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)1, sources of high-frequency gravitational waves (GWs)2 and likely production sites for heavy-element nucleosynthesis by means of rapid neutron capture (the r-process)3. Here we present observations of the exceptionally bright GRB 230307A. We show that GRB 230307A belongs to the class of long-duration GRBs associated with compact object mergers4–6 and contains a kilonova similar to AT2017gfo, associated with the GW merger GW170817 (refs. 7–12). We obtained James Webb Space Telescope (JWST) mid-infrared imaging and spectroscopy 29 and 61 days after the burst. The spectroscopy shows an emission line at 2.15 microns, which we interpret as tellurium (atomic mass A = 130) and a very red source, emitting most of its light in the mid-infrared owing to the production of lanthanides. These observations demonstrate that nucleosynthesis in GRBs can create r-process elements across a broad atomic mass range and play a central role in heavy-element nucleosynthesis across the Universe.

Levan, A., Gompertz, B., Salafia, O., Bulla, M., Burns, E., Hotokezaka, K., et al. (2024). Heavy-element production in a compact object merger observed by JWST. NATURE, 626(8000), 737-741 [10.1038/s41586-023-06759-1].

Heavy-element production in a compact object merger observed by JWST

Salafia O. S.;
2024

Abstract

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)1, sources of high-frequency gravitational waves (GWs)2 and likely production sites for heavy-element nucleosynthesis by means of rapid neutron capture (the r-process)3. Here we present observations of the exceptionally bright GRB 230307A. We show that GRB 230307A belongs to the class of long-duration GRBs associated with compact object mergers4–6 and contains a kilonova similar to AT2017gfo, associated with the GW merger GW170817 (refs. 7–12). We obtained James Webb Space Telescope (JWST) mid-infrared imaging and spectroscopy 29 and 61 days after the burst. The spectroscopy shows an emission line at 2.15 microns, which we interpret as tellurium (atomic mass A = 130) and a very red source, emitting most of its light in the mid-infrared owing to the production of lanthanides. These observations demonstrate that nucleosynthesis in GRBs can create r-process elements across a broad atomic mass range and play a central role in heavy-element nucleosynthesis across the Universe.
Articolo in rivista - Articolo scientifico
Gravitation; Neutrons; Radio Waves; Stars, Celestial; Telescopes
English
25-ott-2023
2024
626
8000
737
741
none
Levan, A., Gompertz, B., Salafia, O., Bulla, M., Burns, E., Hotokezaka, K., et al. (2024). Heavy-element production in a compact object merger observed by JWST. NATURE, 626(8000), 737-741 [10.1038/s41586-023-06759-1].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10281/526173
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