Tuesday, August 04, 2026

NSF–DOE Rubin Observatory Opens Deep Window on Famous Cosmic Field

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Rubin Looks Deep Into a Famous Cosmic Field

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Rubin Looks Deep Into a Famous Cosmic Field (selected excerpts)

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Footprints on COSMOS



Videos

Zoom on Rubin Observatory’s Image of the COSMOS Field
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Zoom on Rubin Observatory’s Image of the COSMOS Field

Pan on Rubin Observatory’s Image of the COSMOS Field
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Pan on Rubin Observatory’s Image of the COSMOS Field



A new NSF–DOE Vera C. Rubin Observatory image featuring hundreds of thousands of distant galaxies in and around the COSMOS field marks the Observatory’s first LSST Camera image and catalog release for science

A new image from NSF–DOE Vera C. Rubin Observatory offers a spectacularly deep view into a famous region of sky known as the COSMOS field. Located in the constellation Sextans, COSMOS is one of the most observed patches of the Universe — and Rubin’s new image adds a powerful new view of this well-known cosmic landmark.

Packed into this single image from Rubin Observatory are many different kinds of galaxies: spirals with delicate arms, smooth elliptical galaxies, distorted merging galaxies, and faint red galaxies from the distant Universe. Only a relatively small number of bright stars from our own Milky Way appear in the foreground, leaving an unusually clear view of galaxies stretching far into the distance.

Rubin Observatory is jointly funded by the U.S. National Science Foundation (NSF) and the U.S. Department of Energy's Office of Science (DOE/SC).

This image was captured with Rubin’s 3.2-gigapixel LSST Camera — the largest digital camera in the world, mounted on the 8.4-meter Simonyi Survey Telescope. It features the well-known and well-studied region of sky known as the COSMOS field. It was created by stacking hundreds of individual observations and contains more than half a million galaxies and more than 50,000 stars.

The COSMOS field is especially valuable to astronomers because it looks away from the crowded plane of our Milky Way. With fewer nearby stars and clouds of dust blocking the view, telescopes can see enormous numbers of distant galaxies, many so far away that their light has traveled for billions of years before reaching Earth. Looking deeper into space also means looking farther back in time, allowing scientists to study galaxies at many different stages in the history of the Universe.

Astronomers have studied COSMOS for more than two decades. Beginning with observations by the Hubble Space Telescope in 2003, researchers around the world have pointed many of the world’s leading telescopes at this same area, observing it in wavelengths ranging from radio waves to X-rays. Because the field has been observed so extensively, it serves as an important reference point for testing new data, comparing measurements, and combining information from many observatories.

Rubin now brings something new to this familiar field: a combination of depth, wide-field coverage, and repeated observations. By imaging COSMOS again and again with the LSST Camera, Rubin will complement earlier observations and add a dynamic view of the field. This perspective will help astronomers study not only what distant galaxies look like, but also how the sky changes over time.

Because of its scientific value, the COSMOS field is among the regions that will be observed more frequently than most areas included in the Legacy Survey of Space and Time (LSST) — Rubin’s ten-year survey aimed at creating the most comprehensive, cinematic record of the Universe in history. With added observations, Rubin will create an even deeper view, revealing fainter galaxies and finer details than can be seen in this first image.

This image is being released today to mark the occasion of Rubin’s Early Data Preview 2, or EDP2 — the first phase of Rubin’s Data Preview 2 release. EDP2 is Rubin’s first data preview based on observations from the LSST Camera [1]. It combines Rubin’s science validation observations collected between April 2025 and January 2026. It provides the Rubin science community with a deep co-added (stacked) image covering 3000 square degrees of night sky, which is around one-sixth of the entire visible Southern Hemisphere sky.

“The COSMOS deep image is just the beginning for Rubin in this region. Repeated visits to the field over the next few years will demonstrate the power of our survey design for discovery by providing our science community with a huge number of transient and variable objects like supernovae and other explosive transients for follow-up and detailed study,” says Bob Blum, Director of Rubin Observatory at NSF NOIRLab.

While EDP2 is not a release of data from the full LSST, which has only recently begun, it is a scientifically valuable data release in and of itself. The data preview gives scientists a rich look at the Southern Hemisphere sky, while allowing the Rubin science community to test tools, validate data products, and prepare for the decade-long survey ahead. Notably, EDP2 includes the COSMOS field, as well as the region of sky captured in Rubin’s Ocean of Stars image, which was released to celebrate the beginning of the LSST.

“The COSMOS field is a very important one for LSST science,” says Phil Marshall, Deputy Director of Rubin Observatory at SLAC. “Its wealth of prior observations, and its repeated targeting both during commissioning and as one of the LSST’s deep fields, will make it very valuable as a testing ground for scientists as they get ready to take on the survey data.”

With this new view of COSMOS, Rubin offers an early glimpse of the science to come: an extraordinarily deep and wide view of the Universe, revealing both the vast population of distant galaxies and the changing sky above Earth. Visit the Rubin Skyviewer app to explore this field in more detail.

Bob Blum adds: “As we celebrate the start of science with Rubin Observatory, our thoughts are with our staff and the community of Chile impacted by the recent devastating storms in the region of Coquimbo and beyond. Our priority is to ensure the well-being of our staff in the region and support the community where we live and work. This image marking the start of LSST science is dedicated to the people of the region of Coquimbo and is a small token of our gratitude for their decades of support for astronomy and the AURA Observatories in Chile.”

The second phase of EDP2, expected in the October–December 2026 timeframe, will add products derived from individual images. This includes the processed visit images from individual observations, difference images that show only detected changes, and the template images, which are compared to the individual visit images to produce the difference images

Access to EDP2 is available right now to researchers in the U.S. and Chile, as well as authorized international Rubin data-rights holders. In keeping with Rubin Observatory’s data-access policy, the data products will be made openly available to the public after a two-year proprietary period.




Notes

[1] Rubin’s Data Preview 1 (DP1), released in June 2025, contained observations from October–December 2024 taken with the LSST Commissioning Camera — a much smaller version of the LSST Camera that was used to conduct test campaigns.



More information

NSF–DOE Vera C. Rubin Observatory, funded by the U.S. National Science Foundation and the U.S. Department of Energy’s Office of Science, is a groundbreaking new astronomy and astrophysics observatory on Cerro Pachón in Chile. It is named after astronomer Vera Rubin, who provided the first convincing evidence for the existence of dark matter. Using the largest camera ever built, Rubin will repeatedly scan the sky for 10 years to create an ultra-wide, ultra-high-definition, time-lapse record of our Universe.

NSF–DOE Vera C. Rubin Observatory is a joint initiative of the U.S. National Science Foundation (NSF) and the U.S. Department of Energy’s Office of Science (DOE/SC). Its primary mission is to carry out the Legacy Survey of Space and Time, providing an unprecedented data set for scientific research supported by both agencies. Rubin is operated jointly by NSF NOIRLab and SLAC National Accelerator Laboratory. NSF NOIRLab is managed by the Association of Universities for Research in Astronomy (AURA) and SLAC is operated by Stanford University for the DOE. France provides key support to the construction and operations of Rubin Observatory through contributions from CNRS/IN2P3. The Science and Technology Facilities Council supports the wide range of UK contributions to Rubin operations provided through the LSST:UK Science Centre programme. Rubin Observatory is privileged to conduct research in Chile and gratefully acknowledges additional contributions from more than 40 international organizations and teams.

The U.S. National Science Foundation (NSF) is an independent federal agency created by Congress in 1950 to promote the progress of science. NSF supports basic research and people to create knowledge that transforms the future.

The DOE’s Office of Science is the single largest supporter of basic research in the physical sciences in the United States and is working to address some of the most pressing challenges of our time.

NSF NOIRLab, the U.S. National Science Foundation center for ground-based optical-infrared astronomy, operates the International Gemini Observatory (a facility of NSF, NRC–Canada, ANID–Chile, MCTIC–Brazil, MINCyT–Argentina, and KASI–Republic of Korea), NSF Kitt Peak National Observatory (KPNO), NSF Cerro Tololo Inter-American Observatory (CTIO), the Community Science and Data Center (CSDC), and NSF–DOE Vera C. Rubin Observatory (in cooperation with DOE’s SLAC National Accelerator Laboratory). It is managed by the Association of Universities for Research in Astronomy (AURA) under a cooperative agreement with NSF and is headquartered in Tucson, Arizona.

The scientific community is honored to have the opportunity to conduct astronomical research on I’oligam Du’ag (Kitt Peak) in Arizona, on Maunakea in Hawai‘i, and on Cerro Tololo and Cerro Pachón in Chile. We recognize and acknowledge the very significant cultural role and reverence of I’oligam Du’ag to the Tohono O’odham Nation, and Maunakea to the Kanaka Maoli (Native Hawaiians) community.

SLAC National Accelerator Laboratory explores how the Universe works at the biggest, smallest and fastest scales and invents powerful tools used by researchers around the globe. As world leaders in ultrafast science and bold explorers of the physics of the Universe, we forge new ground in understanding our origins and building a healthier and more sustainable future. Our discovery and innovation help develop new materials and chemical processes and open unprecedented views of the cosmos and life’s most delicate machinery. Building on more than 60 years of visionary research, we help shape the future by advancing areas such as quantum technology, scientific computing and the development of next-generation accelerators. SLAC is operated by Stanford University for the U.S. Department of Energy’s Office of Science.

Forty-three international teams outside the U.S. and Chile are contributing to Rubin Observatory and LSST Science through the In-kind Program, in exchange for LSST data rights. These contributions are recognized in the International Data Rights Holder list, which includes all individuals nominated by their respective international programs.



Links



Contacts:

Bob Blum
Director for Operations
NSF–DOE Vera C. Rubin Observatory/NSF NOIRLab
Email:
bob.blum@noirlab.edu

Phil Marshall
Deputy Director of Operations
SLAC National Accelerator Laboratory
Email:
pjm@slac.stanford.edu

Josie Fenske
Public Information Officer
NSF NOIRLab
Email:
josie.fenske@noirlab.edu

Manuel Gnida
Head of External Communications
SLAC National Accelerator Laboratory
Email:
mgnida@slac.stanford.edu


Monday, August 03, 2026

Chandra Sees Black Hole Stirring "Pot" Containing Galactic Potato

Red Potato Galaxy (MQN01 J004131.9-493704)
Credit: X-ray: NASA/CXC/Univ. Milano-Bicocca/W. Wang et al.; Infrared: NASA/ESA/CSA/STScI;
Radio: ESO/NRAO/NAOJ/ALMA; Image processing: NASA/CXC/SAO/N. Wolk & P. Edmonds


JPEG (128.9 kb) - Large JPEG (939.4 kb) - Tiff (77.2 MB) - More Images

A Tour of the Red Potato Galaxy - More Videos



  • A jet from a black hole in the early universe is churning the gas around a neighboring galaxy, tamping down star formation.

  • NASA’s Chandra provided evidence that this jet is striking the gas cloud pumping particles and energy into it.

  • This galaxy was nicknamed the "red potato" galaxy because of its appearance in images from NASA’s James Webb.

  • This result informs how and when stars & galaxies formed in the early universe — and the effects black holes may have on them.



A black hole may be stirring a "pot" of gas containing a neighboring galaxy in the early universe, according to a new study using NASA's Chandra X-ray Observatory, as described in our latest press release. This galaxy, officially named MQN01 J004131.9-493704, has been nicknamed the "red potato" by astronomers because of its appearance in images from NASA's James Webb Space Telescope.

The red potato galaxy is located about 11.7 billion light-years from Earth at an intersection where gigantic web-like structures of galaxies and gas meet. Astronomers targeted this area with Webb because they knew it contains one of the heaviest concentrations of galaxies and growing supermassive black holes yet identified in the early universe.

A composite image shows this galaxy in X-rays from Chandra (blue) and radio light data from ALMA, the Atacama Large Millimeter/submillimeter Array (red). The X-rays reveal a growing supermassive black hole and the jet it has produced, while the radio light shows relatively cool gas in the region. Infrared data from Webb (red, green, and blue) completes the view.

Astronomers expected that the red potato galaxy, which is surrounded by the ingredients to form new stars in the form of the cool gas, would be producing many young stars. However, the amount of star formation was relatively low, which led the researchers to look for a reason why.

One important clue is that the cloud of gas surrounding the red potato galaxy is unusually turbulent compared to large gas clouds surrounding other galaxies. Such turbulence could be preventing most of the gas from falling onto the red potato galaxy to form large numbers of new stars.

Using Chandra, the team discovered that a jet of particles from a growing black hole in a neighboring galaxy is pointed toward and may be striking the gas cloud around the red potato galaxy, possibly causing the turbulence.

The Red Potato galaxy, MQN01 J004131.9-493704, and the surrounding region in X-ray, infrared, and radio light. Credit: X-ray: NASA/CXC/Univ. Milano-Bicocca/W. Wang et al.; Infrared: NASA/ESA/CSA/STScI; Radio: ESO/NRAO/NAOJ/ALMA; Image processing: NASA/CXC/SAO/N. Wolk & P. Edmonds

A labeled version of the image highlights the red potato galaxy, the neighboring galaxy hosting the growing supermassive black hole, the jet from this black hole and the cloud of cool gas the jet may be striking. Apart from the jet, the blue Chandra emission from the neighboring galaxy is a point source of X-rays, rather than including diffuse X-rays. The large, diffuse appearance of the X-ray source is caused by the difference in resolving power of JWST and Chandra, and the processing required to show the faint jet.

While the red potato galaxy mostly has older, cooler stars and therefore appears red in infrared data, the galaxy hosting the black hole with the jet does not. Instead, this galaxy, which is located about 200,000 light-years from the red potato, is very actively forming stars, including massive, hot stars, as are most of the other nearby galaxies.

Astronomers want to learn how galaxies and black holes interact with each other – especially at this critical epoch in the universe’s history – and how that impacts when and how stars form.

A paper describing these results, led by Weichen Wang of the University of Milan-Bicocca in Italy, has been recently published in the Astronomy & Astrophysics journal. NASA's Marshall Space Flight Center manages the Chandra program. The Smithsonian Astrophysical Observatory's Chandra X-ray Center controls science operations from Cambridge, Massachusetts, and flight operations from Burlington, Massachusetts.





Visual Description:

This release includes a composite image featuring two galaxies in the early universe, some 11.7 billion light-years from Earth.

Near the center of the image is a small, irregular, pale yellow oval with a red outer ring, in the heart of a bright, hazy red cloud. This is a galaxy nicknamed the “red potato” by astronomers studying this region of the early universe. Those astronomers expected the red potato to be producing scores of new stars. When they instead discovered relatively low star growth, they looked to a neighboring galaxy for reasons why.

To our upper right of the red potato and its hazy red cloud of gas, is a neighboring galaxy in a pool of blue haze. This galaxy is also pale yellow in color, but has a less defined, less tuber-like shape than its counterpart. The blue pool represents X-rays from a growing supermassive black hole in the heart of the galaxy. The pool has a stubby tail, or X-ray jet, pointed toward the red cloud, and faint pockets of red and blue overlap within the composite image.

Astronomers now believe that the X-ray jet from the neighboring supermassive black hole may have struck the red gas cloud around the red potato. This may be causing turbulence within the gas cloud, preventing the gas from falling onto the red potato. Without the ingredients from that gas, new stars struggle to grow.



Fast Facts for Red Potato Galaxy (MQN01 J004131.9-493704):

Credit: X-ray: NASA/CXC/Univ. Milano-Bicocca/W. Wang et al.; Infrared: NASA/ESA/CSA/STScI; Radio: ESO/NRAO/NAOJ/ALMA; Image processing: NASA/CXC/SAO/N. Wolk & P. Edmonds
Release Date: July 21, 2026
Scale: Image is about 20 arcsec (500,000 light-years) across.
Category:
Groups & Clusters of Galaxies, Quasars & Active Galaxies
Coordinates (J2000): RA 00h 41m 31.9s | Dec -49° 37´ 3.7"
Constellation: Phoenix
Observation Dates: 22 observations from July 2022 to Sept. 2023
Observation Time: 176 hours (7 days 8 hours)
Obs. ID: 25375, 25711-25730, 27667
Instrument:
ACIS
References: Wang W., et al., 2026, A&A, In press. DOI: 10.1051/0004-6361/202659351
Color Code: X-ray: blue; Infrared: red, green, and blue; Radio: red
Distance Estimate: About 11.7 billion light-years from Earth (z=3.25)


Sunday, August 02, 2026

Active Galaxy M77


M77 (NGC 1068) is a spiral galaxy located relatively close to our Milky Way. At its center lies a supermassive black hole about 10 million times the mass of the Sun. As enormous amounts of energy are released around the black hole, M77 is known as an active galaxy.

Because of its proximity, M77 has been extensively studied across the electromagnetic spectrum, from X-rays to radio waves, using various telescopes, including the Subaru Telescope and ALMA. Recently, observations with the Subaru Telescope's Hyper Suprime-Cam (HSC) have revealed evidence that M77 experienced a previously hidden minor merger with a low-mass satellite galaxy billions of years ago. Credit: NAOJ/SDSS/David Hogg/Michael Blanton. Image Processing: Ichi Tanaka)

Distance from Earth: 48 million light-years
Instrument: Hyper Suprime-Cam (HSC)

Relevant Links




A bright X-ray flare from a tidal disruption event

An artist's i,br,brmpression of a tidal disruption event in an active galaxy, in which a star is torn up by the gravitational force from a nearby supermassive.. black hole. Image credit: NASA/CXC/M.Weiss. -
Download Image



This week's significant event is from Maya Nunez, a rising sophomore at California State University, Long Beach, who is doing a Summer Undergraduate Research Fellowship (SURF) with the NuSTAR group at Caltech. Maya is working with Murray Brightman, a NuSTAR Staff Scientist, on transient X-ray sources—that is, X-ray sources that rapidly change in brightness, such as new X-ray sources that suddenly appear in the sky. X-ray transients can be caused by a wide variety of astrophysical processes, including Tidal Disruption Events (TDEs), which occur when a star passes too close to a supermassive black hole and is torn apart. Maya identified a bright X-ray flare from a galaxy hosting an actively accreting supermassive black hole, i.e., an active galaxy. Back in 2019, this galaxy had hosted the bright optical and infrared transient AT2019fdr, whose origin has been under much debate. AT2019fdr is hypothesized to be either a superluminous supernova, a flare from a supermassive black hole, or a TDE. Maya led an approved NuSTAR Director's Discretionary Time proposal to observe this source, and the observations, obtained last week, detected the source in the 3–8 keV NuSTAR energy band. The NuSTAR data provide a late-time X-ray detection from AT2019fdr which, in combination with recent literature, solidifies AT2019fdr’s categorization as a TDE as opposed to a superluminous supernova, since late-time X-ray emission is not common for such supernovae. A flare from a supermassive black hole is also less probable, but not completely ruled out. These new data and findings will expand our understanding of TDEs, particularly TDEs in galaxies with actively accreting supermassive black holes, which have not been as well-studied as TDEs in inactive or quiescent galaxies.



Saturday, August 01, 2026

NASA Webb Explores Family Tree of Newly Discovered Distant Objects

Scientists have proposed one pathway little red dots can follow as the universe matures based on their analysis of spiral galaxy WISEA J123635.56+621424.2, nicknamed the “Saguaro.” They suggest little red dots may be a temporary phase of highly active supermassive black holes. Credit Image: NASA, ESA, CSA, STScI, Pierluigi Rinaldi (Steward Observatory); Image Processing: Alyssa Pagan (STScI)




Scientists synthetically shifted the Saguaro, a lower-redshift spiral galaxy, to a higher redshift to find out how it would appear if it was in the early universe. Its compact red appearance suggests that little red dots are a phase of highly active supermassive black holes. Credit Image: NASA, ESA, CSA, Pierluigi Rinaldi (Steward Observatory); Image Processing: Alyssa Pagan (STScI); Illustration: Leah Hustak (STScI)


Since their discovery by NASA’s James Webb Space Telescope in 2022, little red dots (LRDs) have been the subject of great interest to astronomers. Understanding the nature of these extremely distant, compact red sources has been a puzzling scientific endeavor.

One popular theory is that little red dots are supermassive black holes known as active galactic nuclei, although they display characteristics unlike nearby active galactic nuclei. While they appear abundant at high redshift early in the universe, they rapidly decrease in number at lower redshifts. (The higher the redshift, the greater the distance the light has traveled across the universe.) This perplexing shift in number raises the question: What happens to little red dots as the universe matures?

A team of researchers led by Pierluigi Rinaldi of the University of Arizona’s Steward Observatory, now at the Space Telescope Science Institute (STScI) in Baltimore, has built upon their previous research in a new study published on July 29 in The Astrophysical Journal and proposed one pathway LRDs can follow as the universe ages: Though they may look like a unique galaxy population, these dots are affected by observational bias — some features just don’t appear at higher redshifts with current technology.

Their conclusions are based on their analysis of lower-redshift spiral galaxy WISEA J123635.56+621424.2, nicknamed the “Saguaro” for its prominent arms, like the cactus native to the Sonoran Desert in the Southwestern United States. A particularly intriguing feature of this redshift 2 galaxy, which corresponds to approximately 3.3 billion years after the big bang, is its little red dot-like center that is reminiscent of the ruby red fruit produced by the desert plant.

“Everything created in the early universe must evolve into something around us. We have had little idea of what LRDs become, but these results finally show us how to find their progeny,” said co-author George Rieke of the University of Arizona. Previous studies by NASA’s retired Spitzer Space Telescope provided the first hint of the dust-obscured, compact galaxy population in the lower-redshift universe that the Saguaro belongs to, paving the way for NASA’s Hubble and James Webb space telescopes’ high-resolution analyses.

“The Saguaro is important because it’s a prototypical little red dot and is one of the few we have found at lower redshift. It can be used to study the pathway of these dots throughout cosmic time,” said Fabio Pacucci of the Harvard-Smithsonian Center for Astrophysics in Cambridge, Massachusetts, and a co-author of the study.

Among the thousands of sources Rinaldi looked at across several surveys, the Saguaro was an example of the right place — with one of Webb’s microshutter arrays perfectly framed over the galaxy’s core to take spectroscopic data — and right time — being at lower redshift. To get as broad a view of the spiral galaxy as possible across the electromagnetic spectrum, the team used Hubble’s ultraviolet- and Webb’s infrared-imaging and spectroscopic archival data, respectively.

“Because the Saguaro is at lower redshift, we can see the very beautiful and bright host galaxy in high resolution and detail with Webb and Hubble,” said Zihao Wu of the Harvard-Smithsonian Center for Astrophysics, and a co-author of the study. “Webb’s observations can help us understand how the galaxy and its little red dot-like nucleus are connected.”

The team took multiple approaches to verify that the Saguaro’s compact red nucleus matched the characteristics of a prototypical LRD. In particular, the Hubble and Webb data showed that the nucleus is brighter in both ultraviolet and infrared light than in visible light, just like distant LRDs. The team also carefully disentangled the light emitted from the host and nucleus, and considered the presence of X-ray emission from the source.

Although the majority of little red dots at high redshift are not detectable in X-ray light, NASA’s Chandra X-ray Observatory detected weak X-ray emission from the Saguaro.

“What the X-ray light observations show is that this galaxy has an active galactic nucleus, and a very obscured one at that,” said Carys Gilbert, a Master’s student at the University of Cape Town in South Africa and a co-author of the paper. “It’s not only obscured but also X-ray weak. That kind of combination could explain the lack of X-ray emission that we see from all other little red dots. It fits the puzzle of little red dots nicely.”

In addition to demonstrating how the Saguaro’s central compact red source fits the little red dot criteria, the team synthetically shifted the galaxy to a higher redshift to explore how this galactic environment would appear to observers if located in the early universe. As expected, the Saguaro’s surrounding galactic structure fades so that only the bright, LRD-like source at its center is visible.

“Our theory is that most of these distant sources are affected by this cosmological effect, creating an observational bias,” said Rinaldi. “We simply are not able to sample the immediate environment of high-redshift little red dots because their surroundings are just too faint to be observed even with Webb. Little red dots are far more complex than just being a dot. They’re just the tip of the iceberg — of a supermassive black hole interacting with its nearby surroundings.”

Considering the Saguaro case study, the team believes that LRDs may not be a unique galaxy population, but instead a temporary phase of highly active supermassive black holes. Could this theory be the link between the populous high-redshift little red dots seen by Webb and the local universe?c While the Saguaro is not representative of all LRDs, the team proposes that this is one phase of these compact red sources. To build more confidence, further study of the Saguaro is necessary, as well as seeking other Saguaro-like galaxies at lower redshift. The team also intends to comb through Webb’s bountiful archival data to build a census of little red dots to study how their environments may impact how they mature. These different approaches are all geared to helping uncover the family tree of little red dots.

The James Webb Space Telescope is the world’s premier space science observatory. Webb is solving mysteries in our solar system, looking beyond to distant worlds around other stars, and probing the mysterious structures and origins of our universe and our place in it. Webb is an international program led by NASA with its partners, ESA (European Space Agency) and CSA (Canadian Space Agency).

The Hubble Space Telescope has been operating for over 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.




Details:

Last Updated: Jul 29, 2026
Location:
NASA Goddard Space Flight Center

Contact Media:

Laura Betz
NASA’s Goddard Space Flight Center
Greenbelt, Maryland

laura.e.betz@nasa.gov

Abigail Major
Space Telescope Science Institute
Baltimore, Maryland


Hannah Braun
Space Telescope Science Institute
Baltimore, Maryland



Friday, July 31, 2026

NASA’s Hubble Shows Star Formation in Andromeda Galaxy Winding Down

NASA’s Hubble Space Telescope has provided a detailed view of millions of stars in the Andromeda galaxy.Credit Image: NASA, ESA, Benjamin Williams (UWashington), Zhuo Chen (UWashington), L. Clifton Johnson (Northwestern); Image Processing: Joseph DePasquale (STScI)

This movie, created from an analysis of data from NASA’s Hubble Space Telescope, demonstrates how the rate of star formation in the Andromeda galaxy has declined over the past 500 million years. Credit Visualization: Tobin Wainer (UWashington); Image Processing: Joseph DePasquale (STScI); Video: NASA, ESA, STScI, Gregory Bacon (STScI)



A new study using data from NASA’s Hubble Space Telescope finds that star formation in the nearby Andromeda galaxy has undergone a 500-million-year decline, with an even steeper drop in the last 40 million years. Andromeda, a spiral galaxy comparable in size to our Milky Way, is close enough to be seen with the unaided eye from areas with dark skies. Located about 2.5 million light-years from Earth, practically our cosmic backyard, Andromeda offers an opportunity for astronomers to examine its stellar populations in detail, leading to better understanding of the past of galaxies like our own.

The results published Monday in The Astrophysical Journal.

To reach this conclusion, the researchers combined data from two Hubble surveys: the Panchromatic Hubble Andromeda Treasury and the Panchromatic Hubble Andromeda Southern Treasury. Together, these two surveys mapped two-thirds of the disk of Andromeda in ultra-sharp detail. In total, the team measured about 200 million individual stars across the galaxy, giving them a detailed picture of Andromeda’s past activity.

“We need to measure the individual stars because they are the fossil record of the galaxy’s formation. Hubble is the only telescope that can give you high enough spatial resolution over a large enough area to be able to do that in Andromeda,” said Ben Williams, astronomer at the University of Washington and a co-author on the study.

Massive stars are bluer and short-lived, while less massive stars are redder and longer-lived. As a result, areas that have experienced recent star formation tend to have a larger fraction of blue stars, while areas with less recent star formation typically have a redder population. The team divided the Andromeda images into thousands of squares, spanning 300 light-years on each side of the square, and determined the history of star formation within each parcel to gain a comprehensive view of the galaxy’s past.

Steady decline

Previous research showed the Andromeda galaxy experienced a dramatic burst of star formation about 2 billion years ago, likely due to a past interaction or merger with another galaxy. Since that time, star formation has been steadily declining.

Astronomers measure the rate of star formation in terms of the mass, or amount of gas and dust, converted into stars per year. The researchers calculated that, 500 million years ago, Andromeda formed stars at a rate of about one solar mass per year. However, the formation rate dropped to about half that by 40 million years ago. The current rate has plummeted even farther, to about one-fifth the mass of our Sun per year.

The team also examined whether that decline was consistent across the galaxy or concentrated in certain areas. They found that much of the recent star formation has occurred in a star-forming ring located about 32,000 light-years from the galaxy’s center. As a result, much of the decline they measure is driven by decreasing activity within that ring.

Rather than being the result of reduced material from which new stars can form, the decline is more likely to be a natural winding down from its previous, more active state.

“It’s just like after running a marathon, sometimes you’ve got to take a bit of a breather,” said Tobin Wainer, lead author, University of Washington.

Likely suspect

The team also investigated whether there was any connection between the decrease of activity in Andromeda and its proximity to satellite galaxy M32 (Messier 32). The M32 galaxy is separated from Andromeda by about 16,000 light-years in the plane of the sky; however, its 3D location in space is uncertain. As a result, astronomers are unsure if or when it might have interacted with Andromeda in the past.

“One of the major motivations for this program was to probe potential interactions between M32 and Andromeda’s disk,” said Zhuo Chen, co-author, University of Washington.

Survey data from the Panchromatic Hubble Andromeda Southern Treasury allowed the team to study the history of star formation in Andromeda near M32. They found that this area showed signs of decreased star formation compared with other regions. The timing of this decrease, which this study finds began roughly 60 million years ago, could help constrain when the M32 galaxy interacted with Andromeda’s disk.

“We can’t explicitly say that we are seeing a decrease in star formation because of M32. But it’s right there, and it’s definitely the most likely suspect,” said Wainer.

The team plans to continue analyzing the Hubble data and combine it with data from ground-based observatories to gain additional insights into the history of Andromeda.

“There’s a strong scientific value to this archival data. Andromeda is important because it’s a neighbor that is close enough that we can see it in great detail while also getting a global perspective,” said Raja GuhaThakurta, co-author, University of California Santa Cruz.

An even greater global perspective is likely to come from NASA’s Nancy Grace Roman Space Telescope after it launches as early as Sunday, Aug. 30. Roman’s gigantic field of view can cover at least 100 times as much area as Hubble at near-infrared wavelengths in a single observation. A newly approved Roman observing program will image the entirety of Andromeda’s disk and areas of its surrounding halo, allowing astronomers to measure hundreds of millions of stars and enabling groundbreaking new science.

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 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.




Details:

Last Updated: Jul 27, 2026
Editor: Andrea Gianopoulos
Location:
NASA Goddard Space Flight Center

Contact Media:

Claire Andreoli
NASA’s Goddard Space Flight Center
Greenbelt, Maryland

claire.andreoli@nasa.gov

Christine Pulliam
Space Telescope Science Institute
Baltimore, Maryland


Thursday, July 30, 2026

Astronomers find strongest evidence yet that Betelgeuse has a companion

PR Image eso2611a
VLT images of Betelgeuse and its companion

PR Image eso2611b
VLT image of Betelgeuse’s companion

PR Image eso2611c
Digitized Sky Survey image of Betelgeuse

PR Image eso2611d
Wide-field view of the region of the sky where Betelgeuse is located

PR Image eso2611e
The star Betelgeuse in the constellation of Orion



Videos

Clearest image ever of Betelgeuse’s companion | ESO News
PR Video eso2611a
Clearest image ever of Betelgeuse’s companion | ESO News

Zooming in on Betelgeuse’s companion
PR Video eso2611b
Zooming in on Betelgeuse’s companion



“The conclusion of a century-long quest”

At long last, astronomers have firm evidence that Betelgeuse, one of the most famous stars in the night sky, is not alone. Using the European Southern Observatory’s Very Large Telescope (ESO's VLT), a team led by French researcher Miguel Montargès obtained the clearest image ever of what likely is Betelgeuse B, the star orbiting Betelgeuse. “This is the conclusion of a century-long quest,” says Montargès.

We have shown that Betelgeuse is not single, it is accompanied by a faint stellar companion,” says Montargès, astronomer at the Observatoire de Paris - PSL, France, and lead author of the study published today in Astronomy & Astrophysics. Betelgeuse — a reddish star in the Orion constellation that is easily visible with the naked eye and is known to change in brightness — has been observed for millennia. But it still surprises astronomers.

I jumped from my chair when I saw the processed images,” recalls Montargès. Astronomers have looked for the potential companion, originally proposed to explain Betelgeuse’s brightness changes, for about a century, but without success. Two studies published in 2024 robustly predicted that in December that year, the companion would be furthest from Betelgeuse and hence easier to spot. Montargès and his team got to work, observing the star with ESO’s VLT in December 2024 and spending several months processing the data.

Honestly, I thought we did not have the sensitivity to detect Betelgeuse B as it was predicted,” explains Montargès. “Because it is more massive than predicted, we see it!” Originally thought to be about as massive as the Sun, the new observations reveal that Betelgeuse B has instead around two to three times the mass of the Sun. “The fact that we can still discover a nearby companion, more massive and brighter than the Sun, around such a well-studied star is remarkable,” says Montargès. “These are among the best moments in science: seeing something new, unexpected.”

Betelgeuse B was directly imaged, meaning the light from the star itself was detected, using the SPHERE instrument on ESO’s VLT in Chile’s Atacama Desert. While there was evidence for the existence of this companion star, including a possible direct detection with the Gemini North Telescope in Hawaiʻi, USA, this is the strongest evidence for, and clearest image yet of, Betelgeuse B. “It is remarkable to see how SPHERE and advanced post-processing techniques, originally developed to find exoplanets, also excel at detecting a companion around a massive, evolved star like Betelgeuse," says co-author Anthony Boccaletti, also an astronomer at the Observatoire de Paris.

To be certain that the companion is really there, we still need to observe it in one year on the other side of the star, but there is very little space left for doubt,” adds Montargès.

A few years back, Betelgeuse was the subject of attention from astronomers and non-astronomers alike when it visibly started dimming. As an evolved supergiant star, Betelgeuse is expected to die in a supernova explosion, and the dimming led some to speculate it could be about to explode. A group of astronomers led by Montargès studied the star with ESO’s VLT, finding it was instead obscured by a cloud of dust.

The potential detection of Betelgeuse B will prompt astronomers to investigate how the companion could affect Betelgeuse's anticipated supernova explosion. “The question is truly opened whether this companion is going to have an impact on the evolution of the red supergiant,” concludes Montargès.

Source: ESO/News



More information

At long last, astronomers have firm evidence that Betelgeuse, one of the most famous stars in the night sky, is not This research was presented in a paper titled “VLT/SPHERE images the candidate companion of Betelgeuse” to appear in Astronomy & Astrophysics.

The team is composed of M. Montargès (Laboratoire d'Instrumentation et de Recherche en Astrophysique, Observatoire de Paris, Université PSL, Sorbonne Université, Université Paris Cité, CY Cergy Paris Université, CNRS, France [LIRA]), A. Boccaletti (LIRA), O. Flasseur (Universite Claude Bernard Lyon 1, Centre de Recherche Astrophysique de Lyon UMR5574, ENS de Lyon, CNRS, France), A. de Koter (University of Amsterdam, Anton Pannekoek Institute for Astronomy, The Netherlands), J. Milli (Univ. Grenoble Alpes, CNRS, IPAG, France), P. Kervella (French-Chilean Laboratory for Astronomy, IRL 3386, CNRS and U. de Chile, Chile and LIRA), S. Ridgway (National Optical Astronomy Observatory, USA), E. Bordier (I. Physikalisches Institut der Universität zu Köln, Germany), E. Lagadec (Université Côte dAzur, Observatoire de la Côte dAzur, CNRS, Laboratoire Lagrange, France), A. K. Dupree (Center for Astrophysics-Harvard & Smithsonian, USA), F. Backs (Institute of Astronomy, KU Leuven, Belgium), T. Calderwood (American Association of Variable Star Observers, USA [AAVSO]), and P. Morgan (AAVSO).

The European Southern Observatory (ESO) enables scientists worldwide to discover the secrets of the Universe for the benefit of all. We design, build and operate world-class observatories on the ground — which astronomers use to tackle exciting questions and spread the fascination of astronomy — and promote international collaboration for astronomy. Established as an intergovernmental organisation in 1962, today ESO is supported by 16 Member States (Austria, Belgium, Czechia, Denmark, France, Finland, Germany, Ireland, Italy, the Netherlands, Poland, Portugal, Spain, Sweden, Switzerland and the United Kingdom), along with the host state of Chile and with Australia as a Strategic Partner. ESO’s headquarters and its visitor centre and lanetarium, the ESO Supernova, are located close to Munich in Germany, while the Chilean Atacama Desert, a marvellous place with unique conditions to observe the sky, hosts our telescopes. ESO operates three observing sites: La Silla, Paranal and Chajnantor. At Paranal, ESO operates the Very Large Telescope and its Very Large Telescope Interferometer, as well as survey telescopes such as VISTA. Also at Paranal, ESO will host and operate the south array of the Cherenkov Telescope Array Observatory, the world’s largest and most sensitive gamma-ray observatory. Together with international partners, ESO operates ALMA on Chajnantor, a facility that observes the skies in the millimetre and submillimetre range. At Cerro Armazones, near Paranal, we are building “the world’s biggest eye on the sky” — ESO’s Extremely Large Telescope. From our offices in Santiago, Chile we support our operations in the country and engage with Chilean partners and society.



Links



Contacts:

Miguel Montargès
LIRA, Observatoire de Paris, PSL University
Paris, France
Tel: +33 (0)1 45 07 76 95
Email:
miguel.montarges@observatoiredeparis.psl.eu

Anthony Boccaletti
LIRA, Observatoire de Paris, PSL University
Paris, France
Email:
anthony.boccaletti@observatoiredeparis.psl.eu

Bárbara Ferreira
ESO Media Manager
Garching bei München, Germany
Tel: +49 89 3200 6670
Cell: +49 151 241 664 00
Email:
press@eso.org


Wednesday, July 29, 2026

NAM 2026: Mystery 'bullets' seen in Milky Way's only helium nova

Image from HST showing the bipolar outflow of material ejected by the helium nova V445 Puppis. The progenitor binary star system is just about visible in the centre of the outflow. Also visible are the 'bullets' of gas that were shot out at either end of the outflow. Image taken in 2013 with the F502N filter on Hubble’s Wide Field Camera 3. Credit: John Mills / University of Warwick.
Licence type: Attribution (CC BY 4.0)



Mysterious high-speed "bullets" – clumps of possibly oxygen-rich gas travelling at up to 20 million miles per hour – have been discovered shooting out of the rarest stellar explosion in our galaxy.

They were spotted after a dust of debris surrounding the Milky Way's only known helium nova finally cleared after more than 20 years, revealing that an unusual stellar system was to blame for the extraordinary explosion.

But the origin of the "bullets" is an enigma that has left astronomers puzzled – nothing of their kind has ever been observed in other novae throughout the universe.

Using observations from multiple telescopes spanning two decades, John Mills, a researcher and PhD student at the University of Warwick, showed that V445 Puppis – which disappeared behind a cloud of its own debris at the turn of the century – consists of a white dwarf feeding on a rare helium star.

The discovery confirms for the first time the nature of the binary system responsible for the Milky Way's only currently confirmed helium nova, providing an unprecedented opportunity to study one of the rarest types of stellar explosions.

The research is being presented this week at the Royal Astronomical Society's National Astronomy Meeting in Birmingham.

A nova is a sudden, explosive outburst of energy in a binary star system. These occur when a white dwarf – the dense remnant left behind after a Sun-like star dies – pulls gas from the nearby companion star. As this material accumulates on the white dwarf's surface, rising temperatures and pressures trigger a runaway thermonuclear explosion.

"The explosion's outflow has now faded sufficiently for us to probe its origin, and so we can confirm that the star system does indeed consist of a white dwarf grabbing material off an extremely rare type of star called a helium star," said Mills.

Almost all known novae are fuelled by hydrogen-rich material. Helium novae are different. Instead, the white dwarf accretes hydrogen-poor gas that is rich in helium, making these eruptions exceptionally rare and poorly understood.

"V445 Puppis has long stood out amongst novae for its complete lack of hydrogen. How could such an event be completely devoid of the most abundant element in the universe?" said Mills.

V445 Puppis is the only known helium nova in the Milky Way, making it astronomers' sole opportunity currently to investigate this unusual class of explosion in detail.

When V445 Puppis erupted in late 2000, it launched an enormous bipolar outflow, initially observed in infrared stretching more than a trillion miles across space. The eruption created a thick disc of dust that completely obscured the star system. For more than two decades, astronomers could study the expanding debris but could not directly determine what kind of stars had produced it.

Finally, the veil of dust thinned enough for the hidden system to emerge.

Combining infrared observations from the European Southern Observatory's Very Large Telescope, optical imaging from the Hubble Space Telescope, long-term spectroscopy from the Southern African Large Telescope, and photometric observations from NASA's TESS mission, Mills was able to reveal the binary system in unprecedented detail.

The observations show that the white dwarf is accreting material from a helium star – a star that has lost its outer hydrogen envelope, probably through previous interactions with its companion. Helium stars are extremely rare: there are estimated to be only a few thousand stripped helium stars among the hundreds of billions of stars in the Milky Way.

Also embedded within the nova's outflowing debris cloud were high-speed "bullets" of possibly oxygen-rich gas.

"The origin of these 'bullets' is a mystery. We suspect that these originated post-outburst, but 'bullets' of this kind have not been observed in any other nova," said Mills.

He also found that the system is actively transferring material once again, indicating that it has resumed the process that eventually led to the original explosion. The observations suggest that the two stars orbit each other every 3.7 days, around twice as long as previously thought.

Understanding helium novae could have far-reaching implications.

Astronomers suspect that repeated helium-rich eruptions may represent one pathway towards producing Type Ia supernovae – some of the brightest explosions in the universe.

"Because these supernovae shine with remarkably consistent brightness, they are special in their use as 'standard candles', used to measure distances to galaxies," explained Mills.

Type Ia supernovae have been used in Nobel Prize-winning research to show that the universe is accelerating.

"The culprits behind this galactic eruption have been an enduring mystery over the past 25 years, which is why it is very exciting to confirm that this helium nova was the result of a helium star accreting onto a white dwarf. I look forward to seeing how this result may help us uncover what powers other similar hydrogen-poor astronomical explosions, such as the famous Type Ia supernovae," said Mills.

Although many questions remain about whether helium novae can ultimately produce Type Ia supernovae, V445 Puppis now provides the clearest laboratory yet for testing that possibility.




Media contacts:

Sam Tonkin
Royal Astronomical Society
Mob: +44 (0)7802 877 700

press@ras.ac.uk

Dr Robert Massey
Royal Astronomical Society
Mob: +44 (0)7802 877 699

press@ras.ac.uk

Megan Eaves
Royal Astronomical Society

press@ras.ac.uk



Science contacts:

John Mills
University of Warwick

john.n.s.mills@warwick.ac.uk



Images & video

Image 1: Image from HST showing the bipolar outflow of material ejected by the helium nova V445 Puppis. The progenitor binary star system is just about visible in the centre of the outflow. Also visible are the 'bullets' of gas that were shot out at either end of the outflow. Image taken in 2013 with the F502N filter on Hubble’s Wide Field Camera 3. Credit: John Mills / University of Warwick

https://drive.google.com/file/d/1s_FzZznBYqTmy9Fle9Uh9gTL5n63jByG/view?usp=drive_link

Image 2: Image from HST showing the bipolar outflow of material ejected by the helium nova V445 Puppis. The progenitor binary star system is just about visible in the centre of the outflow. Also visible are the 'bullets' of gas that were shot out at either end of the outflow. Image taken in 2015 with the F502N filter on Hubble’s Wide Field Camera 3. Credit: John Mills / University of Warwick

https://drive.google.com/file/d/1bRyvPUEe3UX_Q4nTgsrc0uUw54bdBl3e/view?usp=drive_link

Image 3: Image from HST showing the bipolar outflow of material ejected by the helium nova V445 Puppis. The progenitor binary star system is just about visible in the centre of the outflow. Image taken in 2013 with the F680N filter on Hubble’s Wide Field Camera 3 Credit: John Mills / University of Warwick

https://drive.google.com/file/d/1EFipX6nbZdkIISwUdTViUpiSQpZd-Jq_/view?usp=drive_link

Image 4: Image from HST showing the bipolar outflow of material ejected by the helium nova V445 Puppis. The progenitor binary star system is just about visible in the centre of the outflow. Image taken in 2015 with the F680N filter on Hubble’s Wide Field Camera 3. Credit: John Mills / University of Warwick

https://drive.google.com/file/d/1qytv64wVZKm3uNfz3BOw1e6BOmVnIrQ8/view?usp=drive_link

Image 5:Image from HST showing the bipolar outflow of material ejected by the helium nova V445 Puppis. The progenitor binary star system is just about visible in the centre of the outflow. Image taken in 2013 with the FQ727N filter on Hubble’s Wide Field Camera 3. Credit: John Mills / University of Warwick

https://drive.google.com/file/d/1IQcfH_q-WXbBtIsURJ_PQ5c-9umD6Gwi/view?usp=sharing

Image 6:Image from HST showing the bipolar outflow of material ejected by the helium nova V445 Puppis. The progenitor binary star system is just about visible in the centre of the outflow. Image taken in 2015 with the FQ727N filter on Hubble’s Wide Field Camera 3. Credit: John Mills / University of Warwick

https://drive.google.com/file/d/1NSX8hx-2GNqI__IaOTXrJsQd4MX3uW5-/view?usp=drive_link



Further information

The talk 'Long-term evolution of the helium nova V445 Puppis and the emergence of the underlying binary' will take place at NAM2026 at 09:45 BST on Wednesday 22 July 2026 in room TLC118/119. Find out more at: https://uobevents-national-astronomy-meeting-2026.eventsairsite.com/block-schedule.



Notes for editors

About the Royal Astronomical Society

The Royal Astronomical Society (RAS), founded in 1820, encourages and promotes the study of astronomy, solar-system science, geophysics and closely related branches of science.

The RAS organises scientific meetings, publishes international research journals, recognises outstanding achievements by the award of medals and prizes, maintains an extensive library, supports education through grants and outreach activities and represents UK astronomy nationally and internationally. Its more than 4,000 members (Fellows), a third based overseas, include scientific researchers in universities, observatories and laboratories as well as historians of astronomy and others.

The RAS accepts papers for its journals based on the principle of successful peer review, following which experts on the Editorial Boards accept the papers for publication. The Society issues press releases based on a similar principle, but the organisations and scientists concerned have overall responsibility for their content.

Keep up with the RAS on Instagram,Bluesky, LinkedIn, Facebook and YouTube.

Download the RAS Supermassive podcast



About the Science and Technology Facilities Council

The Science and Technology Facilities Council (STFC), part of UK Research and Innovation (UKRI), is the UK’s largest public funder of research into astronomy and astrophysics, particle and nuclear physics, and space science. We operate five national laboratories across the UK which, supported by a network of additional research facilities, increase our understanding of the world around us and develop innovative technologies in response to pressing scientific and societal issues. We also facilitate UK involvement in a number of international research activities including the ELT, CERN, the James Webb Space Telescope and the Square Kilometre Array Observatory.

linkedin.com/company/stfc

ukri.org/councils/stfc



About The University of Birmingham

The University of Birmingham is ranked amongst the world's top 100 institutions. Its work brings people from across the world to Birmingham, including researchers, educators and more than 40,000 students from over 150 countries.

England’s first civic university, the University of Birmingham, is proud to be rooted in one of the most dynamic and diverse cities in the country. A member of the Russell Group and a founding member of the Universitas 21 global network of research universities, the University of Birmingham has been changing the way the world works for more than a century.

The University of Birmingham is committed to achieving operational net zero carbon. It is seeking to change society and the environment positively, and use its research and education to make a major global contribution to the UN Sustainable Development Goals. Find out more about our approach to sustainability.

Submitted by Sam Tonkin on Wed, 22/07/2026 - 00:01



Tuesday, July 28, 2026

Could Colliding Stellar Winds Power Cosmic Rays?

This composite image shows in the RCW 38 stellar cluster in different wavelengths. In red are the X-rays from
young, hot stars and extended hot gas as imaged by Chandra, embedded in a molecular cloud (green) imaged in infrared by the ISAAC camera, and a ring of radio emission (blue) detected by ATCA from a region of gas heated by the radiation from the hot stars in the cluster. Image credit: NASA/CXC/CfA/S.Wolk et al./ISAAC/VLT/ATCA -
Download Image

During the past week, NuSTAR observed RCW 38, a gigantic star-forming region full of young massive stars, each dozens of times heavier than the Sun. These stars blast out powerful winds—streams of hot, ionized gas—at speeds of up to 2000 km/s, releasing energy over their lifetimes comparable to a supernova explosion. Where many such stars are packed together, their winds collide with each other and create powerful shocks, which can accelerate atomic particles to extremely high energies—a possible source of cosmic rays. RCW 38 is especially interesting: it is compact, young (less than a million years old), and apparently free of any supernova explosions. This makes it a rare place to study the effects of stellar winds alone, without other contaminants. Past observations detected X-rays from RCW 38, but were not able to distinguish whether they came from hot gas or accelerated particles. NuSTAR's unique ability to focus high-energy X-rays will help tell the two apart, and the first NuSTAR observation of  RCW 38 may be a step toward that answer.

Author: Haruki Kuramoto (PhD Student, University of Osaka, Japan)



Monday, July 27, 2026

New ‘exomoon’ detection challenges cosmic labels

PR Image eso2610a
Artist’s impression of CD-35 2722, a system with a moon-like object

PR Image eso2610b
Artist’s impression of the CD-35 2722 system

PR Image eso2610c
Wide-field view around the CD-35 2722 system



Videos

New 'exomoon' detection challenges cosmic labels | ESO News
PR Video eso2610a
New 'exomoon' detection challenges cosmic labels | ESO News

Animation of CD-35 2722, a system with a moon-like object
PR Video eso2610b
Animation of CD-35 2722, a system with a moon-like object

De.tecting a moon-like object in the CD-35 2722 system
PR Video eso2610c
Detecting a moon-like object in the CD-35 2722 system



Observations made with the European Southern Observatory’s Very Large Telescope (ESO’s VLT) have revealed evidence for a moon-like object in the CD-35 2722 system. Unlike moons in our Solar System, the newly found object does not orbit a planet, raising questions about what to name it. Instead, it circles a brown dwarf, an object larger than a planet, that orbits the CD-35 2722 star. If confirmed, this could be the first ‘moon’ discovered outside our Solar System.

Kevin Hoy, an ESO student in Chile and lead author of the study published today in Nature, describes the system he spent months analysing as “super weird” compared to our own. The biggest and most massive object in this young system is the star CD-35 2722, which has about half the mass of the Sun. The star is being orbited by a brown dwarf, an object too massive to be a planet but too small to be a star. The newly discovered object orbits this brown dwarf.

This system is somewhat hard to define using Solar-System-based words like ‘planet’ and ‘moon’,” states Hoy, who is also affiliated with the Universidad Diego Portales and the Millennium Nucleus of Young Exoplanets and their Moons (YEMS) in Chile. The new object, which the team call an exosatellite, is at least as massive as Jupiter while the brown dwarf has more than 30 times the mass of Jupiter. “The exosatellite is clearly massive enough to be a planet, but it does not orbit a star, though it orbits an object that orbits a star," says Hoy."Being the third wheel in this system makes us want to call it a moon, even if it is nothing like the small, rocky moons we have in our system.”

This exosatellite or ‘exomoon’, a natural satellite outside our Solar System [1], is difficult to label, given the differences in this system compared to our own. Alice Zurlo, YEMS Director and collaborator on the study explains: “The satellite we report is a giant gaseous body orbiting a highly massive companion, itself several times the mass of Jupiter.”

We have a clear delineation between the planets and the Sun in the Solar System, so defining things like moons is simple. In the CD-35 2722 system, where we are blurring the lines between stars, planets, and moons, the whole thing becomes more complicated to describe,” adds Zurlo, who is also an astrophysicist at Universidad Diego Portales.

Regardless of what to call this object, astronomers have been trying to detect satellites outside our Solar System for years, but none has yet been confidently detected. Therefore, despite the over 6000 exoplanets discovered to date, only a few exomoon candidates have been spotted and the evidence to support them is limited. Just a few months ago, a team led by Quentin Kral reported on observations with ESO’s Very Large Telescope Interferometer in the HD 206893 star system, which revealed hints of a satellite, but no firm detection.

For the CD-35 2722 observations, Hoy, Zurlo and their team used the CRIRES+ instrument on ESO’s VLT, employing the method that was used to find the first exoplanet around a Sun-like star. They applied this radial velocity method to detect small wobbles on the brown dwarf caused by the object orbiting it, finding what the team believe to be strong evidence for this ‘moon’. “As exotic as it is, this system is truly unique and represents a breakthrough: the first plausible detection of an exosatellite,” says Zurlo.

Beyond the excitement of discovering new types of objects, detecting satellites in other planetary systems can help us understand how diverse their formation and evolution might be. With its 39-metre mirror and advanced instrumentation, ESO’s upcoming Extremely Large Telescope (ELT) will allow astronomers to detect smaller exomoons. Discoveries with the ELT will make us further reconsider how we label planetary objects from systems different from our own.

Source: ESO/News



Notes

[1] A satellite is an object that orbits another object and it can be natural (like our own moon) or artificial (like a spacecraft). An exosatellite is a satellite outside our Solar System. An exomoon is generally considered to be a natural satellite orbiting a planet or another object outside the Solar System, though there is no officially accepted definition for exomoon.



More information

This research was presented in a paper titled “Planetary-Mass Exosatellite Detected Around a Star’s Substellar Companion” to appear in Nature (doi:10.1038/s41586-026-10751-w).

The team is composed of K. Hoy (Instituto de Estudios Astrofísicos, Facultad de Ingeniería y Ciencias, Universidad Diego Portales, Chile [Diego Portales]; European Southern Observatory, Chile [ESO Chile]; Millennium Nucleus on Young Exoplanets and their Moons, Chile [YEMS]), A. Zurlo (Diego Portales; YEMS), P. A. Peña R. (Diego Portales; Centro de Astrofísica y Tecnologías Afines, Chile [CATA]), J. Köhler (TLS Tautenburg, Germany), S. Desidera (INAF Osservatorio Astronomico di Padova, Italy [INAF Padova]), R. Gratton (INAF Padova), C. Lazzoni (INAF Padova; YEMS), S. Petrus (NASA Goddard Space Flight Center, USA; YEMS), F. Rodler (ESO Chile), J. Smoker (ESO Chile), V. D’Orazi (Dipartimento di Fisica, Università degli Studi di Roma Tor Vergata, Italy; INAF Osservatorio Astronomico di Roma, Italy), I. Carleo (INAF Padova), I. Giovannini (Dipartimento di Fisica e Astronomia, Università degli Studi di Padova, Italy; Diego Portales; INAF Padova; YEMS).

The European Southern Observatory (ESO) enables scientists worldwide to discover the secrets of the Universe for the benefit of all. We design, build and operate world-class observatories on the ground — which astronomers use to tackle exciting questions and spread the fascination of astronomy — and promote international collaboration for astronomy. Established as an intergovernmental organisation in 1962, today ESO is supported by 16 Member States (Austria, Belgium, Czechia, Denmark, France, Finland, Germany, Ireland, Italy, the Netherlands, Poland, Portugal, Spain, Sweden, Switzerland and the United Kingdom), along with the host state of Chile and with Australia as a Strategic Partner. ESO’s headquarters and its visitor centre and planetarium, the ESO Supernova, are located close to Munich in Germany, while the Chilean Atacama Desert, a marvellous place with unique conditions to observe the sky, hosts our telescopes. ESO operates three observing sites: La Silla, Paranal and Chajnantor. At Paranal, ESO operates the Very Large Telescope and its Very Large Telescope Interferometer, as well as survey telescopes such as VISTA. Also at Paranal, ESO will host and operate the south array of the Cherenkov Telescope Array Observatory, the world’s largest and most sensitive gamma-ray observatory. Together with international partners, ESO operates ALMA on Chajnantor, a facility that observes the skies in the millimetre and submillimetre range. At Cerro Armazones, near Paranal, we are building “the world’s biggest eye on the sky” — ESO’s Extremely Large Telescope. From our offices in Santiago, Chile we support our operations in the country and engage with Chilean partners and society.



Links



Contacts:

Kevin Hoy
European Southern Observatory (ESO) and Universidad Diego Portales
Santiago, Chile
Email:
Kevin.Hoy@eso.org, kevin.hoy@mail.udp.cl

Alice Zurlo
Universidad Diego Portales
Santiago, Chile
Tel: +56 22138153
Email:
alice.zurlo@mail.udp.cl

Bárbara Ferreira
ESO Media Manager
Garching bei München, Germany
Tel: +49 89 3200 6670
Cell: +49 151 241 664 00
Email:
press@eso.org