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Minutes-long soft X-ray prompt emission from a compact object merger
An Li1, Chen-Wei Wang2, Niccolò Passaleva3
1School of Physics and Astronomy, Beijing Normal University, Beijing 100875, China; Institute for Frontier in Astronomy and Astrophysics, Beijing Normal University, Beijing 102206, China.
None:
Compact object mergers are multi-messenger sources and known progenitors of some gamma-ray bursts, bright flashes of high-energy radiation powered by a central engine, either an accreting black hole or a neutron star. Our understanding of these events has so far been shaped primarily by observations in the gamma-ray band, leaving their prompt phase poorly constrained at lower energies. A long-lasting (≈100 s) engine-driven X-ray emission was discussed to explain rapidly fading X-ray afterglows following several (≈30%) bursts of short (≲2 s) duration. However, this prompt X-ray component was not directly observed and past candidates were not confirmed. Here we report the discovery of EP250704a containing a minutes-long (∼560 s) flash of soft (0.5-4 keV) X-rays immediately following the short (∼0.4 s) GRB 250704B. The variability and spectral shape of this emission are inconsistent with the canonical picture of a hard, accretion-powered spike followed by a standard external-shock afterglow. Instead, the long-soft bump points to a distinct phase of prompt emission in X-rays, which would not have been detected without the soft X-ray coverage of Einstein Probe. The detection of a prompt soft X-ray counterpart in an otherwise ordinary short GRB shows that long-lasting X-ray emission is likely a common feature of merger-driven bursts and a promising electromagnetic counterpart to gravitational wave sources.
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