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Signatures of r-process elements in kilonova spectra

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arxiv 2103.15284 v1 pith:HKAAAKI4 submitted 2021-03-29 astro-ph.HE astro-ph.SR

classification astro-ph.HEastro-ph.SR
keywords at2017gfoelementsgw170817lineejectafractionkilonovalines
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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 trace of individual elements has been identified except for strontium. In this paper, we perform systematic calculations of line strength for bound-bound transitions and radiative transfer simulations in NS merger ejecta toward element identification in kilonova spectra. We find that Sr II triplet lines appear in the spectrum of a lanthanide-poor model, which is consistent with the absorption feature observed in GW170817/AT2017gfo. The synthetic spectrum also shows the strong Ca II triplet lines. This is natural because Ca and Sr are co-produced in the material with relatively high electron fraction and their ions have similar atomic structures with only one s-electron in the outermost shell. The line strength, however, highly depends on the abundance distribution and temperature in the ejecta. For our lanthanide-rich model, the spectra show the features of doubly ionized heavy elements, such as Ce, Tb and Th. Our results suggest that the line forming region of GW170817/AT2017gfo was lanthanide-poor. We show that the Sr II and Ca II lines can be used as a probe of physical conditions in NS merger ejecta. Absence of the Ca II line features in GW170817/AT2017gfo implies that the Ca/Sr ratio is < 0.002 in mass fraction, which is consistent with nucleosynthesis for electron fraction >= 0.40 and entropy per nucleon (in units of Boltzmann constant) >= 25.

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Cited by 3 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. 3D Binary Neutron Star Merger Ejecta Evolution up to Seconds Timescale: Dynamics, Element Distribution, and Light Curves

    astro-ph.HE 2026-08 conditional novelty 6.0 of 10

    Long 3D simulations of neutron star merger ejecta show radioactive heating keeps reshaping heavy-element outflows, and 3D light curves are dimmer but no closer to AT2017gfo than 2D ones.

  2. Open-source library for performance-portable neutrino reaction rates: Application to neutron star mergers

    astro-ph.HE 2024-12 conditional novelty 6.0 of 10

    A new open-source neutrino-rate library shows that inelastic neutrino-electron/positron scattering and nucleon decay reactions materially change neutrino opacities and decoupling surfaces in neutron star merger conditions.

  3. 3D Non-LTE radiation transfer: theory and applications to stars, exoplanets, and kilonovae

    astro-ph.SR 2025-11 conditional novelty 2.0 of 10

    A field review of 3D non-LTE radiative transfer argues that 1D LTE treatments of stellar, exoplanet, and kilonova spectra carry systematic abundance biases that 3D NLTE modeling can now remove.

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