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Analysis of the JWST spectra of the kilonova AT 2023vfi accompanying GRB 230307A

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arxiv 2408.11093 v2 pith:FZYRMQ7D submitted 2024-08-20 astro-ph.HE

classification astro-ph.HE
keywords observedemissioni-iiilinekilonovaer-processspectraanalysis
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abstract

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 (JWST) spectra obtained +29 and +61 days post-merger for AT 2023vfi (the kilonova associated with GRB 230307A). After re-reducing and photometrically flux-calibrating the data, we empirically model the observed X-ray to mid-infrared continua with a power law and a blackbody, to replicate the non-thermal afterglow and apparent thermal continuum $\gtrsim 2 \, \mu$m. We fit Gaussians to the apparent emission features, obtaining line centroids of $20218_{-38}^{+37}$, $21874 \pm 89$ and $44168_{-152}^{+153}$\,\AA, and velocity widths spanning $0.057 - 0.110$\,c. These line centroid constraints facilitated a detailed forbidden line identification search, from which we shortlist a number of r-process species spanning all three r-process peaks. We rule out Ba II and Ra II as candidates and propose Te I-III, Er I-III and W III as the most promising ions for further investigation, as they plausibly produce multiple emission features from one (W III) or multiple (Te I-III, Er I-III) ion stages. We compare to the spectra of AT 2017gfo, which also exhibit prominent emission at $\sim 2.1 \, \mu$m, and conclude that [Te III] $\lambda$21050 remains the most plausible cause of the observed $\sim 2.1 \, \mu$m emission in both kilonovae. However, the observed line centroids are not consistent between both objects, and they are significantly offset from [Te III] $\lambda$21050. The next strongest [Te III] transition at 29290\,\AA\ is not observed, and we quantify its detectability. Further study is required, with particular emphasis on expanding the available atomic data to enable quantitative non-LTE spectral modelling.

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Cited by 4 Pith papers

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

  1. A set of distinctive properties ruling the prompt emission of GRB 230307A and other long {\gamma}-ray bursts from compact object mergers

    astro-ph.HE 2025-09 conditional novelty 6.5 of 10

    GRB 230307A and several other long merger-candidate bursts show exponential evolution of pulse intensity, waiting time, duration, and spectral peak energy, contrasting with supernova-associated long bursts.

  2. Gamma-ray burst progenitors revisited

    astro-ph.HE 2026-07 conditional novelty 6.0 of 10

    About 30–40% of long gamma-ray bursts at z<0.3 lack supernova emission and likely arise from compact object mergers, at rates comparable to short GRBs.

  3. Late-time emission-line profiles from kilonova models

    astro-ph.HE 2026-07 conditional novelty 6.0 of 10

    Late-time optically-thin kilonova line profiles computed from 2D long-term merger ejecta are complex, orientation-dependent and broadened by r-process heating, encoding ejecta structure.

  4. Luminosity predictions for the first three ionisation stages of W, Pt and Au to probe potential sources of emission in kilonova

    physics.atom-ph 2024-11 conditional novelty 6.0 of 10

    R-matrix atomic data support W III as the source of the 4.5 μm kilonova emission, yielding W III masses near 1.7e-4 solar masses for AT2017gfo and 9.4e-4 solar masses for AT2023vfi.

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