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The kilonova emission observed following the binary neutron star merger event GW170817 provided the first direct evidence for the synthesis of heavy nuclei through the r-process. The late-time transition in the spectral energy distribution…

High Energy Astrophysical Phenomena · Physics 2019-02-14 Meng-Ru Wu , Jennifer Barnes , Gabriel Martinez-Pinedo , Brian D. Metzger

Kilonovae are a rare class of astrophysical transients powered by the radioactive decay of nuclei heavier than iron, synthesized in the merger of two compact objects. Over the first few days, the kilonova evolution is dominated by a large…

The merger of two neutron stars is predicted to give rise to three major detectable phenomena: a short burst of gamma-rays, a gravitational wave signal, and a transient optical/near-infrared source powered by the synthesis of large amounts…

The discovery of the kilonova (KN) AT 2017gfo, accompanying the gravitational wave event GW170817, provides crucial insight into the synthesis of heavy elements during binary neutron star (BNS) mergers. Following this landmark event,…

High Energy Astrophysical Phenomena · Physics 2025-04-22 Zhengyan Liu , Ji-an Jiang , Wen Zhao

The mergers of binary compact objects such as neutron stars and black holes are of central interest to several areas of astrophysics, including as the progenitors of gamma-ray bursts (GRBs), sources of high-frequency gravitational waves and…

The cosmic origin of the elements heavier than iron has long been uncertain. Theoretical modelling shows that the matter that is expelled in the violent merger of two neutron stars can assemble into heavy elements such as gold and platinum…

High Energy Astrophysical Phenomena · Physics 2017-10-17 Daniel Kasen , Brian Metzger , Jennifer Barnes , Eliot Quataert , Enrico Ramirez-Ruiz

Recent detections of kilonova-like emission following long-duration gamma-ray bursts GRB211211A and GRB230307A have been interpreted as originating from the merger of two neutron stars. In this work, we demonstrate that these observations…

High Energy Astrophysical Phenomena · Physics 2026-04-28 Marko Ristić , Brandon L. Barker , Samuel Cupp , Axel Gross , Nicole Lloyd-Ronning , Oleg Korobkin , Jonah M. Miller , Matthew R. Mumpower

Binary neutron star mergers are the first confirmed site of element nucleosynthesis by the rapid neutron-capture process (r-process). The kilonova AT2017gfo is the only electromagnetic counterpart of a neutron star merger spectroscopically…

High Energy Astrophysical Phenomena · Physics 2023-11-28 J. H. Gillanders , S. A. Sim , S. J. Smartt , S. Goriely , A. Bauswein

The kilonova (KN) associated with the binary neutron star (BNS) merger GW170817 is the only known electromagnetic counterpart to a gravitational wave source. Here we produce a sequence of radiative transfer models (using $\textsc{tardis}$)…

High Energy Astrophysical Phenomena · Physics 2022-05-25 J. H. Gillanders , S. J. Smartt , S. A. Sim , A. Bauswein , S. Goriely

The merger of two neutron stars has been predicted to produce an optical-infrared transient (lasting a few days) known as a 'kilonova', powered by the radioactive decay of neutron-rich species synthesized in the merger. Evidence that short…

The coalescence of double neutron star (NS-NS) and black hole (BH)-NS binaries are prime sources of gravitational waves (GW) for Advanced LIGO/Virgo and future ground-based detectors. Neutron-rich matter released from such events undergo…

High Energy Astrophysical Phenomena · Physics 2020-01-08 Brian D. Metzger

Half of all the elements in the universe heavier than iron were created by rapid neutron capture. The theory for this astrophysical `$r$-process' was worked out six decades ago and requires an enormous neutron flux to make the bulk of these…

The kilonova associated with the neutron star merger GW170817 provides us with several hints to elucidate the nature of the r-process in the universe. In this article, we inspect the radioactive isotopes that powered the kilonova emission,…

High Energy Astrophysical Phenomena · Physics 2019-11-06 Shinya Wanajo

As LIGO-Virgo-KAGRA enters its fourth observing run, a new opportunity to search for electromagnetic counterparts of compact object mergers will also begin. The light curves and spectra from the first "kilonova" associated with a binary…

High Energy Astrophysical Phenomena · Physics 2023-07-05 Erika M. Holmbeck , Jennifer Barnes , Kelsey A. Lund , Trevor M. Sprouse , G. C. McLaughlin , Matthew R. Mumpower

Revealing the temporal evolution of individual heavy elements synthesized in the merger ejecta from binary neutron star mergers not only improves our understanding of the origin of heavy elements beyond iron but also clarifies the energy…

High Energy Astrophysical Phenomena · Physics 2023-11-15 Meng-Hua Chen , En-Wei Liang

Kilonova spectra provide us with the direct information of r-process nucleosynthesis in neutron star mergers. In this paper, we study the signatures of elements beyond the third r-process peak expected to be produced in neutron-rich ejecta…

High Energy Astrophysical Phenomena · Physics 2024-11-27 Nanae Domoto , Shinya Wanajo , Masaomi Tanaka , Daiji Kato , Kenta Hotokezaka

The observation of the kilonova AT2017gfo and investigations of its light curves and spectra confirmed that neutron star mergers are sites of r-process nucleosynthesis. However, the identification of elements responsible for the spectral…

Spectroscopic observations of the kilonova AT 2017gfo provide a unique opportunity to identify signatures from individual heavy elements freshly synthesised via the r-process, the nucleosynthetic channel responsible for producing $\sim$half…

High Energy Astrophysical Phenomena · Physics 2026-05-13 J. H. Gillanders , A. Flors , R. Ferreira da Silva

AAssociation of GW170817/GRB170817A/AT2017gfo provides the first direct evidence for neutron star mergers as significant sources of $r$-process nucleosynthesis. A gamma-ray transient (GRT) would be powered by the radioactive decay of the…

High Energy Astrophysical Phenomena · Physics 2022-06-22 Meng-Hua Chen , Rui-Chong Hu , En-Wei Liang
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