPv2 performs magnificently better than their non-precessing counterparts with recovering 99%99\% of the injections with FFs higher than 0.97. Interestingly, injections with Δϕ=180\Delta \phi = 180^{\circ} have higher FFs (Δϕ\Delta \phi is the angle between the components of the black hole spins in the plane orthogonal to the orbital angular momentum) as compared to their Δϕ=0\Delta \phi =0^{\circ} and generic counterparts. This implies that we will have a slight observation bias towards Δϕ=180\Delta \phi=180^{\circ} SORs while using non-precessing templates for searches. All template approximants are able to recover most of the injected NR waveforms with FFs >0.95>0.95. For all the injections including NR, the error in estimating chirp mass remains below <10%<10\% with minimum error for Δϕ=180\Delta \phi = 180^{\circ} resonant binaries. The symmetric mass ratio can be estimated with errors below 15%15\%. The effective spin parameter χeff\chi_{\rm eff} is measured with maximum absolute error of 0.13. The in-plane spin parameter χp\chi_p is mostly underestimated indicating that a precessing signal will be recovered as a relatively less precessing signal. Based on our findings, we conclude that we not only need improvements in waveform models towards precession and non-quadrupole modes but also better search strategies for precessing GW signals.

Keywords

Cite

@article{arxiv.1803.07695,
  title  = {Detection and characterization of spin-orbit resonances in the advanced gravitational wave detectors era},
  author = {Chaitanya Afle and Anuradha Gupta and Bhooshan Gadre and Prayush Kumar and Nick Demos and Geoffrey Lovelace and Han Gil Choi and Hyung Mok Lee and Sanjit Mitra and Michael Boyle and Daniel A. Hemberger and Lawrence E. Kidder and Harald P. Pfeiffer and Mark A. Scheel and Bela Szilagyi},
  journal= {arXiv preprint arXiv:1803.07695},
  year   = {2018}
}

Comments

27 pages, 15 figures. Abstract shortened due to word limit