TY - JOUR
T1 - The Challenges Ahead for Multimessenger Analyses of Gravitational Waves and Kilonova
T2 - A Case Study on GW190425
AU - Raaijmakers, Geert
AU - Nissanke, Samaya
AU - Foucart, Francois
AU - Kasliwal, Mansi M.
AU - Bulla, Mattia
AU - Fernández, Rodrigo
AU - Henkel, Amelia
AU - Hinderer, Tanja
AU - Hotokezaka, Kenta
AU - Lukošiūtė, Kamile
AU - Venumadhav, Tejaswi
AU - Antier, Sarah
AU - Coughlin, Michael W.
AU - Dietrich, Tim
AU - Edwards, Thomas D.P.
N1 - Funding Information:
The results of research and this work was supported by Grant System of University of Zilina No. 1/2020. (8054),
Publisher Copyright:
© 2021. The American Astronomical Society. All rights reserved.
PY - 2021/12/1
Y1 - 2021/12/1
N2 - In recent years, there have been significant advances in multimessenger astronomy due to the discovery of the first, and so far only confirmed, gravitational wave event with a simultaneous electromagnetic (EM) counterpart, as well as improvements in numerical simulations, gravitational wave (GW) detectors, and transient astronomy. This has led to the exciting possibility of performing joint analyses of the GW and EM data, providing additional constraints on fundamental properties of the binary progenitor and merger remnant. Here, we present a new Bayesian framework that allows inference of these properties, while taking into account the systematic modeling uncertainties that arise when mapping from GW binary progenitor properties to photometric light curves. We extend the relative binning method presented in Zackay et al. to include extrinsic GW parameters for fast analysis of the GW signal. The focus of our EM framework is on light curves arising from r-process nucleosynthesis in the ejected material during and after merger, the so-called kilonova, and particularly on black hole-neutron star systems. As a case study, we examine the recent detection of GW190425, where the primary object is consistent with being either a black hole or a neutron star. We show quantitatively how improved mapping between binary progenitor and outflow properties, and/or an increase in EM data quantity and quality are required in order to break degeneracies in the fundamental source parameters.
AB - In recent years, there have been significant advances in multimessenger astronomy due to the discovery of the first, and so far only confirmed, gravitational wave event with a simultaneous electromagnetic (EM) counterpart, as well as improvements in numerical simulations, gravitational wave (GW) detectors, and transient astronomy. This has led to the exciting possibility of performing joint analyses of the GW and EM data, providing additional constraints on fundamental properties of the binary progenitor and merger remnant. Here, we present a new Bayesian framework that allows inference of these properties, while taking into account the systematic modeling uncertainties that arise when mapping from GW binary progenitor properties to photometric light curves. We extend the relative binning method presented in Zackay et al. to include extrinsic GW parameters for fast analysis of the GW signal. The focus of our EM framework is on light curves arising from r-process nucleosynthesis in the ejected material during and after merger, the so-called kilonova, and particularly on black hole-neutron star systems. As a case study, we examine the recent detection of GW190425, where the primary object is consistent with being either a black hole or a neutron star. We show quantitatively how improved mapping between binary progenitor and outflow properties, and/or an increase in EM data quantity and quality are required in order to break degeneracies in the fundamental source parameters.
UR - https://www.scopus.com/pages/publications/85121786923
UR - https://www.scopus.com/pages/publications/85121786923#tab=citedBy
U2 - 10.3847/1538-4357/ac222d
DO - 10.3847/1538-4357/ac222d
M3 - Article
AN - SCOPUS:85121786923
SN - 0004-637X
VL - 922
JO - Astrophysical Journal
JF - Astrophysical Journal
IS - 2
M1 - 269
ER -