Webinar
Astrophysics with multiple messengers: Photons and Gravitational-waves
Speaker: Kunal P Mooley (Caltech, California)
The detection of gravitational waves (GWs) and electromagnetic (EM) waves from binary neutron star merger GW170817 delivered a scientific bonanza in fields as wide-ranging as gravitational and nuclear physics, relativistic jets and cosmology, and has ushered a new era of multi-messenger astronomy. The tidally stripped material (outflows) was responsible for the EM radiation. The thermal (blackbody-like) kilonova component of this radiation, which arose from the r-process nucleosynthesis and lasted for a few weeks post-merger, gave insight into the mass and composition of the Newtonian ejecta. The non-thermal (synchrotron) afterglow component of the radiation, which was monitored extensively at radio wavelengths and lasted for more than three years, probed the energy and morphology of the relativistic ejecta (jet). Importantly, the compact radio source associated with GW170817 was seen to move in the sky, implying superluminal motion of the relativistic jet. The EM and GW (multi-messenger) data together gave precise constraints on the geometry of the progenitor binary system and facilitated a measurement of the Hubble constant. Although an unprecedented event, GW170817 represents only an initial exploration of a rich scientific landscape. The upcoming science runs of the LIGO, Virgo and KAGRA GW detectors (and especially after the addition of the LIGO-India detector in 2025) will deliver several binary neutron star and neutron star-black hole mergers every year, and the EM counterparts of these events will further our understanding of binary stellar evolution, physics of jet launching, r-process chemical enrichment, neutron star equation of state and cosmological expansion of the Universe. The advent of the third generation of GW detectors (like the Cosmic Explorer and Einstein Telescope, expected to operate in 2035+) and next-generation EM facilities (like the SKA, ngVLA, TMT, Daksha and Athena) will facilitate the studies of neutron star mergers substantially distant in space and time, when the Universe was much younger.