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The neutron star merger is a promising site of heavy element production. By producing heavy elements, the neutron star merger gives rise to a thermal transient called a kilonova. Studying kilonova spectra enables us to quantify the heavy…

High Energy Astrophysical Phenomena · Physics 2025-03-03 Laima Kitovienė , Gediminas Gaigalas , Pavel Rynkun , Nanae Domoto , Masaomi Tanaka , Daiji Kato

The observations of GW170817/AT2017gfo have provided us with evidence that binary neutron star mergers are sites of $r$-process nucleosynthesis. However, the observed signatures in the spectra of GW170817/AT2017gfo have not been fully…

High Energy Astrophysical Phenomena · Physics 2022-08-25 Nanae Domoto , Masaomi Tanaka , Daiji Kato , Kyohei Kawaguchi , Kenta Hotokezaka , Shinya Wanajo

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…

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

Observations of the kilonova from a neutron star merger event GW170817 opened a way to directly study r-process nucleosynthesis by neutron star mergers. It is, however, challenging to identify the individual elements in the kilonova spectra…

Binary neutron star (NS) mergers have been expected to synthesize r-process elements and emit radioactively powered radiation, called kilonova. Although r-process nucleosynthesis was confirmed by the observations of GW170817/AT2017gfo, no…

High Energy Astrophysical Phenomena · Physics 2021-06-02 Nanae Domoto , Masaomi Tanaka , Shinya Wanajo , Kyohei Kawaguchi

Kilonovae are a novel class of astrophysical transients, and the only observationally-confirmed site of rapid neutron capture nucleosynthesis (the r-process) in the Universe. To date, only a handful of kilonovae have been detected, with…

Kilonovae are likely a key site of heavy r-process element production in the Universe, and their optical/infrared spectra contain insights into both the properties of the ejecta and the conditions of the r-process. However, the event…

High Energy Astrophysical Phenomena · Physics 2024-01-19 N. M. Ford , Nicholas Vieira , John J. Ruan , Daryl Haggard

The late-time spectra of the kilonova AT 2017gfo associated with GW170817 exhibit a strong emission line feature at $2.1\,{\rm \mu m}$. The line structure develops with time and there is no apparent blue-shifted absorption feature in the…

High Energy Astrophysical Phenomena · Physics 2023-07-04 Kenta Hotokezaka , Masaomi Tanaka , Daiji Kato , Gediminas Gaigalas

A central question regarding neutron star mergers is whether they are able to produce all the r-process elements, from first to third peak. The high abundances of first-peak elements (atomic number $Z \sim 31-40$) in the solar composition…

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

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…

Ejected material from neutron star mergers give rise to electromagnetic emission powered by radioactive decays of r-process nuclei, which is so called kilonova or macronova. While properties of the emission are largely affected by opacities…

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…

Infrared emission lines arising from transitions between fine structure levels of heavy elements are expected to produce kilonova nebular emission. For the kilonova in GW170817, strong emission at 4.5 ${\rm \mu m}$ at late times was…

High Energy Astrophysical Phenomena · Physics 2022-08-03 Kenta Hotokezaka , Masaomi Tanaka , Daiji Kato , Gediminas Gaigalas

The detailed observations of GW170817 proved for the first time directly that neutron star mergers are a major production site of heavy elements. The observations could be fit by a number of simulations that qualitatively agree, but can…

Kilonovae are key to advancing our understanding of r-process nucleosynthesis. To date, only two kilonovae have been spectroscopically observed, AT 2017gfo and AT 2023vfi. Here, we present an analysis of the James Webb Space Telescope…

High Energy Astrophysical Phenomena · Physics 2025-02-26 J. H. Gillanders , S. J. Smartt

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

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
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