English

Electromagnetic Counterparts to Structured Jets from Gravitational Wave Detected Mergers

High Energy Astrophysical Phenomena 2017-10-18 v2 General Relativity and Quantum Cosmology

Abstract

We show the peak magnitude for orphan afterglows from the jets of gravitational wave (GW) detected black-hole/neutron star - neutron star (BH/NS-NS) mergers highly depends on the jet half-opening angle θj\theta_j. Short γ\gamma-ray bursts (GRB) with a homogeneous jet structure and θj>10\theta_j>10^\circ, the orphan afterglow viewed at the typical inclination for a GW detected event, 38^\circ, is brighter at optical frequencies than the comparable macronova emission. Structured jets, where the energetics and Lorentz factor Γ\Gamma vary with angle from the central axis, may have low-Γ\Gamma components where the prompt emission is suppressed; GW electromagnetic (EM) counterparts may reveal a population of failed-GRB orphan afterglows. Using a Monte Carlo method assuming a NS-NS detection limit we show the fraction of GW-EM counterparts from homogeneous, two-component, power-law structured, and Gaussian jets where the variable structure models include a wide low energy and Γ\Gamma component: for homogeneous jets, with a {θj=6\theta_j=6^\circ and typical short GRB parameters, we find {\it r}-band magnitude mr21m_r\leq21 counterparts for 13.6%\sim 13.6\% of GW detected mergers; where jet structure extends to a half-opening angle of 2525^\circ, two-component jets produce mr21m_r\leq21 counterparts in 30%\sim30\% of GW detected mergers; power-law structured jets result in 37%\sim37\%; and Gaussian jets with our parameters 13%\sim13\%.} We show the features in the lightcurves from orphan afterglows can be used to indicate the presence of extended structure.

Keywords

Cite

@article{arxiv.1706.03000,
  title  = {Electromagnetic Counterparts to Structured Jets from Gravitational Wave Detected Mergers},
  author = {Gavin P Lamb and Shiho Kobayashi},
  journal= {arXiv preprint arXiv:1706.03000},
  year   = {2017}
}

Comments

15 pages, 5 figures, accepted by MNRAS