‘Born-again’ star offers rare chance to watch stellar evolution in real time


'Born-again' star offers rare chance to watch stellar evolution in real time
The rapid brightening of Sakurai’s object (green circle) allows astronomers to study the final phases of the stellar evolution in only a few decades. The left and right panels show the brightening. The middle panel is an image obtained with the radio telescope ALMA, showing the material ejected after the star re-ignited. The material currently extends over a size similar to our entire solar system. Credit: Stefan Kimeswenger, University of Innsbruck; Peter van Hoof, Royal Observatory Belgium.

Astronomers have confirmed that one of the fastest-changing stars ever observed has entered a new stage of its evolution, offering a rare opportunity to watch a star’s life unfold on human timescales.

Using the European Southern Observatory’s Very Large Telescope (VLT) in Chile, researchers including scientists from The University of Manchester and the Valongo Observatory studied Sakurai’s Object, a rare “born-again” star that unexpectedly burst back to life in 1996 after reaching the final stages of its evolution.

Their findings, published in Monthly Notices of the Royal Astronomical Society, show that the star has entered a new phase of its evolution, developing the powerful stellar wind characteristic of Wolf-Rayet stars.

The research provides new insight into the final stages of stellar evolution and helps astronomers test theories that would otherwise take thousands or millions of years to verify.







Animation showing how the star brightened over time. Credit: Peter van Hoof.

A rare star changing in real time

Professor Albert Zijlstra from the Jodrell Bank Center for Astrophysics at The University of Manchester said, “Most stars evolve so slowly that major changes take place over timescales far longer than a human lifetime. As a result, we usually have to piece together snapshots of stellar evolution by comparing different stars at different stages of their lives.

“Sakurai’s Object offers something far rarer. It is one of the very few stars known to have changed dramatically within just a few decades, giving us the opportunity to watch stellar evolution unfold in real time.

“With our observations, we can test theories of how stars evolve and gain new insights into one of the shortest and least understood phases in the life of a dying star.”

The scientists believe the star was similar to our sun but had already ended nuclear burning and begun its journey toward becoming a white dwarf—the hot, dense core left behind after an ordinary star dies. It underwent a rare event known as a “very late thermal pulse,” when a layer of helium deep inside the dead star suddenly reignites.

'Born-again' star offers rare chance to watch stellar evolution in real time
A static image of the final frame of the animation. Credit: Peter van Hoof.

How the star flared back to life

The event caused the star to rapidly expand, cool and eject large amounts of material into space, temporarily returning to an earlier stage of its life and leading astronomers to describe it as a “born-again” star.

Only two stars have ever been directly observed undergoing this type of dramatic rebirth: Sakurai’s Object and V605 Aquilae.

Following its outburst, Sakurai’s Object became hidden behind thick clouds of gas and dust released during the eruption, making it difficult to study directly.

To investigate its current state, the team analyzed light collected by the Very Large Telescope and compared it with sophisticated computer models that simulate the atmospheres and powerful winds of Wolf-Rayet stars.

The observations revealed distinctive signatures of carbon and helium, allowing the researchers to find its temperature, chemical composition and the characteristics of its stellar wind.

Their analysis suggests the star’s surface temperature is currently between 27,000 K and 36,000 K (48,000°F–64,000°F), showing that it is reheating following its dramatic eruption nearly three decades ago.

'Born-again' star offers rare chance to watch stellar evolution in real time
The nebula that was ejected when the star died for the first time. This is an ancient planetary nebula. In this image, the star itself is not visible as it was before the brightening started. Credit: ESO.

A slower reheating than expected

Zijlstra added, “One of the key questions is how quickly Sakurai’s Object should recover after its dramatic eruption.

“Our measurements show that the star is reheating more gradually than some earlier models predicted. That gives us an important way of testing which theories best describe what happens when a dying star briefly springs back to life.

“As we continue to monitor the star over the coming years, we expect to learn much more about this remarkable phase of stellar evolution.”

The findings also suggest that Sakurai’s Object is at an earlier stage of its evolution than V605 Aquilae, which experienced a similar event around 80 years ago.

The team will continue observing Sakurai’s Object as it continues reheating and resumes its journey toward becoming a white dwarf, learning more about one of the most rapid and unusual phases of stellar evolution ever observed.

Publication details

Monthly Notices of the Royal Astronomical Society (2026). DOI: 10.1093/mnras/stag1533

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‘Born-again’ star offers rare chance to watch stellar evolution in real time (2026, September 16)
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