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Rare Stellar Explosion Gives Astronomers a Front-Row Seat to a Massive Star’s Death

For Release: August 5, 2026

Carnegie Mellon University

A wide field image of showing thousands of galaxies and stars.
[ENLARGE]

NSF–DOE Rubin Image of the Field Around the Progenitor to Supernova SN 2026gzf

This image shows the field around the progenitor to supernova SN 2026gzf, detected by the Einstein Probe on 21 March 2026. The supernova progenitor appears as a bright blue dot within the galaxy located in the middle of the upper third at the center of this image.

Credit: NSF–DOE Vera C. Rubin Observatory/NOIRLab/SLAC/AURA

A rare stellar explosion has allowed astronomers to follow the death of a massive star from start to finish, yielding one of the most complete datasets ever collected for such an event. The explosion is only the second case in more than 20 years in which researchers have been able to track a massive star's demise with such clarity, offering new insights into the diverse ways these stars end their lives.

A Carnegie Mellon University-led team coordinated a global observing campaign that began within hours of the explosion and continued for months, using space- and ground-based telescopes to reconstruct the event in unprecedented detail. Their observations revealed that the supernova, designated SN 2026gzf, shares many characteristics with the powerful stellar explosions typically associated with gamma-ray bursts, yet showed no evidence of producing one. The findings, published in a new paper in The Astrophysical Journal Letters, suggest that massive stars can die through a wider range of pathways than previously recognized.

The discovery began in March 2026, when China’s Einstein Probe space telescope detected a brief flash of X-rays from a galaxy 500 million light-years away. The Carnegie Mellon team and a team from the University of Maryland, College Park, identified the signal, named EP260321a, as a "shock breakout" — the first light released when a powerful shock wave, similar to a supersonic plane’s sonic boom, blasts through a star's surface.

Shock breakouts are expected to occur in every supernova, but they are notoriously difficult to catch because they last only seconds to hours. Astronomers have confidently observed only one other clear X-ray shock breakout in the past two decades.

Within an hour of the detection, telescopes around the world began monitoring the source. Observations revealed a rapidly brightening supernova that belonged to a rare class known as a broad-lined Type Ic supernova. These energetic explosions are often associated with gamma-ray bursts, the most powerful explosions in the universe.

SN 2026gzf turned out to be different.

A wide field image on the left with an illustrated box around the object with a pullout showing three images on the right. Three images on the right show the evolutionary progress of supernova SN 2026gzf.

DECam Images of Supernova SN 2026gzf

These images show the evolution of supernova SN 2026gzf, which was first detected by the Einstein Probe on 21 March 2026. Images taken on 25 March and 3 April 2026 show the supernova brightening. An archival image of the host galaxy from 9 March 2016 reveals a bright blue source at the location of the supernova, which scientists say likely represents a compact, extreme star-forming region in the host galaxy, combined with pre-explosion activity of the progenitor star before its death.

Credit: CTIO/NOIRLab/DOE/NSF/AURA; Image Processing: D. de Martin & M. Zamani (NSF NOIRLab)

"SN 2026gzf looks remarkably similar to other energetic supernovae that have been previously linked to gamma-ray bursts," said Brendan O'Connor, a McWilliams Postdoctoral Fellow at Carnegie Mellon's McWilliams Center for Cosmology and Astrophysics, and first author of the new paper describing the results. "Yet follow-up observations found no evidence for a relativistic jet or the afterglow that is typically seen in those events."

One of O’Connor’s biggest questions was whether the explosion had launched a jet that somehow escaped detection. To find out, he initiated observations with NASA's Chandra X-ray Observatory, which searched for the fading X-ray afterglow expected if a powerful jet had successfully emerged from the star. This afterglow is produced as the jet collides with particles surrounding the star, generating radiation that can remain visible in X-rays for days, weeks or even months depending on the density of the environment and the total energy of the jet.

Chandra’s exceptional sensitivity and sharp imaging allowed the team to search for very faint X-ray emission precisely at the location of the supernova. No X-ray source was detected. The observations were sensitive enough, however, due to the explosion’s relatively close proximity to Earth, that they would have detected nearly every known gamma-ray-burst X-ray afterglow. Combined with radio observations from the Karl G. Jansky Very Large Array, the Chandra data ruled out the powerful relativistic jets normally associated with gamma-ray bursts.

“The Chandra data show that SN 2026gzf did not produce a normal, powerful relativistic jet,” O’Connor said. “Instead, one possibility is that the jet was ‘choked,’ either by the surface of the star or by circumstellar material surrounding the star.”

The result makes EP260321a/SN 2026gzf the first high-energy breakout flash linked to a broad-lined Type Ic supernova that shows no evidence of a relativistic outflow. The finding suggests that stripped massive stars can die in more ways than astronomers previously thought.

“One of the central unanswered questions in the field is why some collapsing massive stars launch jets near the speed of light that escape the star and produce gamma-ray bursts, while apparently similar stars do not,” O’Connor said. “As we keep finding these things and building out the distribution of their properties, we are improving our understanding of how stars look at the end of their lives, which tells us about how they lived their lives.”

Carnegie Mellon researchers assembled a detailed picture of the explosion using a wide range of facilities. They acquired deep imaging of the supernova as it brightened and reached peak brightness using the Dark Energy Camera (DECam) in Chile, an NSF NOIRLab program.

Data from the Vera C. Rubin Observatory’s Legacy Survey of Space and Time (LSST) helped track the supernova's evolution and hinted at activity in the stellar system shortly before the star exploded. Continued observations by Rubin are expected to provide detailed, long-term records of the supernova as it evolves for years to come.

“With the start of the Rubin LSST, smaller wide-field imagers on smaller aperture telescopes may seem obsolete. Yet, these observations demonstrate, possibly for the first time, how powerful the synergies between DECam and Rubin can be,” said Antonella Palmese, an assistant professor of physics at Carnegie Mellon and a co-author of the new paper. “The wealth of archival data and flexible follow up schedule by DECam enabled studies of the possible progenitor and a more continuous mapping of the supernova’s evolution.”

The Carnegie Mellon team also relied on the Dark Energy Spectroscopic Instrument (DESI), mounted on the NSF Nicholas U. Mayall 4-meter Telescope at Kitt Peak National Observatory, to repeatedly observe the supernova as it evolved. Through DESI's spare-fiber transient program, led by Carnegie Mellon physics graduate student Xander Hall, a co-author of the new paper, and Palmese, researchers collected a sequence of spectra that revealed how the explosion changed over time and helped confirm its classification as a broad-lined Type Ic supernova.

"DESI's spare-fiber program gave us the opportunity to return to SN 2026gzf repeatedly and follow how its spectrum changed as the explosion evolved," Hall said. "This sequence of observations demonstrates the power of using DESI's spare fibers for rapid transient follow-up and classification as Rubin continues to ramp up its transient alert stream over the next decade."

The Carnegie Mellon team obtained additional observations from the Hobby-Eberly Telescope (HET) and the Southern African Large Telescope (SALT). Their first observation with both of these telescopes was only three days after the X-ray detection, providing one of the earliest views of the emerging explosion. Hall initially secured SALT observations through Carnegie Mellon's partnership time funded by a 2023 McWilliams Center seed grant. To extend the campaign, Hall and O'Connor obtained Director's Discretionary Time for continued observations. Together with DESI and HET data, the SALT spectra formed the backbone of the analysis, providing a detailed record of the supernova's evolution and environment.


Media Contact:

Amy Laird
Carnegie Mellon University, Pittsburgh, Pennsylvania