Showing posts with label Merging Stars. Show all posts
Showing posts with label Merging Stars. Show all posts

Sunday, August 17, 2025

NASA’s Hubble Uncovers Rare White Dwarf Merger Remnant

This is an illustration of a white dwarf star merging into a red giant star. A bow shock forms as the dwarf plunges through the star’s outer atmosphere. The passage strips down the white dwarf’s outer layers, exposing an interior carbon core. Artwork: NASA, ESA, STScI, Ralf Crawford (STScI)




An international team of astronomers has discovered a cosmic rarity: an ultra-massive white dwarf star resulting from a white dwarf merging with another star, rather than through the evolution of a single star. This discovery, made by NASA’s Hubble Space Telescope’s sensitive ultraviolet observations, suggests these rare white dwarfs may be more common than previously suspected.

“It's a discovery that underlines things may be different from what they appear to us at first glance,” said the principal investigator of the Hubble program, Boris Gaensicke, of the University of Warwick in the United Kingdom. “Until now, this appeared as a normal white dwarf, but Hubble's ultraviolet vision revealed that it had a very different history from what we would have guessed.”

A white dwarf is a dense object with the same diameter as Earth, and represents the end state for stars that are not massive enough to explode as core-collapse supernovae. Our Sun will become a white dwarf in about 5 billion years.

In theory, a white dwarf can have a mass of up to 1.4 times that of the Sun, but white dwarfs heavier than the Sun are rare. These objects, which astronomers call ultra-massive white dwarfs, can form either through the evolution of a single massive star or through the merger of a white dwarf with another star, such as a binary companion.

This new discovery, published in the journal Nature Astronomy, marks the first time that a white dwarf born from colliding stars has been identified by its ultraviolet spectrum. Prior to this study, six white dwarf merger products were discovered via carbon lines in their visible-light spectra. All seven of these are part of a larger group that were found to be bluer than expected for their masses and ages from a study with ESA’s Gaia mission in 2019, with the evidence of mergers providing new insights into their formation history.

Astronomers used Hubble’s Cosmic Origins Spectrograph to investigate a white dwarf called WD 0525+526. Located 128 light-years away, it is 20% more massive than the Sun. In visible light, the spectrum of WD 0525+526’s atmosphere resembled that of a typical white dwarf. However, Hubble’s ultraviolet spectrum revealed something unusual: evidence of carbon in the white dwarf’s atmosphere.

White dwarfs that form through the evolution of a single star have atmospheres composed of hydrogen and helium. The core of the white dwarf is typically composed mostly of carbon and oxygen or oxygen and neon, but a thick atmosphere usually prevents these elements from appearing in the white dwarf’s spectrum.

When carbon appears in the spectrum of a white dwarf, it can signal a more violent origin than the typical single-star scenario: the collision of two white dwarfs, or of a white dwarf and a subgiant star. Such a collision can burn away the hydrogen and helium atmospheres of the colliding stars, leaving behind a scant layer of hydrogen and helium around the merger remnant that allows carbon from the white dwarf’s core to float upward, where it can be detected.
WD 0525+526 is remarkable even within the small group of white dwarfs known to be the product of merging stars. With a temperature of almost 21,000 kelvins (37,000 degrees Fahrenheit) and a mass of 1.2 solar masses, WD 0525+526 is hotter and more massive than the other white dwarfs in this group.

WD 0525+526’s extreme temperature posed something of a mystery for the team. For cooler white dwarfs, such as the six previously discovered merger products, a process called convection can mix carbon into the thin hydrogen-helium atmosphere. WD 0525+526 is too hot for convection to take place, however. Instead, the team determined a more subtle process called semi-convection brings a small amount of carbon up into WD 0525+526’s atmosphere. WD 0525+526 has the smallest amount of atmospheric carbon of any white dwarf known to result from a merger, about 100,000 times less than other merger remnants.

The high temperature and low carbon abundance mean that identifying this white dwarf as the product of a merger would have been impossible without Hubble’s sensitivity to ultraviolet light. Spectral lines from elements heavier than helium, like carbon, become fainter at visible wavelengths for hotter white dwarfs, but these spectral signals remain bright in the ultraviolet, where Hubble is uniquely positioned to spot them.

“Hubble's Cosmic Origins Spectrograph is the only instrument that can obtain the superb quality ultraviolet spectroscopy that was required to detect the carbon in the atmosphere of this white dwarf,” said study lead Snehalata Sahu from the University of Warwick.

Because WD 0525+526’s origin was revealed only once astronomers glimpsed its ultraviolet spectrum, it’s likely that other seemingly “normal” white dwarfs are actually the result of cosmic collisions — a possibility the team is excited to explore in the future.

“We would like to extend our research on this topic by exploring how common carbon white dwarfs are among similar white dwarfs, and how many stellar mergers are hiding among the normal white dwarf family,” said study co-leader Antoine Bedrad from the University of Warwick. “That will be an important contribution to our understanding of white dwarf binaries, and the pathways to supernova explosions.”

The Hubble Space Telescope has been operating for more than three decades and continues to make ground-breaking discoveries that shape our fundamental understanding of the universe. Hubble is a project of international cooperation between NASA and ESA (European Space Agency). NASA’s Goddard Space Flight Center in Greenbelt, Maryland, manages the telescope and mission operations. Lockheed Martin Space, based in Denver, also supports mission operations at Goddard. The Space Telescope Science Institute in Baltimore, which is operated by the Association of Universities for Research in Astronomy, conducts Hubble science operations for NASA.



Sunday, April 12, 2015

Merging Stars

The remains of Nova Vul 1670, the "new star" that was seen in the year 1670. Observations of the molecular gas and its composition in the nebula find strong evidence that the nova was the result of the merger of two stars. The image shows visible light (blue), dust seen at submillimeter wavelengths (green), and molecular emission at submillimeter wavelengths (red). Credit: APEX, SMA, Kamins


Astronomers have known for decades that the merger of two normal stars is a frequent and astronomically important phenomenon. In globular clusters, for example, with as many as several million stars gravitationally bound together, collisions often occur between stars, producing stars that are more massive, hotter, and bluer than usual. In star forming clusters, mergers of small stars have been proposed as a way to form massive young stars, and computer simulations lend some support to this idea. Not least, some kinds of novae -- stars that suddenly brighten and were once thought to be “new” stars -- are the result of stellar mergers or near-mergers.

The variable star CK Vulpeculae (Nova Vul 1670) had a bright outburst in 1670-1672 and then dimmed. No counterpart was seen until 1982 when a nebula was found at its location, presumably a remnant of the outburst of 1670. The star itself remains undetected, presumably hidden behind a heavy dust layer ejected in that outburst. The nebula itself has been of interest to astronomers for decades because it is rich in molecular gas. CfA astronomer Nimesh Patel and his colleagues studied Nova Vul 1670 and its chemical composition using two millimeter telescopes capable of measuring its molecular constituents in detail, the Submillimeter Array and the Atacama Pathfinder Experiment (APEX).

The scientists report in the latest issue of Nature that Nova Vul 1670 is not only rich in molecular species, its gas has dramatically unusual isotopic abundances (that is, the atoms present, carbon, oxygen and nitrogen in particular, have extra neutrons in their nuclei). Element synthesis in stars is well understood, and produces specific isotopic ratios; in the solar system, for example, the ratio of carbon with an atomic number of 12 to carbon 13 is 89, but in Nova Vul 1670 it is ten times less. Similarly low ratios were found for nitrogen and oxygen isotopes.

The astronomers conclude that the atoms in Nova Vul 1670 were not produced in a normal stellar furnace, nor for that matter even in a furnace operating under very different conditions. Neither could they identify any kind of explosive event that would produce these ratios. The team argues that the most likely scenario is the violent merger in 1670 of two stars; the event ejected inner parts of the stars into the nebula, exposing the ashes from earlier stages of nuclear burning, and mixing them with more processed material. People watching the nova in 1670 were no doubt amazed at the appearance of a "new star". Imagine what their reaction would have been to find out it was actually the merger of two stars.

Reference(s):

"Nuclear ashes and outflow in the eruptive star Nova Vul 1670," Tomasz Kaminski, Karl M. Menten, Romuald Tylenda, Marcin Hajduk, Nimesh A. Patel & Alexander Kraus, Nature, online version, 23 March 2015.