In 2015, the Advanced Laser Interferometer Gravitational-wave Observatory (LIGO) and Advanced Virgo began observing the Universe in a revolutionary way. Gravitational waves from cosmic sources were detected for the first time, confirming their existence predicted almost one century before, and also directly revealing the existence of black holes in binary systems and charac- terizing their properties. In 2017, a new revolution was achieved with the first observation of a binary neutron star merger, GW170817, and its associated electromagnetic emission. The combination of the information from gravitational-wave and electromagnetic radiation produced a wealth of results, still growing, spectacularly demonstrating the power of the newly born field of gravitational-wave Multi Messenger Astrophysics. We discuss the discovery of GW170817 in the context of the achievements it brought to Gamma-Ray Burst astrophysics, and we also provide a few examples of advancements in fundamental physics and cosmology. The detection rates of binary neutron star mergers expected in the next decade for third generation gravitational-wave interferometers will open the new perspective of a statistical approach to the study of these multi-messenger sources.

Neutron Star Binary Mergers: The Legacy of GW170817 and Future Prospects / Stratta, Giulia; Pannarale, Francesco. - In: UNIVERSE. - ISSN 2218-1997. - 8:9(2022). [10.3390/universe8090459]

Neutron Star Binary Mergers: The Legacy of GW170817 and Future Prospects

Giulia Stratta;Francesco Pannarale
2022

Abstract

In 2015, the Advanced Laser Interferometer Gravitational-wave Observatory (LIGO) and Advanced Virgo began observing the Universe in a revolutionary way. Gravitational waves from cosmic sources were detected for the first time, confirming their existence predicted almost one century before, and also directly revealing the existence of black holes in binary systems and charac- terizing their properties. In 2017, a new revolution was achieved with the first observation of a binary neutron star merger, GW170817, and its associated electromagnetic emission. The combination of the information from gravitational-wave and electromagnetic radiation produced a wealth of results, still growing, spectacularly demonstrating the power of the newly born field of gravitational-wave Multi Messenger Astrophysics. We discuss the discovery of GW170817 in the context of the achievements it brought to Gamma-Ray Burst astrophysics, and we also provide a few examples of advancements in fundamental physics and cosmology. The detection rates of binary neutron star mergers expected in the next decade for third generation gravitational-wave interferometers will open the new perspective of a statistical approach to the study of these multi-messenger sources.
2022
gravitational wave; gamma-ray burst; GW170817
01 Pubblicazione su rivista::01a Articolo in rivista
Neutron Star Binary Mergers: The Legacy of GW170817 and Future Prospects / Stratta, Giulia; Pannarale, Francesco. - In: UNIVERSE. - ISSN 2218-1997. - 8:9(2022). [10.3390/universe8090459]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1696376
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