Astronomers Uncover New Planetary Nebula in the Large Magellanic Cloud

Astronomers have identified a faint planetary nebula during a spectroscopic examination of stars in NGC 1866, a vast young globular cluster within the Milky Way satellite galaxy, known as the Large Magellanic Cloud. This nebula, designated Ka LMC 1, is situated near the core of NGC 1866.



This image shows NGC 1866 overlaid with a false-color representation from the MUSE data cube, highlighting the ionized shell of planetary nebula Ka LMC 1 as a red ring. The grayscale inset details the sizes of the ionization shells of singly ionized nitrogen. [N II] and doubly ionized oxygen [O III]. A magnified Hubble image reveals a pale blue star at the center, likely the hot central star of Ka LMC 1. Image credit: AIP / MM Roth / NASA / ESA / Hubble.

NGC 1866 is located at the edge of the Large Magellanic Cloud, approximately 160,000 light-years from Earth.

This cluster, also referred to as ESO 85-52 and LW 163, was discovered by Scottish astronomer James Dunlop on August 3, 1826.

Surprisingly, NGC 1866 is a young globular cluster positioned close enough for individual star studies.

In a recent spectroscopic investigation of NGC 1866, astronomers analyzed spectra captured by the MUSE Integral Field Spectrometer on ESO’s Very Large Telescope.

They made an unexpected and intriguing discovery: the ionized shell of a planetary nebula.

A subsequent study utilized images from the NASA/ESA Hubble Space Telescope to explore the nature of the object, which has been named Ka LMC 1.

“Planetary nebulae signify a late phase in a star’s evolution, during which the star consumes hydrogen for nucleosynthesis, expands as a red giant in a shell-burning phase, and eventually sheds most of its mass into a large, expanding shell. The remaining core then contracts and heats up, eventually cooling to become a white dwarf,” explained lead author Dr. Howard Bond, an astronomer at Pennsylvania State University and the Space Telescope Science Institute, along with his colleagues.

“Once the core surpasses 35,000 degrees, the shell ionizes and becomes visible through emission lines at specific wavelengths.”

The research team noted that Hubble images depict the hot central star of the Ka LMC 1 nebula.

“Ka LMC 1 is a genuine enigma. A young star cluster aged 200 million years implies that its progenitor star must be significantly massive,” noted astronomer Professor Martin Roth from the Potsdam Leibniz Institute for Astrophysics, the Institute for Physics and Astronomy at the University of Potsdam, and the German Center for Astrophysics.

“However, such a star would quickly evolve towards a cooling white dwarf stage.”

“Reconciling the age of the planetary nebula’s expanding shell with the theoretical evolutionary trajectory of its central star has been challenging.”

“This object undoubtedly demands further detailed observations to clarify its characteristics.”

“It presents a rare opportunity to observe star evolution over a timeframe that usually spans millions, if not billions, of years.”

“Yet, the evolution of massive central stars occurs in merely a few thousand years, making it possible to align with the timeline of the nebula’s expansion.”

According to a study published on November 7, 2025, in Publications of the Astronomical Society of the Pacific.

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Howard E. Bond et al. 2025. A faint planetary nebula was accidentally discovered in the massive young LMC star cluster NGC 1866. pasp 137, 114202; doi: 10.1088/1538-3873/ae1664

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Hubble Discovers Cloudy Star Clusters in the Large Magellanic Cloud

A stunning new image captured by the NASA/ESA Hubble Space Telescope reveals a star cluster known as N11, located within the expansive Magellanic Cloud.



This Hubble image depicts star cluster N11. Image credits: NASA/ESA/Hubble/C. Murray/J. Maíz Apellániz.

“This scene is part of the large Magellanic Cloud, a dwarf galaxy situated approximately 160,000 light years from the constellations Dorado and Mensa,” the Hubble astronomer stated.

“With a mass equivalent to 10-20% of that of the Milky Way, the large Magellanic Cloud is the most substantial of the numerous small galaxies orbiting our galaxy.”

“These large Magellanic Clouds host various significant stellar nursery regions where gas clouds, like those portrayed in this image, converge to form new stars.”

This latest Hubble image illustrates a segment of N11, the second-largest star-forming region within the large Magellanic Cloud.

“The Tarantula Nebula, which ranks as the largest and most active star-forming region in the large Magellanic Clouds, is a frequent target for Hubble,” the astronomer noted.

“We observe bright young stars illuminating gas clouds and sculpting masses of dust using their powerful ultraviolet rays.”

“This image represents observations spaced about 20 years apart, highlighting Hubble’s enduring legacy,” they added.

“The initial observations took place between 2002 and 2003 and provided exceptional sensitivity and resolution with the new technology at the time, the Advanced Camera for Surveys.

“We directed Hubble towards the N11 Star Cluster and accomplished something unprecedented: cataloging all the stars in our young cluster, from those with 10% to 100 times the mass of the Sun.”

“The subsequent observations utilized Hubble’s latest instruments, specifically the Wide Field Camera 3.

“These new images emphasized the cluster-filled dusty clouds, offering a fresh perspective on cosmic dust.”

Source: www.sci.news

Hubble Reveals a Vibrant Nebula in the Large Magellanic Clouds

Astronomers utilizing the NASA/ESA Hubble Space Telescope capture breathtaking views of a significant section of the nebula within the Large Magellanic Cloud, the largest of several small satellite galaxies orbiting the Milky Way.

This Hubble image illustrates a segment of the vivid nebula in the Large Magellanic Cloud, a dwarf galaxy situated 160,000 light-years away in the constellations Dorado and Mensa. Image credits: NASA/ESA/Hubble/C. Murray.

This latest image was created using individual exposures captured across ultraviolet, visible, and infrared wavelengths. Hubble’s Wide Field Camera 3 (WFC3) was instrumental in this achievement.

“This portrayal of the dust-laden gas clouds within the Large Magellanic Cloud is made possible by Hubble’s advanced cameras, particularly the WFC3, which collected these observations,” stated Hubble astronomers.

“The WFC3 features an array of filters, each allowing light of a specific wavelength or color to pass through.”

“The image is a composite from five different filters, including one designed to capture ultraviolet and infrared radiation, which is invisible to the human eye.”

“The delicate gas clouds depicted resemble colorful cotton candy,” remarked the researchers.

“When encountering a cosmic scene with such vivid hues, it’s only natural to question the authenticity of these colors.”

“After all, the Hubble is equipped with a 2.4m diameter mirror and sophisticated scientific instruments, unlike typical cameras!”

“As image processing experts merge the raw filtered data into these multi-colored representations, they assign distinct colors to each filter.”

“Observations in visible light correspond to the colors passed through the respective filter.”

“Shorter light wavelengths, like ultraviolet rays, typically appear blue or purple, whereas longer wavelengths, such as infrared rays, are usually depicted as red.”

“This color scheme closely mirrors reality, revealing new insights from parts of the electromagnetic spectrum that are invisible to human eyes.”

“Nevertheless, countless color combinations can be employed to create images that are not only aesthetically striking but also scientifically valuable.”

Source: www.sci.news

Astronomers Detect Compelling Evidence of Supermassive Black Holes in the Large Magellanic Cloud

The mass of the ultra-large black hole in the heart of the large Magellan cloud, a small milky satellite galaxy, is approximately 600,000 solar mass.



Impressions of the Hyper Belt Lattist artist ejected from the large Magellan cloud (shown on the right). If the binary star system gets too close to an ultra-large number of black holes, intense gravity will tear the pair apart. One star is captured in tight orbits around a black hole, while the other is thrown outward at extreme speeds – often exceeding thousands of kilometers per second, making it a high-speed star. The inset diagram illustrates this process. The orbital path of the original binary is displayed as an interwoven line, one star is captured by a black hole (near the center of the inset), and the other is ejected into space (bottom right). Image credit: CFA/Melissa Weiss.

“Our Milky Way galaxy halo includes a few stars running faster than local escape speeds in orbit that carry them into intergalactic space,” said Dr. Jesse Han, Ph.D. of the Harvard & Smithsonian Center for Astrophysics and Colleagues.

“One mechanism for generating such ultrafast stars is the Hills mechanism. When a close binary star wanders near an ultrahigh Massive black hole, one star can be captured, while the other is ejected at a rate that reaches more than a second.”

In their new study, astronomers followed the path with ultrafine accuracy of 21 superfast stars in halos outside the Milky Way.

They confidently categorized these stars, finding that seven of them coincided with those born out of the center of the Milky Way.

However, the other nine stars coincided with those born from the centre of the large Magellan cloud, about 160,000 light years away from us.

“Cosmologically speaking, it's amazing to notice another super-large black hole just below the block,” Dr. Han said.

“Black holes are so stealthy that this has been under our noses this time.”

Researchers discovered a large Magellanic Cloud black hole using data from ESA's Gaia Mission.

They also used improved understanding of the orbital of the d-star galaxies around the Milky Way, which was recently obtained by other astronomers.

“We knew these superfast stars had been around for a while, but Gaia provided us with the data we needed to figure out where they actually came from,” says Dr. Kareem El-Badry, an astronomer at Caltech.

“Combining these data with a new theoretical model of how these stars move, we made this incredible discovery.”

“The only explanation we can come up with for these data is the presence of a monster black hole in the next Galaxy,” said Dr. Scott Lucchini, an astronomer at the Harvard & Smithsonian Center for Astrophysics.

a paper Reporting this finding is published in Astrophysical Journal.

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Ji Won Jesse Han et al. 2025. Hyper Belt Lattist tracks ultra-high Massive black holes in the large Magellan clouds. APJin press; Arxiv: 2502.00102

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VLTI captures high-resolution images of red supergiant star in Large Magellanic Cloud

used by astronomers ESO’s Very Large Telescope Interferometer (VLTI) has taken an enlarged image of the dusty red supergiant star WOH G64.

This image, taken by ESO’s Very Large Telescope Interferometer’s GRAVITY instrument, shows the red supergiant star WOH G64. Image credit: ESO / Onaka others., doi: 10.1051/0004-6361/202451820.

WOH G64 is located in the constellation Shira, about 160,000 light years away.

The star, also known as IRAS 04553-6825, 2MASS J04551048-6820298, or TIC 30186593, is part of the Large Magellanic Cloud, one of the smaller galaxies orbiting the Milky Way.

WOH G64 is approximately 2,000 times larger than the Sun and is classified as a red supergiant star.

“We discovered an egg-shaped cocoon that tightly surrounds this star,” said Dr. Keiichi Onaka, an astrophysicist at Andres Bello University.

“We’re excited because this could be related to the rapid ejection of material from a dying star before it explodes into a supernova.”

“Astronomers have taken zoomed-in images of and characterized about two dozen stars in our Milky Way galaxy, but countless other stars exist in other galaxies. and were so far away that it was very difficult to observe one of them in detail.

Artist’s reconstruction of the red supergiant star WOH G64. Image credit: ESO/L. Calçada.

Dr. Onaka and his colleagues have been interested in WOH G64 for a long time.

In 2005 and 2007, they used VLTI to learn more about the star’s properties and continued their research in the years since. However, the actual appearance of this star remained elusive.

To achieve the desired photos, it was necessary to wait for the development of VLTI’s second generation equipment. gravity.

After comparing the new results with other previous observations of WOH G64, they were surprised to find that the star had become fainter over the past decade.

Professor Gerd Weigert, an astronomer at the Max Planck Institute for Radio Astronomy, said: “We found that this star has undergone significant changes over the past 10 years, and this is a rare opportunity to witness the life of a star in real time.” he said. .

During the final stages of their lives, red supergiant stars like WOH G64 shed their outer layers of gas and dust in a process that lasts thousands of years.

Dr Jacco van Loon, director of the Kiel Observatory at Kiel University, said: “This star is one of the most extreme of its kind and any dramatic changes could bring it closer to an explosive demise. ” he said.

“These ejected materials may also be responsible for the dimming and the unexpected shape of the dust cocoon around the star,” the astronomers said.

The new image shows the cocoon elongating, surprising researchers who had expected a different shape based on previous observations and computer models.

They believe that the cocoon’s egg-like shape could be explained by the star’s molting or the influence of an as-yet-undiscovered companion star.

As the star dims, it becomes increasingly difficult to take other close-up photos, even VLTI.

Nevertheless, in the future, an update of the telescope’s instruments is planned. Gravity+I promise to change this soon.

“Similar follow-up observations using ESO’s instruments will be important for understanding what is happening inside this star,” said Dr. Onaka.

of the team paper Published in a magazine astronomy and astrophysics.

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Kento Ohnaka others. 2024. Image of the innermost circumstellar environment of the red supergiant star WOH G64 in the Large Magellanic Cloud. A&A 691, L15; doi: 10.1051/0004-6361/202451820

Source: www.sci.news

Observation of the diffuse nebula NGC 261 in the Small Magellanic Cloud by the Hubble Space Telescope

NGC 261 is located within the Small Magellanic Cloud, one of the Milky Way's closest neighbors.



This Hubble Space Telescope image shows the diffuse nebula NGC 261, about 200,000 light-years from Earth in the constellation Sivir. Image courtesy of NASA/ESA/LC Johnson, Northwestern University/Gladys Kober, NASA and The Catholic University of America.

NGC 261 It is a diffuse nebula located about 200,000 light years away in the constellation Tetranychus.

The object, also known as Brook 42, ESO 29-12, and IRAS 00447-7322, Found It was discovered on September 5, 1826 by Scottish astronomer James Dunlop.

“The ionized gas burning up from within this diffuse region characterizes NGC 261 as an emission nebula,” the Hubble astronomers said.

“The stars are so hot that they irradiate the surrounding hydrogen gas, giving the clouds a pinkish-red glow.”

The Hubble Space Telescope has turned its keen eye to NGC 261 to study how efficiently stars form within molecular clouds, extremely dense regions of gas and dust.

“These clouds are often composed of large amounts of molecular hydrogen and are the cold regions where most stars form,” the researchers explained.

“But molecular hydrogen is poorly radiative, making it difficult to measure this fuel for star formation in stellar nurseries.”

“Because they're difficult to detect, scientists instead track other molecules present within the molecular cloud.”

“The Small Magellanic Cloud contains a gas-rich environment of young stars, as well as traces of carbon monoxide, which correlates with hydrogen and is a chemical often used to confirm the presence of such clouds.”

The new composite image is Hubble's Advanced Camera for Surveys (ACS) and Wide-angle camera 3 (WFC3) shows such a star in the southwestern part of the Small Magellanic Cloud, where NGC 261 resides.

“The combined powers of the ACS and WFC3 instruments allowed us to probe the star formation properties of the nebula through its carbon monoxide content at visible and near-infrared wavelengths,” the scientists said.

“This work helps us better understand how stars form in our host galaxy and in our Galactic neighbours.”

Source: www.sci.news

Hubble Observes Large Globular Cluster in Large Magellanic Cloud

Astronomers using the NASA/ESA Hubble Space Telescope have captured detailed images of the globular star cluster NGC 1651 in the constellation Mensa.

This Hubble image shows the globular cluster NGC 1651 about 162,000 light-years away in the constellation Mensa. Image credits: NASA / ESA / Hubble / L. Girardi / F. Niederhofer.

Globular clusters are densely packed spherical clusters of hundreds of thousands or even millions of stars.

They are among the oldest known objects in the universe and are preferentially associated with the oldest components of galaxies.

There are at least 150 such objects in our Milky Way, and several more may be hidden behind the galaxy's thick disk.

NGC1651 is part of the Large Magellanic Cloud, the largest and brightest of the Milky Way's satellite galaxies.

beginning discovered Discovered by British astronomer John Herschel on November 3, 1834, this globular cluster is located approximately 162,000 light-years away in the constellation Mensa.

NGC 1651, also known as ESO 55-30 or LW 12, has a diameter of 120 light years.

“A remarkable feature of this image is that NGC 1651 nearly fills the entire image, even though the globular cluster is only about 10 to 300 light-years in diameter,” Hubble astronomers said. Masu.

“In contrast, there are many Hubble images that feature entire galaxies, tens or even hundreds of millions of light-years in diameter, that more or less fill the entire image.”

Color images of NGC 1651 consist of observations from. Hubble's Wide Field Camera 3 Found in the near-infrared and optical portions of the spectrum.

“A common misconception is that Hubble and other large telescopes can observe objects of vastly different sizes by zooming in, much like we would with special cameras on Earth,” the astronomers said. Ta.

“However, while smaller telescopes may have the option to zoom in and out to some extent, larger telescopes do not.”

“Each telescope instrument has a fixed 'field of view' (the size of the area of the sky that can be observed in a single observation).”

“For example, WFC3's ultraviolet/visible light channel, the channel and instrument used to collect the data used in this image, has a field of view that is approximately one-twelfth the diameter of the moon as seen from Earth. Masu.”

“Every time WFC3 makes an observation, it becomes the size of the region of sky it can observe.”

“There are two reasons why Hubble is able to observe objects with such widely different sizes,” the researchers said.

“First, the distance to an object determines how big that object appears from Earth, so an entire galaxy that is relatively far away is compared to a relatively nearby globular cluster like NGC 1651. could take up the same amount of space as the sky.''

“In fact, a distant spiral galaxy lurks just to the left of the cluster in this image. It's undoubtedly much larger than the cluster, but here it appears small enough to blend in with the foreground stars.”

“Second, multiple images across different parts of the sky can be mosaicked to create a single image of an object too large for Hubble's field of view.”

Source: www.sci.news

Hubble Space Telescope Captures Stunning Image of the Magellanic Spiral Galaxy

NASA has released a surprising new image of the little-known dwarf galaxy LEDA 42160 taken by the NASA/ESA Hubble Space Telescope.

This Hubble image shows dwarf galaxy LEDA 42160 located 53.5 million light-years away in the constellation Virgo. Image credit: NASA / ESA / Hubble / M. Sun.

LEDA 42160 Located approximately at 53.5 million light years It is located in the constellation Virgo, far from Earth.

Also known as MCG+02-32-161, VCC 1725, ALFALFA 3-327, or AGC 220849, this galaxy is a member of a massive galaxy cluster called the Virgo Cluster.

“LEDA 42160 is one of many astronomers to force their way through the relatively dense gas in the Virgo cluster,” Hubble astronomers said.

“The pressure exerted by this intergalactic gas, known as the Ram pressure, has a dramatic effect on star formation in LEDA 42160, which is currently being studied using Hubble.”

“LEDA 42160 falls into the following categories.” magellanic spiral galaxyIn the de Vaucouleurs galaxy classification system, it is abbreviated as Sm. ”

“Magellanic spiral galaxies can be further classified as barred galaxies (SBm), barred galaxies (SAm), and weakly barred galaxies (SABm), where the ‘bar’ refers to the elongated bar at the center of the galaxy. ”

“Generally speaking, the Magellanic Spiral Galaxy is a dwarf galaxy with only one spiral arm.”

“They are named after their prototype SBm galaxy, the Large Magellanic Cloud.”

“The Magellanic Spiral Galaxy is an interesting example of how the classification of galaxies is actually more nuanced than just spiral, elliptical, irregular, etc.”

Color images of LEDA 42160 consist of observations from. Hubble’s advanced survey camera (ACS) in the near-infrared and optical portions of the spectrum.

Two filters were used to sample different wavelengths. Color is obtained by assigning different hues to each monochromatic image associated with an individual filter.

Source: www.sci.news

Webb’s Observation of a Massive Star-Forming Complex in the Large Magellanic Cloud

Use of Mid-infrared measuring instrument With (MIRI) aboard the NASA/ESA/CSA James Webb Space Telescope, astronomers have captured stunning images of N79, a region of interstellar ionized hydrogen in the Large Magellanic Cloud.

This Hubble image shows star-forming region N79 located 163,000 light-years away in the constellation Sera. Image credit: NASA / ESA / CSA / Webb / M. Meixner.

N79 is a massive star-forming complex spanning about 1,630 light-years in the generally unexplored southwestern region of the Large Magellanic Cloud, a neighboring dwarf galaxy about 163,000 light-years from us.

This region is usually considered a younger version of the 30 Doradus, also known as the Tarantula Nebula.

N79 has a star formation efficiency more than twice that of Doradas 30 over the past 500,000 years.

This particular image centers on one of three giant molecular cloud complexes called N79 South (S1 for short).

The distinctive “starburst” pattern surrounding this bright object is a series of diffraction spikes.

“All telescopes that use mirrors to collect light, like Webb, have this form of artifact resulting from the design of the telescope,” Webb astronomers said.

“For Webb, the six largest starburst spikes appear due to the hexagonal symmetry of Webb's 18 primary mirror segments.”

“Such patterns are only noticeable around very bright and compact objects, where all the light comes from the same place.”

“Most galaxies appear very small to our eyes, but we don't see this pattern because they are dimmer and more spread out than a single star.”

“At the longer wavelengths of light captured by MIRI, Webb's view of N79 shows glowing gas and dust in the region.”

“This is because mid-infrared light can reveal what's going on deep within the cloud (whereas shorter wavelength light is absorbed or scattered by dust particles within the nebula). Still embedded Some protostars also appear in this region.”

Star-forming regions such as N79 are of interest to astronomers because their chemical composition is similar to that of giant star-forming regions observed in the early universe.

“The star-forming regions of our Milky Way galaxy are not producing stars at the same ferocious rate as N79 and have a different chemical composition,” the astronomers said.

“Webb now offers us the opportunity to compare and contrast observations of star formation in N79 with deep telescopic observations of distant galaxies in the early universe.”

“These observations of N79 are part of the Webb program to study the evolution of circumstellar disks and envelopes of forming stars over a wide range of masses and at different evolutionary stages.”

“Webb's sensitivity allows us to detect for the first time disks of planet-forming dust around stars of the same mass as the Sun at distances in the Large Magellanic Cloud.”

Source: www.sci.news

A cluster of stripped helium stars found in the Magellanic Cloud by astronomers

Removing the hydrogen-rich layer from a main-sequence star exposes the helium-rich core. Such stripped helium stars are known at high and low masses, but not at intermediate masses, despite theoretical predictions that they should be common. In a new study, astronomers at the University of Toronto and elsewhere used ultraviolet photometry to identify candidates for stripped helium stars in two nearby dwarf galaxies, the Large and Small Magellanic Clouds. We observed 25 such candidate stars using optical spectroscopy. Most of these systems have been shown to be binary systems, with the companion star likely stripping the helium star of its outer hydrogen-rich layer.

An artist’s impression of a large-scale binary system. Image credit: ESO / M. Kornmesser / SE de Mink.

The hydrogen-rich outer layers of massive stars can be removed by interactions with binary companions.

Theoretical models predict that this separation would produce a population of hot helium stars with masses between two and eight times the mass of the Sun, but only one such system has been identified to date.

“This was a very large and noticeable hole. If these stars turn out to be rare, it could affect supernovae, gravitational waves, light from distant galaxies, and our theories for all these different phenomena. The whole framework is wrong,” said Dr Maria Draut, an astronomer at the university. of Toronto.

“This discovery shows that these stars actually exist.”

“In the future, we will be able to perform even more detailed physics on these stars.”

“For example, predictions of how many neutron star mergers we will see depend on the properties of these stars, such as how much material is ejected by stellar winds.”

“In the past, people have estimated it, but now for the first time they will be able to measure it.”

Dr. Drout and her colleagues designed a new study to look at the ultraviolet part of the spectrum, where very hot stars emit most of their light.

Astronomers used data from the Swift Ultraviolet/Optical Telescope to collect the brightness of millions of stars in the Large and Small Magellanic Clouds, the two closest galaxies to Earth.

They developed the first wide-field UV catalog of the Magellanic Clouds and used UV photometry to detect systems with unusual UV emissions indicating the possible presence of stripped stars.

They acquired optical spectroscopy with the Magellan Telescope at the Las Campanas Observatory from 2018 to 2022 and conducted pilot studies on 25 objects.

These stripped stars had high temperatures (60,000 to 100,000 K), high surface gravity, and hydrogen-depleted surfaces. Sixteen stars also showed binary motion.

Drout and his co-authors propose that these stars will eventually explode as hydrogen-depleted supernovae.

These objects, like the gravitational wave-emitting objects detected from Earth by the LIGO experiment, are also thought to be necessary for the formation of neutron star mergers.

In fact, researchers believe that some of the objects in the current sample are neutron stars or stripped stars with black hole companions.

These objects are on the verge of becoming double neutron stars or neutron star and black hole systems that may eventually merge.

“Many stars are part of a cosmic dance with partners, orbiting each other in binary star systems,” says Dr. Bethany Ludwig. He is a student at the University of Toronto.

“They are not solitary giants, but part of a dynamic duo, interacting and influencing each other throughout their lives.”

“Our research sheds light on these fascinating relationships, revealing a universe far more interconnected and active than previously imagined.”

“Just as humans are social beings, stars, especially massive stars, are rarely lonely.”

of result appear in the diary science.

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MR Drought other. 2023. Observed population of intermediate-mass helium stars separated by binaries. Science 382 (6676): 1287-1291; doi: 10.1126/science.ade4970

Source: www.sci.news