This fleeting cosmic explosion, known as EP250704a in X-rays and GRB 250704B in gamma rays, was jointly captured by the China-led Einstein Probe (EP), the Space Variable Objects Monitor (SVOM) and the Insight-Hard X-ray Modulation Telescope (HXMT)..
EP's wide-field X-ray telescope detected the event from its onset and continued to observe several episodes of soft X-ray emission after the gamma-ray signal disappeared. While the gamma-ray burst lasted only about 0.4 seconds, the source continued to shine in soft X-rays for nearly 10 minutes, revealing a phase of activity that conventional gamma-ray observations would likely have missed. These findings have been published as a cover article in Science Bulletin..
How Einstein Probe revealed the hidden X-ray phase.
Einstein Probe changes this picture by continuously monitoring a wide area of the sky at soft X-ray energies. In this case, it revealed that what appeared to be a brief gamma-ray event was accompanied by much longer-lasting X-ray activity.
Yi-Han Iris Yin, a Ph.D. student at HKU's Department of Physics and the Hong Kong Institute for Astronomy and Astrophysics (HKIAA), is a co-corresponding author of the study. She led the analysis of the high-energy prompt emission and contributed to the physical interpretation of the event.
Yin's analysis of the X-ray signal revealed key insights into the merger's aftermath:
- The source remained active long after the gamma-ray burst. The soft X-ray emission continued for nearly 10 minutes after the brief gamma-ray flash.
- The X-rays point to continued central engine activity. Their rapid variability and changing spectrum indicate that the central engine created by the merger continued to release energy.
- The remnant may be a magnetar. One possible explanation is a rapidly rotating, highly magnetized neutron star that continued to power the X-ray emission.
- Similar X-ray activity may have been missed before. This suggests prolonged soft X-ray emission could be more common in compact-object mergers than previously recognized and may provide another way to study gravitational-wave sources.
"Einstein Probe is allowing us to uncover a part of compact star mergers that was hidden from previous gamma-ray observations," said Yin. "The short gamma-ray flash may represent only the beginning of the high-energy activity. By observing the universe at soft X-ray energies, we can now follow these systems for much longer and obtain a more complete view of what happens during and after the merger."
Fostering young scientific leadership
"One of our goals at HKIAA is to create an environment where talented young researchers can take on scientific leadership and work at the forefront of international astronomy," Zhang said. "It is particularly encouraging to see our Ph.D. student Yin taking a leading role as one of the corresponding authors in this international collaboration."
"Her contribution reflects the quality and potential of the young researchers we are training at HKIAA, and this collaboration also demonstrates how Hong Kong can connect with major scientific facilities and research teams in mainland China and around the world."
International collaboration
The co-first authors include BNU's Li and colleagues from the Institute of High Energy Physics, the University of Rome "Sapienza" and the University of Chinese Academy of Sciences. The corresponding authors include NJU's Bin-Bin Zhang, Eleonora Troja from the University of Rome "Tor Vergata," HKU's Ph.D. student Yin and colleagues from NAOC.
More information
An Li et al, Minutes-long soft X-ray prompt emission from a compact object merger, Science Bulletin (2026).
DOI: 10.1016/j.scib.2026.08.021
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