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September 21, 2025Monthly Notices of the Royal Astronomical Society0 citationsOpen Access

GRB 241105A: A test case for GRB classification and rapid r-process nucleosynthesis channels

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DDDimple DimpleBGB. P. GompertzALA. J. Levan

Key Points

  • Observations indicate GRB 241105A may originate from a compact binary merger, impacting heavy element formation.
  • The burst's initial spike duration of ∼1.5 seconds and weak emission lasting about 64 seconds signal its unique classification.
  • Observations conducted using the James Webb Space Telescope focused on potential supernova counterparts and host galaxy properties.
  • Findings suggest active star formation and low metallicity, supporting a collapsar origin while not ruling out merger hypotheses.

Abstract

Abstract Gamma-ray bursts (GRBs) offer a powerful window to probe the progenitor systems responsible for the formation of heavy elements through the rapid neutron capture (r-) process, thanks to their exceptional luminosity, which allows them to be observed across vast cosmic distances. GRB 241105A, observed at a redshift of z = 2.681, features a short initial spike (∼1.5 s) and a prolonged weak emission lasting about 64 s, positioning it as a candidate for a compact binary merger and potentially marking it as the most distant merger-driven GRB observed to date. However, the emerging ambiguity in GRB classification necessitates further investigation into the burst’s true nature. Prompt emission analyses, such as hardness ratio, spectral lag, and minimum variability timescales, yield mixed classifications, while machine learning-based clustering places GRB 241105A near both long-duration mergers and collapsar GRBs. We conducted observations using the James Webb Space Telescope (JWST) to search for a potential supernova counterpart. Although no conclusive evidence was found for a supernova, the host galaxy’s properties derived from the JWST observations suggest active star formation with low metallicity, and a sub-kpc offset of the afterglow from the host, which appears broadly consistent with a collapsar origin. Nevertheless, a compact binary merger origin cannot be ruled out, as the burst may plausibly arise from a fast progenitor channel. This would have important implications for heavy element enrichment in the early Universe.

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Cite This Study

Dimple et al. (2025) studied this question.

synapsesocial.com/papers/68d46cb831b076d99fa6857fhttps://doi.org/10.1093/mnras/staf1574
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