The ultra-fast afterglow of GRB 260226A
Biswajit Banerjee, Alessio Mei, Annarita Ierardi, Samanta Macera, Gor Oganesyan, Shraddha Mohnani, Elias Kammoun, Pawan Tiwari, Stefano Ascenzi, Samuele Ronchini, Ansh Chopra, Alessio Ludovico De Santis, Stefano Covino, Paolo D'Avanzo, Andrea Melandri, Silvia Piranomonte
astro-ph.HE
Submitted: 2026-07-28
Comments: Submitted
Code: https://github.com/LudovicoAlt/py3https:
License: http://creativecommons.org/licenses/by/4.0/
The gist: Long-duration gamma-ray bursts are typically powered by relativistic jets launched after the core collapse of some rapidly rotating massive stars.
Terminology
Abstract
Long-duration gamma-ray bursts are typically powered by relativistic jets launched after the core collapse of some rapidly rotating massive stars. Internal dissipation releases part of the jet energy as highly variable MeV prompt emission, while the remaining kinetic energy drives an external shock into the surrounding medium and produces the so-called afterglow. During the first minutes of the afterglow, the unsteady jet transfers energy to the external shock. The early afterglow emission in MeV-GeV energies is rarely observed because the emergence of afterglow can be overshined by the prompt emission. Here we report exceptional observations of GRB 260226A with the Fermi Large Area Telescope, which recorded the largest number of photons above 100 MeV from a gamma-ray burst. These data allow us to reconstruct the evolution of the bolometric flux of the afterglow from its emergence during the prompt emission phase with unprecedented detail. The afterglow component peaks near 50 MeV and fades rapidly, first as t-1.5 and then transiting to an ultra-fast t-2.8 decay after about one minute. This behavior cannot be explained by standard synchrotron emission from a blast wave propagating into a cold medium. We interpret it as external inverse Compton radiation from freshly heated electrons cooling on prompt photons in a dense, pair-loaded stellar wind. GRB 260226A therefore shows that MeV-GeV observations can directly reveal the formation of the external shock and the massive-star environment is significantly reshaped by the prompt emission.
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