Friday, August 21, 2026

Milky Way's fastest star orbits our supermassive black hole so closely it feels its spin

PR Image eso2612a
VLT images of the S301 star orbiting Sagittarius A*

PR Image eso2612b
VLT images of the S301 star orbiting Sagittarius A* (square layout)

PR Image eso2612c
VLT images of S301 and other S-stars orbiting Sagittarius A*

PR Image eso2612d
Illustration of the Lense-Thirring effect

PR Image eso2612e
Effect of a spinning black hole on the orbit of the S301 star

PR Image eso2612f
Wide-field view of the centre of the Milky Way

PR Image eso2612g
Sagittarius A* in the constellation of Sagittarius

PR Image eso2612h
New look at the stars around the Milky Way's centre


PR Image eso2612i
Four lasers for the VLTI



Videos

Does the Milky Way central black hole rotate? This star could tell us | ESO Chasing Starlight
PR Video eso2612a
Does the Milky Way central black hole rotate? This star could tell us | ESO Chasing Starlight

Time-lapse of the S301 star orbiting Sagittarius A*
PR Video eso2612b
Time-lapse of the S301 star orbiting Sagittarius A*

Effect of a spinning black hole on the orbit of the S301 star
PR Video eso2612c
Effect of a spinning black hole on the orbit of the S301 star

Animation of the Lense-Thirring effect

PR Video eso2612d
Animation of the Lense-Thirring effect

Disruption of a binary star close to a black hole
PR Video eso2612e
Disruption of a binary star close to a black hole



Astronomers have discovered the fastest known star in our galaxy, the Milky Way, orbiting the black hole at its centre. The star, named S301, was detected with the European Southern Observatory’s Very Large Telescope Interferometer (ESO’s VLTI) and reaches speeds of 25 000 km/s as it travels around the four-million-Solar-mass black hole. It comes closer to it than any other observed before, so close that it feels the effects of the black hole’s rotation.

Decades carefully tracking stars orbiting our galaxy’s central black hole, Sagittarius A*, have led to this breakthrough discovery of a very promising star. Because it orbits so close to Sagittarius A*, S301 opens a new window to the fundamental properties of spacetime in this extreme black-hole environment,” says Nobel Prize winner Reinhard Genzel, Director at the Max Planck Institute for Extraterrestrial Physics (MPE) in Garching, Germany, and founding member of the collaboration that made the new observations.

What is special about this star is that it’s orbiting Sagittarius A* on a very tight orbit, taking just 8.7 years to complete it, and is approaching the black hole at a mere 12 times the distance of Earth to the Sun. That is unprecedented,” says Felix Mang, PhD student at MPE and author of the study published today in Nature

During its closest passage to the black hole, the star travels at around 25 000 kilometres per second — 100 000 times faster than a commercial plane, or over 8% of the speed of light — making it the record holder for the fastest star in the Milky Way. S301 also comes closer to Sagittarius A* than any other star observed so far, approaching the black hole at around the distance of Saturn to the Sun. [1] Because S301 comes so close to Sagittarius A*, it is the first star known that could be used to directly measure the rotation of a black hole.

Like most things in our Universe, astronomers predict that Sagittarius A* spins. According to Einstein’s general theory of relativity, a spinning black hole drags spacetime along with it and twists it, which impacts the orbits of surrounding stars. The effect is felt more strongly for objects orbiting fast-rotating black holes at close range.

With this star we hope to measure, within the next 10 years, the spin of the black hole," says Mang. MPE researcher Stefan Gillessen, who also had a leading role in the new study, adds: “For the first time, we would actually be able to measure very directly the spin of a massive black hole, which would be a key test of Einstein’s theory.” Juan Osorno, an astronomer at LIRA Observatoire de Paris–PSL, France, who also had a key role in the study adds: “Without this star, we would need to measure the motion of other stars for several more decades to get anywhere close to measuring the spin of the black hole.”

Finding S301, which appears two billion times fainter than Betelgeuse (the orange star in the constellation Orion) in the sky, was no easy feat. The team used the VLTI, a facility at ESO’s Paranal Observatory in Chile and its GRAVITY instrument, now known as GRAVITY+ following an infrastructure upgrade. [2] The VLTI’s superpower lies in its ability to combine the light from four 8-metre telescopes to create a ‘virtual’ telescope with 15 times the spatial resolution of a single 8-metre telescope.

Worldwide, Paranal is the only place where you can do this type of observations because no other observatory in the world has four 8-metre telescopes that can act together as an interferometer,” says co-author Frank Eisenhauer, GRAVITY+ Principal Investigator and Director at MPE.

With GRAVITY, and later with GRAVITY+, the team managed to catch a first glimpse of the new star in spring 2023 and have followed it since to constrain its orbit. They could also trace S301’s orbital history back to 2017, finding that it last made its closest approach to the central black hole in early 2023. S301’s orbital properties, and the fact that stars cannot form so close to a massive black hole, indicate that the star was likely part of a binary pair that was torn apart by the tidal forces of Sagittarius A*. In the process, S301 became trapped by the black hole’s gravity while its companion star was kicked out with high velocity, most likely enough to leave the galaxy altogether.

Follow-up observations with GRAVITY+, and with the MICADO instrument on ESO’s upcoming Extremely Large Telescope (ELT), will be crucial for tracing S301’s path over the next decade, as it makes its next closest passage in 2031. Observing at least two complete orbits of S301 allows its trajectory to be constrained with high enough precision to enable the team to directly determine the spin of Sagittarius A* for the first time. “That would be a dream come true,” says Mang.

Source: ESO/News



Notes

[1] At its closest approach, the star passes just 1.78 billion km from the black hole, around 12 times the Sun-Earth distance or just 20% larger than the Sun-Saturn distance.

[2] Following decades mapping stars orbiting the Milky Way’s centre using different ESO facilities, the team has been using the GRAVITY instrument on the VLTI for this purpose interferometer, called GRAVITY+, has been implemented gradually over the last few years, and has allowed them to find increasingly fainter objects.



More information

This research was presented in a GRAVITY+ Collaboration paper titled “Discovery of a star sensitive to the spin of Sgr A*” to appear in Nature (doi: 10.1038/s41586-026-10894-w).

The team is composed of: K. Abd El Dayem (LIRA, Observatoire de Paris, Universitê PSL, CNRS, Sorbonne Université, Université de Paris, France), R. Abuter (European Southern Observatory, Garching, Germany [ESO Germany]), N. Aimar (Faculdade de Engenharia, Universidade do Porto, Portugal [FEUP], and Centro de Astrofísica e Gravitação, IST, Universidade de Lisboa, Portugal [CENTRA]), P. Amaro-Seoane (Universitat Politècnica de València, Spain and Max Planck Institute for Extraterrestrial Physics, Garching, Germany [MPE]), A. Berdeu (ESO and LIRA), J. P. Berger (Univ. Grenoble Alpes, CNRS, Grenoble, France [IPAG]), G. Bourdarot (MPE), W. Brandner (Max Planck Institute for Astronomy, Heidelberg, Germany [MPIA]), A. Burkert (University Observatory, Faculty of Physics, Ludwig-Maximilians-Universität, Munich, Germany [LMU] and MPE), D. Calderon (Max Planck Institute for Astrophysics [MPA], Garching, Germany), C. Correia (FEUP and CENTRA), J. Cuadra (Universidad Adolfo Ibañez, Viña del Mar, Chile and Millennium Nucleus on Transversal Research and Technology to Explore Supermassive Black Holes [TITANS], Chile), R. Davies (MPE), D. Defrère (Institute of Astronomy, KU Leuven, Belgium [KU Leuven]), L. Delit (LIRA), A. Drescher (IPAG and MPE), F. Eisenhauer (MPE and Department of Physics, Technical University of Munich, Germany [TUM]), L. Esteras Otal (ESO Germany), M. Fabricius (MPE), H. Feuchtgruber (MPE), N. M. Förster Schreiber (MPE), A. Foschi (LIRA), P. Garcia (FEUP and CENTRA), R. Garcia Lopez (School of Physics, University College Dublin, Ireland), A. Generozov Astronomy Dept. and Oden Institute, University of Texas at Austin, USA), R. Genzel (MPE and Departments of Physics Astronomy, Le Conte Hall, University of California, Berkeley, USA) S. Gillessen (MPE), F. Gonté (ESO Germany), X. Haubois (European Southern Observatory, Santiago, Chile [ESO Chile]), S. F. Hönig (School of Physics & Astronomy, University of Southampton, United Kingdom [Southampton]), M. Houllé (IPAG), S. Joharle (MPE), A. Kaufer (ESO Chile), J. Kammerer (ESO Germany), P. Kervella (LIRA), J. Kolb (ESO Germany), L. Kreidberg (MPIA), R. Laugier (KU Leuven), S. Lacour (LIRA), O. Lai (Université Côte d’Azur, Observatoire de la Côte d’Azur, CNRS, Laboratoire Lagrange [Lagrange]), J.-B. Le Bouquin (IPAG), J. Leftley (Southampton) B. Lopez (Lagrange), D. Lutz (MPE), F. Mang (MPE and TUM), A. Mérand (ESO Germany), F. Millour (Lagrange), M. Montargès (LIRA), N. Morujão (FEUP and CENTRA), H. Nowacki (Lagrange), M. Nowak (LIRA), S. Oberti (ESO Germany), J. Osorno (LIRA), T. Ott (MPE), T. Paumard (LIRA), C. Paladini (ESO Chile), H. B. Perets (Physics department, Technion - Israel Institute of Technology, Haifa, Israel), K. Perraut (IPAG), G. Perrin (LIRA), R. Petrov (Lagrange) P. O. Petrucci (IPAG), T. Piran (Racah Institute of Physics, The Hebrew University of Jerusalem, Israel [Racah]), N. Pourré (IPAG), S. Rabien (MPE), D. C. Ribeiro (MPE), S.Robbe-Dubois (Lagrange), M. Sadun Bordoni (MPE), J. Sánchez Bermúdez (Instituto de Astronomía, National Autonomous University of Mexico, Mexico), D. Santos (MPE), R. Sari (Racah) J. Sauter (MPIA), S. Scheithauer (MPIA), J. Scigliuto (Lagrange) J. Shangguan (MPE), T. T. Shimizu (MPE), F. Soulez (Univ. Lyon, Univ. Lyon 1, ENS de Lyon, CNRS, Centre de Recherche Astrophysique de Lyon, France), J. Stadler (LMU), C. Straubmeier (1st Institute of Physics, University of Cologne, Germany), E. Sturm (MPE), M. Subroweit (Cologne), C. Sykes (Southampton), L. J. Tacconi (MPE), P. Thévenet (LIRA), I. Urso (LIRA), F. Vincent (LIRA), J. Woillez (ESO Germany), G. Zins (ESO Chile).

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:

Felix Mang
Max Planck Institute for Extraterrestrial Physics
Garching bei München, Germany
Tel: +49 89 30000-3713
Email:
fmang@mpe.mpg.de

Stefan Gillessen
Max Planck Institute for Extraterrestrial Physics
Garching bei München, Germany
Tel: +49 89 30000 3839
Cell: +49 176 99 66 41 39
Email:
ste@mpe.mpg.de

Juan Osorno
Laboratory for Instrumentation and Research in Astrophysics (LIRA), Observatoire de Paris, PSL University
Meudon, France
Email:
Juan.Osorno@observatoiredeparis.psl.eu


Director, Max Planck Institute for Extraterrestrial Physics
Garching bei München, Germany
Tel: +49 89 30000-3100
Email:
eisenhau@mpe.mpg.de

Reinhard Genzel
Director, Max Planck Institute for Extraterrestrial Physics
Garching bei München, Germany
Tel: +49 89 30000 3281
Email:
genzel@mpe.mpg.de

Xavier Haubois (for questions on VLTI)
European Southern Observatory
Paranal Observatory, Atacama Desert, Chile
Email:
Xavier.Haubois@eso.org

Bárbara Ferreira
ESO Media Manager
Garching bei München, Germany
Tel: +49 89 3200 6670 (unavailable before 17 August)
Cell: +49 151 241 664 00 (unavailable before 17 August)
Email:
press@eso.org


Thursday, August 20, 2026

Even Near a Supermassive Black Hole, Stars Enrich the Interstellar Medium

The JWST used NIRCam and MIRI to capture this region near the Milky Way's SMBH. The star IRS 3 is in this field. It's an AGB star, and researchers are studying it to investigate the connection between material cast off from these types of stars and the interstellar medium. The researchers were surprised to find water and dust here, even though powerful radiation from the SMBH inhibit them. Image Credit: ESA/Webb, NASA & CSA, F. Peißker, J. Lu, F. Yusef-Zadeh, N. B. Sabha, C. Chan. Licence: CC BY 4.0 INT or ESA Standard Licence

The Milky Way's galactic center is dominated by its supermassive black hole (SMBH) Sagittarius A-star (Sgr. A*). It doesn't just dominate with its massive gravititional pull. It also overpowers the region with radiation that should destroy dust and other molecules.

New research shows that water and dust exist around a star near Sgr. A*. These materials were shed from a star near the SMBH, and they exist there despite the overwhelming radiation coming from the SMBH.

The star is named IRS 3, and it's a highly-evolved AGB star only about 0.55 light years from the massive SMBH. The star has about 6 solar masses and is about 72 million years old. Astronomers are interested in the connection between these stars and the interstellar medium (ISM). AGB stars can lose up to 70% of their mass during this phase, and that material has a powerful effect on the composition of the ISM.

In new research published in Astronomy and Astrophysics, astronomers used the JWST to observe IRS 3 and the area around it. Their work is titled "Dust production in the harsh environment of Sgr A*," and the lead author is Florian Peißker. Peißker is a post-doctoral researcher in the Institute of Physics at the University of Cologne in Germany.

"Studies of the interstellar medium (ISM) have frequently revealed signatures of the dust produced in the envelopes of asymptotic giant branch (AGB) stars, demonstrating a connection between the dust composition of the ISM and that of AGB stellar envelopes," the researchers write. "Investigating this relationship in the extreme, radiation-dominated environment surrounding Sgr A*, the center of our own galaxy, reveals how such conditions might influence dust composition and the recycling of material in galactic centers."

The Milky Way's galactic center is known for the intense radiation coming from Sgr. A*, including powerful x-ray flaring and gamma radiation. The researchers used the JWST's NIRCam to image the region, and its Mid-Infrared Instrument (MIRI) and its medium resolution spectrometer to study IRS3. "We aim to conduct a comprehensive spectral analysis to more tightly constrain the dust composition and line-emitting species within the envelope of IRS 3 in the immediate vicinity of Sgr A*," the researchers write.

This is a mid-infrared image of the region around IRS 3 from the research. A yellow × marks the SMBH Sgr A, and IRS 3 is labelled inside its callout box. The distance between Sgr A* and IRS 3 is about 0.17 parsecs. "The emission from IRS 3 is dominated by the extended envelope of the AGB star," the authors explain. Image Credit: Peißker et al. 2026. A&A.*

To their surprise, they found that alumina and amorphous silicates are present in the dust. They also found water, another surprise. "For the first time, we find clear signs of water in the envelope of IRS 3," they write.

“Galactic centres are among the most extreme environments, so understanding whether stars can continue enriching their surroundings there is an important question,” said lead author Peißker in a press release. “With Webb, we can directly observe how stars behave under these conditions and see that dust production remains remarkably resilient.”

Astronomers' interest in IRS 3 goes back decades. It's one of the brightest mid-IR sources in the galactic center, and the researchers describe it as the "most prominent AGB star within the inner parsec of the Milky Way." The star sits inside a massive gaseous cocoon that extends an estimate 10,000 astronomical units. Based on the JWST's spectroscopic data, the star's dusty envelope has a shell-like distribution shaped by a temperature gradient. The temperature changes from approximately 1200 Kelvin close to the star, to about 100 Kelvin in the outer regions.

AGB stars shape the ISM's composition with the types of dust they inject into it. "Analysis of the MIRI MRS spectrum reveals the presence of amorphous silicates, Al2O3, and H2O," the authors write.

But the amount of dust matters, too, and the researchers studied the star's bow shock to determine IRS 3's mass loss rate. They determined that it's shedding about 20 Earth masses per year, or one Earth mass every 18 days. They say that this is "characteristic of the superwind phase of an O-rich AGB star."

This image from the research shows the estimated stand-off distance between the IRS 3 and its bow shock. "The stand-off distance is a measure of the ambient ISM and the ram pressure of the star," the authors explain. Understanding this distance helps the researchers determine the star's mass loss rate. In this image, the green x marks the position of IRS 3 and the green circle marks the apex of the bow shock. Image Credit: Peißker et al. 2026. A&A.


“This discovery was possible because of Webb’s highly capable infrared instruments,” said Macarena Garcia Marin of ESA, a co-author of the study and PI of the MICONIC programme. “This is the first time a continuous mid-infrared spectrum has been collected for this star, allowing us to detect the features from the silicate dust and uncover the star’s true chemical identity.”

“The detection of water is especially exciting because it shows that molecular material can survive in an environment dominated by intense radiation,” said Macarena. “This tells us that even close to a supermassive black hole, stars can continue contributing material back into their surroundings.”

By Evan Gough - August 18, 2026 08:03 PM UTC | Stars

Source: Universe Today



Evan Gough

Evan Gough is a science-loving guy with no formal education who loves Earth, forests, hiking, and heavy music. He's guided by Carl Sagan's quote: "Understanding is a kind of ecstasy."


Wednesday, August 19, 2026

Hubble Solves Merger Mystery From Milky Way’s Early Years

LKH Milky Way Merger Illustration
About 12 billion years ago, a dwarf galaxy known as LKH collided with a young Milky Way and merged with it. This artist’s concept portrays that collision. NASA’s Hubble Space Telescope uncovered definitive evidence of this collision by studying globular star clusters. Illustration: NASA, ESA, Joseph Olmsted (STScI)



Our home galaxy, the Milky Way, grew to its current size in part by consuming smaller galaxies. Now, new data from NASA’s Hubble Space Telescope shows definitive evidence of a dwarf galaxy merging with the young Milky Way galaxy in the earliest phases of its evolution. This finding extends our knowledge of our galaxy’s history 1.8 billion years farther back in time than before.

The results published Monday in the journal Nature Astronomy.

The Milky Way today is a massive spiral galaxy home to hundreds of billions of stars. However, our galaxy wasn’t always so large; it has grown by forming new stars from its gas clouds as well as collecting stars, gas, and dark matter from other galaxies through mergers.

The most recent massive merger in our galaxy’s history took place with the Sagittarius dwarf galaxy, beginning over 6 billion years ago and still ongoing today. Looking back into the even more distant past, researchers learned that the Milky Way galaxy consumed another dwarf galaxy called Gaia-Sausage-Enceladus 10 billion years ago. This ancient merger greatly affected the structure of our galaxy’s disk of stars. Other, smaller mergers occurred between these two.

But our galaxy’s history doesn’t stop there. Both observations and simulations have suggested that another large merger preceded these two, though the specifics of the event have been heavily debated. Now, Hubble has uncovered definitive evidence of an earlier merger that occurred about 11.8 billion years ago, or just 2 billion years after the big bang.

“Our home is the Milky Way galaxy, but we do not know how our house was built,” said Davide Massari, lead author, Astrophysics and Space Science Observatory of Bologna in Italy. “In this paper we discover where the first significant batch of bricks came from: a dwarf galaxy that we call LKH.”

Cosmic archaeological sites

Immense astronomical surveys and precision data from spacecraft like ESA’s (European Space Agency’s) Gaia mission have been instrumental in piecing together the history of our galaxy. The farther back into our galaxy’s history that scientists attempt to look, the more difficult it becomes to tell what happened. When our galaxy was young, it was smaller and much closer in size to the galaxies it clashed with. It was also more chaotic, and it’s possible that the signs of mergers have been erased over billions of years.

It’s into this murky past that Hubble peered. Researchers used Hubble to study some of the Milky Way galaxy’s globular clusters: immense, roughly spherical collections of tens of thousands to a few million stars. Globular clusters contain some of the oldest stars in our galaxy, and they can act as cosmic archaeological sites that preserve stars from other galaxies the Milky Way galaxy has collected.

“Thanks to the high resolution and depth of Hubble imaging, we could measure the age and the metal content of these clusters with unprecedented precision,” said Chiara Zerbinati, study co-author, University of Bologna in Italy. “Coupled with measurements from Gaia, this made it possible to distinguish a population of globular clusters that are different from the others. These are the clusters that were born in LKH, and they tell us when that galaxy was devoured by ours, and how massive it was.”

The team analyzed Hubble observations of 39 globular clusters in the inner 20,000 light-years of our galaxy, where evidence of the most ancient mergers should be preserved. They expected this sample to contain globular clusters that formed within the young Milky Way galaxy as well as those collected from the Gaia-Sausage-Enceladus dwarf galaxy about 10 billion years ago.

Using Hubble’s sensitive observations to determine each cluster’s precise age and associated metallicity — the abundance of elements heavier than helium — they determined there was a third population of globular clusters in the inner regions of our galaxy. The team found that these clusters are older than the group collected in the Gaia-Sausage-Enceladus merger, but younger than those born in the Milky Way, regardless of their metal content. These clusters, therefore, came from a separate and even earlier merger — in which the Milky Way galaxy absorbed a dwarf galaxy containing roughly 500 million times the mass of the Sun in stars, a significant fraction of our galaxy’s mass at the time. They named this dwarf galaxy Low-energy-Kraken-Heracles, or LKH, in honor of three earlier research papers that championed the idea of a merger early in our galaxy’s history.

Such a large merger so early in the Milky Way galaxy’s formation has profound implications for the evolution of our galaxy.

“Some past studies have argued that the earliest phases of our galaxy’s evolution were defined by stars born only in our galaxy,” says Massari. “Here, we have shown that stars born in external galaxies also need to be considered.”

The team plans to continue their work to unravel the history of the Milky Way galaxy by studying its globular clusters, aiming to characterize all the massive mergers that our galaxy has experienced across cosmic history.

“Hubble is observing globular clusters that have never been studied before, and this will help us characterize the merger events that are far back in time in the Milky Way galaxy’s history,” said Fernando Aguado-Agelet, co-author, University of Vigo and the University of La Laguna in Spain.

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: Aug 17, 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

Bethany Downer
ESA/Hubble
Baltimore, US

Christine Pulliam
Space Telescope Science Institute
Baltimore, Maryland



Tuesday, August 18, 2026

Galactic Hearts: How Central Galactic Structures Grow Together

High-resolution hydrodynamical simulation from the SMUGGLE-Ring project: a stellar bar forms in a Milky-Way-like galaxy and channels gas inward along bar-driven inflow lanes. This gas feeds the central region, where a compact nuclear star cluster and a surrounding nuclear stellar disk grow together over time. Credit: AIP/S. Kwak . Downloads:
Small screen size [600 x 599, 40 KB] -Big screen size[1000 x 999, 100 KB] -Original size[2158 x 2157, 320 KB]

Simulation of the SMUGGLE-Ring project: In a Milky Way-like galaxy, a stellar bar forms, channelling gas along its inflow paths towards the centre. There, a compact central stellar cluster and a surrounding nuclear stellar disc grow together. Downloads:
Original Video [129.1 MB]



Aug. 6, 2026 // Using a state-of-the-art galaxy simulation, a team led by scientists from the Leibniz Institute for Astrophysics Potsdam (AIP) gained new insights into the processes shaping galactic centres across the Universe and the formation history of the Milky Way, bridging theory and observations. The study indicates that nuclear star clusters and nuclear stellar discs found in the inner core of galaxies are not independent, but closely linked components that grow together, fed by gas funneled inward by the galaxy’s stellar bar and shaped further by the accretion of massive star clusters. For the first time, the simulation directly reveals an evolutionary link between the formation of nuclear star clusters and nuclear stellar discs.

Understanding the formation and evolution of the centres of galaxies is one of the most intriguing challenges in astrophysics. The new study aims at unveiling the physical processes which led to the formation of two striking features that surround the black holes at the centres of a majority of galaxies: nuclear star clusters and nuclear stellar discs. Only during the last decade, such galactic structures have been observed in the MilkyWay and in extragalactic systems. Observationally, these two structures were viewed as products of separate formation processes, with observational surveys showing no clear correlation between their masses and sizes. However, the formation process is not understood and so far, realistic simulations have been lacking.

This long-standing mystery is now challenged by a new galaxy simulation from the SMUGGLE-Ring project, offering a fresh perspective and bridging theory and observations. In a paper accepted as a Letter to the Editor in Astronomy & Astrophysics, AIP researcher Dr. SungWon Kwak and collaborators demonstrate, for the first time, that a fully self-consistent, high-resolution hydrodynamical simulation of a Milky-Way-like barred galaxy can naturally form both, a nuclear star cluster and a nuclear stellar disk, and follow their growth over billions of years.

The simulation reveals that the galaxy’s stellar bar plays a central role in this process. “Our simulation achieves this by showing how the galactic bar acts like a cosmic conveyor belt, channeling gas inward to feed both structures simultaneously from the exact same reservoir,” explains SungWon Kwak. As gas accumulates in the central region, stellar feedback from dying stars generates shocks that repeatedly trigger new episodes of star formation. Over the course of several billion years, hundreds of millions of solar masses of stars are assembled in these central structures.

One of the key advantages of the simulation is that it allows researchers to observe processes that cannot be directly seen in real galaxies. Astronomical observations provide only a single snapshot of a galaxy at the present day. By contrast, the simulation follows the evolution of the galaxy over four billion years, allowing scientists to watch the stellar bar form, trace the inward flow of gas, monitor bursts of star formation, and observe how the nuclear stellar disk grows outward from the centre over time.

The results also explain why observations have struggled to reveal a clear connection between nuclear star clusters and nuclear stellar disks. "The apparent disconnection does not mean that the stars themselves differ fundamentally in age, chemical composition, or motion," explains Dr. Cristina Chiappini, also a scientist from AIP and co-author of the study. Instead, the simulation shows that the structural relationship between the two components naturally evolves over time. During long periods of steady growth, the relative masses and sizes of the cluster and the disk gradually drift apart. As a result, the nuclear star clusters and nuclear stellar disks of galaxies observed at different stages of their evolution can appear remarkably different, even if the underlying growth mechanism is the same.

Including realistic dark matter dynamics in the simulation plays a crucial role in this finding. "Previous studies rely on fixed background potentials for the galactic bar and dark matter halo, but the realistic dynamical treatment between stars and the dark matter halo using live particles in our model allows us to form a realistic bar that evolves in time and then naturally forms nuclear structures," explains Dr. Ivan Minchev, co-author of the study. "Furthermore, our model also exhibits a 'dark gap' around the bar region, which is found in many observations and is known as evidence of the interaction between stars and dark matter by the rotation of the stellar bar."

The picture becomes even more fascinating, since in the simulation a particularly massive star cluster with roughly 30 million solar masses spirals into the galactic centre and merges with the nuclear star cluster. Interestingly, the recent observations have captured such massive star clusters inside the bar of NGC 1365, some of which are expected to spiral into its centre and merge with the galaxy’s nuclear star cluster. Such merger events can alter the mass and size of the nuclear star cluster over a short timescale. This makes the co-evolution history of the galactic centres more complex, yet interesting, since a supermassive black hole is lurking inside the nuclear star cluster in galaxies. Consequently, those merger events might leave an imprint on the mass of the supermassive black hole, potentially expanding the connection between galactic components and allowing us to interpret future observations.

The letter was published in Astronomy & Astrophysics:

SungWon Kwak, Mathias Schultheis, Ivan Minchev, Cristina Chiappini, Woong-Tae Kim, Seungwon Baek, Federico Marinacci, Mark Vogelsberger, Laura V. Sales, Hui Li, and Matthias Steinmetz (2026): SMUGGLE-Ring: Evolutionary link between nuclear star cluster and nuclear disk, A&A




Contacts:

Dr. SungWon Kwak
Science contact:
Phone: +49 331 7499 285
Email:
skwak@aip.de

Dr. Ivan Minchev
Science contact:
Phone: +49 331 7499 259
Email:
iminchev@aip.de

Tilo Bergemann
Media contact:
Phone: +49 331 7499 803
Email:
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The Leibniz Institute for Astrophysics Potsdam (AIP) is dedicated to astrophysical questions ranging from the study of our sun to the evolution of the cosmos. The key areas of research focus on stellar, solar and exoplanetary physics as well as extragalactic astrophysics. A considerable part of the institute's efforts aims at the development of research technology in the fields of spectroscopy, robotic telescopes, and e-science. The AIP is the successor of the Berlin Observatory founded in 1700 and of the Astrophysical Observatory of Potsdam founded in 1874. The latter was the world’s first observatory to emphasize explicitly the research area of astrophysics. The AIP has been a member of the Leibniz Association since 1992.


Monday, August 17, 2026

Cosmic Trio

An AI-generated visualisation of a distant galaxy, containing besides dust, gas and young stars three massive, active black holes (black spheres, not to scale) with bright accretion disks. Other distant galaxies are shown in the background, and few stars in the foreground. © MPE (generated with AI)

Map of the distant galaxy J0148-4214 in ionised hydrogen (Hα). The locations of the three massive black holes are indicated by black circles (not to scale). The most massive and least massive black holes are located in the galaxy centre; a third black hole is located in the galaxy outskirts. © Hannah Übler



To the Point:
  • Researchers have identified three actively accreting supermassive black holes in a distant single galaxy, J0148-4214, for the first time.

  • Two of the black holes lie close together in the galaxy’s centre, while a third is located farther out; the discovery was made possible by spatially resolved spectroscopy with JWST/NIRSpec-IFS.

  • The finding suggests that mergers and interactions in the early Universe may have played an important role in the rapid growth of supermassive black holes.



Three Black Holes Discovered in a Young Galaxy for the First Time

An international team led by the Max Planck Institute for Extraterrestrial Physics has identified three actively accreting supermassive black holes in the galaxy J0148-4214. The galaxy is more than 12.5 billion light-years from Earth (at redshift z=5.02), corresponding to roughly 1.2 billion years after the Big Bang. The results are based on spatially resolved spectroscopy obtained with the Near-Infrared Spectrograph in its Integral Field Unit mode (NIRSpec-IFS) aboard the James Webb Space Telescope (JWST).

“This is the first evidence of three active black holes in a single galaxy in the distant Universe,” says Hannah Übler, research group leader at MPE and lead author of the study. Two of them are located in the galactic center and are separated by only 620 light-years in projection. A third black hole is located in the outer region of the galaxy, at a distance of approximately 5500 light-years from the centre. “It suggests that processes in the early Universe were efficient at bringing massive black holes together, setting the stage for the massive black hole mergers we expect to detect with future gravitational wave observatories”, says Übler.

Hydrogen emission as a tracer

The researchers identified the black holes through their spectral fingerprints: the signatures of hydrogen atoms moving at high velocity in the gravitational potential of the black holes. In the central region, the spectrum exhibits a complex structure best explained by two black holes in close proximity. To disentangle the two central sources, the team applied spectro-astrometry, a technique that precisely measures spatial shifts in line emission across the galaxy. This made it possible to determine the positions of the black holes, even though they cannot be spatially resolved as separate point sources. A third black hole was detected in the outer region.

The team also evaluated alternative interpretations—including supernovae, shocks, stellar winds, or very massive stars—but ruled them out through the analysis of other spectral signatures.

Masses and growth

The analysis yields black hole masses of approximately 80 million, 0.6 million, and 2 million suns. The most massive black hole is accreting at a lower rate than the nearby black hole with a mass of 0.6 million suns, which is actively feeding and even exceeding the maximum accretion rate predicted by basic theories of black hole growth (the Eddington limit).

“The JWST data allowed us not only to identify the three black holes, but also to estimate their masses, accretion rates, and the stellar mass of the galaxy,” says Dr. Giovanni Mazzolari, second author of the study and researcher at MPE. “We find a total stellar mass of about 1.3 billion suns, and the black holes represent a significant fraction of that.”

The central black hole pair is expected to merge within the next few hundred million years. “These results are extremely exciting,”, adds Roberto Maiolino, professor at the University of Cambridge and co-author of the study. “They suggest that black hole merging may be an additional, fast route for their rapid growth in the early Universe.”

The third black hole, located off-nucleus, may be the remnant of a previous merger, being displaced from the centre by a gravitational recoil kick, or may currently be migrating inward.

Implications for research

These observations demonstrate that integral field spectroscopy is an important tool for identifying multiple active black holes in distant galaxies. Without the spatially resolved information provided by NIRSpec-IFS, only one of the three black holes would likely have been detected.

The findings provide new insights for understanding the growth of supermassive black holes and their host galaxies. They support the idea that mergers and interactions played an important role in the early Universe and identify this system as a potential precursor to future black hole mergers that could be observed with upcoming gravitational wave facilities such as LISA.




Contacts:

Dr. Hannah Übler
MPE Lise Meitner Group Leader
Tel:
+49 89 30000-3562
Email: hannah@mpe.mpg.de
Max Planck Institute for Extraterrestrial Physics

Dr. Giovanni Mazzolari
Postdoc Infrared Astronomy
Tel:
+49 89 30000-3389
Email: gmazzolari@mpe.mpg.de
Max Planck Institute for Extraterrestrial Physics



Original Publication

Übler, H., G. Mazzolari, R. Maiolino, [...], R. Davies, F. Eisenhauer, N.M. Förster Schreiber, R. Genzel, [...], D. Lutz, [...], T. Shimizu, E. Sturm, L. Tacconi, G. Tozzi et al.

BlackTHUNDER: Evidence of three massive black holes in a 𝒛 ∼ 5 galaxy
A & A

Source



Further Information

Weighing a Black Hole in the early universe

January 29, 2024
With the upgraded GRAVITY-instrument at the ESO VLTI, a team of astronomers led by the Max Planck Institute for Extraterrestrial Physics has determined the mass of a Black Hole in a galaxy only 2 billion years after the Big Bang. With 300 million solar masses, the black hole is actually under-massive compared to the mass of its host galaxy, indicating that at least for some systems there might be a delay between the growth of the galaxy and its central black hole.

A look deep into the early universe: First infrared interferometry of a quasar at redshift 4

New GRAVITY+ and ERIS observations uncover surprising black hole properties and powerful gas outflows in the early cosmos.

Star dancing around supermassive black hole confirms Einstein

April 16, 2020
Observations led by the MPE have revealed for the first time that a star orbiting the supermassive black hole at the centre of the Milky Way moves just as predicted by Einstein’s general theory of relativity. Its orbit is shaped like a rosette and not like an ellipse as predicted by Newton's theory of gravity.


Webb detects most distant black hole merger to date

An international team of astronomers have used the NASA/ESA/CSA James Webb Space Telescope to find evidence for an ongoing merger of two galaxies and their massive black holes when the Universe was only 740 million years old.


Sunday, August 16, 2026

Scientists Release Biggest 2D Map of the Universe

PR Image noirlab2620a
Messier 96 as Seen with DESI Legacy Survey

PR Image noirlab2620b
Copeland Septet group of galaxies

PR Image noirlab2620c
Sunset over Kitt Peak National Observatory

PR Image noirlab2620d
CTIO on the Edge of the World



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Pan on Messier 96
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Pan on Messier 96

Zoom into Messier 96
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Zoom into Messier 96



The new DESI Legacy Imaging Surveys map serves as the foundation for the largest-ever 3D map of the Universe, used to investigate dark energy

Hold on to your telescopes: the DESI Legacy Imaging Surveys team has released the largest-ever 2D map of the Universe. The 5.6-trillion-pixel map contains nearly four billion celestial objects, including stars, galaxies, black holes, and asteroids. The data are available for all to use and are publicly viewable through the Legacy Survey Sky Viewer.

for rare phenomena like gravitational lenses, observe fleeting events like supernovae, and investigate two of physics’ biggest mysteries: dark matter, the invisible substance that accounts for most of the mass in our Universe, and dark energy, the force driving our Universe’s accelerating expansion.

The new map builds on earlier versions from the DESI Legacy Imaging Surveys that have already proved invaluable. To date, more than 1800 science papers have been published referencing the Legacy Surveys’ data.

“It’s part of the fabric of astronomy research now,” says David Schlegel, a co-lead of the Legacy Surveys and scientist at the Department of Energy’s Lawrence Berkeley National Laboratory (Berkeley Lab). “When you're working with astronomical objects today, you often start by pulling up the Legacy Imaging Viewer to see what you’re looking at.”;

Covering roughly 75% of the sky in visible and near-infrared light, the updated map provides a deep view of the extragalactic Universe not blocked by the dust and stars of our own Milky Way. Researchers expect it will remain the most comprehensive 2D map of our Universe for years to come.

More than 160 scientists contributed to data collection for the project, and a team of 20 produced the final dataset released today. It was built by combining 263,407 telescope exposures from three ground-based sky surveys:

  • The Dark Energy Camera Legacy Survey (DECaLS), conducted by the 570-megapixel Department of Energy-fabricated Dark Energy Camera (DECam), mounted on the U.S. National Science Foundation (NSF) Victor M. Blanco 4-meter Telescope at NSF Cerro Tololo Inter-American Observatory (CTIO), a Program of NSF NOIRLab.
  • The Mayall z-band Legacy Survey (MzLS), conducted by the NSF Nicholas U. Mayall 4-meter Telescope at NSF Kitt Peak National Observatory (KPNO), a Program of NSF NOIRLab.
  • The Beijing-Arizona Sky Survey (BASS) at the University of Arizona’s Steward Observatory, conducted with the UA Bok 2.3-meter Telescope at KPNO and supplemented by years of data from NASA’s Wide-field Infrared Survey Explorer (WISE) satellite mission.

In addition to the extended file collection, the DESI Legacy Surveys’ full catalog of data is made available as a searchable database via the Astro Data Lab at the Community Science and Data Center (CSDC), a Program of NSF NOIRLab. These services are accessible to the entire astronomy community to facilitate data access and analysis.

“Explorations of our Universe always start with images of the night sky. The DESI Imaging Legacy Surveys are just one step in this venerable human tradition,” says Arjun Dey, co-lead of the Legacy Surveys and an astronomer at NSF NOIRLab. “For our team, these data are fundamental to the investigation of the expansion history of the Universe and the formation of our galaxy. But the skies belong to everyone, and this survey gives everyone the chance to marvel at their wonders.”

The DESI Legacy Imaging Surveys were originally conducted to prepare for the Dark Energy Spectroscopic Instrument (DESI) survey. The Legacy Surveys’ 2D map is essentially a deep photograph of the sky; it records where galaxies and stars appear and how bright they appear. This crucial step enables DESI to select objects and measure their light in different wavelengths to determine their distances, building the largest high-resolution 3D map ever made. Scientists use this map to study the way galaxies have clustered at different ages of the Universe to track dark energy over time.

In April 2026, DESI completed its original five-year survey ahead of schedule and with vastly more objects than expected. The early results have shown surprising hints that dark energy’s impact may be weakening over time — a paradigm shift that could potentially shape the predicted fate of our Universe. DESI expects to publish improved results using its first five years of data in 2027 and is continuing observations into 2028.

Beyond supporting DESI, the Legacy Surveys will be a foundational reference for the next generation of telescopes. As new observatories like NSF–DOE Vera C. Rubin Observatory, jointly funded by the NSF and DOE’s Office of Science (DOE/SC), and NASA’s Nancy Grace Roman Space Telescope come online, researchers can compare their observations with one of the deepest and most comprehensive views of the sky ever assembled.

The Legacy Surveys’ data will also help scientists train artificial intelligence tools to analyze petabytes of astronomical data and accelerate new discoveries. It will be among the datasets used in an astrophysics pilot project within the American Science Cloud, part of the DOE’s Genesis Mission.





More information

The DESI Legacy Imaging Surveys are supported by the U.S. Department of Energy’s Office of High Energy Physics; the National Energy Research Scientific Computing Center, a DOE Office of Science user facility; the U.S. National Science Foundation, Division of Astronomical Sciences; and the partner institutions.

DESI is supported by the DOE Office of Science and by the National Energy Research Scientific Computing Center, a DOE Office of Science national user facility. Additional support for DESI is provided by the U.S. National Science Foundation; the Science and Technology Facilities Council of the United Kingdom; the Gordon and Betty Moore Foundation; the Heising-Simons Foundation; the French Alternative Energies and Atomic Energy Commission (CEA); the Secretariat of Science, Humanities, Technology and Innovation (SECIHTI) of Mexico; the Ministry of Science and Innovation of Spain; and by the DESI member institutions.

Lawrence Berkeley National Laboratory (Berkeley Lab) is committed to groundbreaking research focused on discovery science and solutions for abundant and reliable energy supplies. The lab’s expertise spans materials, chemistry, physics, biology, earth and environmental science, mathematics, and computing. Researchers from around the world rely on the lab’s world-class scientific facilities for their own pioneering research. Founded in 1931 on the belief that the biggest problems are best addressed by teams, Berkeley Lab and its scientists have been recognized with 17 Nobel Prizes. Berkeley Lab is a multiprogram national laboratory managed by the University of California for the U.S. Department of Energy’s Office of Science.

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. For more information, please visit energy.gov/science.

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.




Links



Contacts:

Arjun Dey
Astronomer
NSF NOIRLab
Email:
arjun.dey@noirlab.edu

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

Lauren Biron
Lawrence Berkeley National Laboratory
Science Communication and Media Relations Specialist
Email:
LBiron@lbl.gov



Saturday, August 15, 2026

Twisted Physics: Astronomers Solve 30-Year-Old Stellar Mystery

T
wisted Physics: Astronomers Solve 30-Year-Old Stellar Mystery
This artist's illustration shows the twisted, funnel-shaped magnetic field (represented by white spiral lines) that ALMA detected wrapped around the gas outflow streaming from a young star embedded in the NGC 1333 IRAS 4A. New data revealed this ring-shaped structure in unprecedented detail, confirming a decades-old prediction of how magnetic fields launch and shape powerful jets from young stars. redit: NSF/AUI/NSF NRAO/M. Weiss. Hi-Res File



ALMA Observations of a Protostars’ Twisted Outflow Finally Shows the Magnetic Fields Scientists Predicted — But Couldn’t Prove

Astronomers using the Atacama Large Millimeter/submillimeter Array (ALMA), of which the U.S. National Science Foundation National Radio Astronomy Observatory (NSF NRAO) is a partner, have captured the first direct, high-resolution images of a magnetic field wrapped tightly around the outflow of gas streaming away from a forming star — evidence that solves a decades-old puzzle about how young stars sculpt the powerful jets that form them.

The findings, from a research team led by Tao-Chung Ching, a former Jansky Fellow at the NSF NRAO, focus on NGC 1333 IRAS 4A, a young double-star system embedded in the Perseus molecular cloud, roughly 960 light-years from Earth.

An “invisible magnetic funnel” made visible by ALMA

Newborn stars grow by pulling in gas and dust from a surrounding disk of material. As they do, they also blast some of that material back out into space in fast, narrow jets and wider, slower outflows — a process astronomers have long suspected is shaped and powered by magnetic fields twisted into a funnel-like, doughnut shape around the jet.

“For the first time, these ALMA observations have captured this invisible funnel of magnetic fields,” said Ching, “This is exciting because it proves a decades-old theory about how stars, like our own Sun, are born and fire off powerful cosmic jets.”

The team used ALMA’s exceptional resolving power, roughly 30 times sharper than that of earlier telescopes, to measure the faint polarization of carbon monoxide gas radiating from the outflow around IRAS 4A. That polarization signal let the researchers trace the morphology and strength of the magnetic field threading through the outflow at distances of only a few hundred astronomical units (the average distance between the Earth to the Sun) from the young star.

The team found the magnetic field measured a few thousandths of a gauss (modest compared to a household magnet, but immense on the scale of interstellar space) and that it wrapped around the outflow like a coil, running perpendicular to the direction the gas was flowing and matching the outflow’s rotation. That geometry is the signature of a “toroidal” (or donut-shaped) magnetic field, exactly what theoretical models have predicted for decades — but never directly confirmed at this level of detail.

“This study represents the first and most high-resolution observation of milligauss-strength toroidal magnetic fields at a scale of several hundred astronomical units from a protostar,” adds Ching.

“We knew that IRAS 4A was a textbook case: 20 years ago, in a work published in Science in 2006, we found that this region followed the theoretically expected magnetically driven collapse”, says Josep Miquel Girart, co-author and researcher at the Institute of Space Sciences (ICE-CSIC) and the Institute of Space Studies of Catalonia (IEEC).

A new tool for mapping magnetic fields

The team also uncovered an unexpected bonus: a straightforward mathematical relationship, based on the physics principle known as Ampère’s law, linking the twisting of the magnetic field to the electric currents flowing through the gas. Because that relationship follows a predictable, linear pattern, it gives astronomers a new and more direct way to work out the direction of magnetic fields in the clouds of gas and dust where stars are born — a notoriously difficult measurement to make.

Understanding how magnetic fields shape stellar outflows helps astronomers explain a fundamental step in star formation, for how young stars shed excess material and angular momentum so they can continue growing, rather than spinning themselves apart. The same physical process is thought to play out at vastly different scales throughout the Universe, from newborn stars like the one studied here, to the supermassive black holes that power distant galaxies.




Press Contacts:

Jill Malusky
Sr. Public Information Group Manager and Public Information Officer

Email | Phone



About ALMA

The Atacama Large Millimeter/submillimeter Array (ALMA), an international partnership of the European Southern Observatory (ESO), the U.S. National Science Foundation (NSF), and the National Institutes of Natural Sciences (NINS) of Japan, together with NRC (Canada), NSTC (Taiwan), ASIAA (Taiwan), and KASI (Republic of Korea), in cooperation with the Republic of Chile, is located on the Chajnantor plateau in northern Chile. ALMA is operated by ESO, the Associated Universities, Inc./National Radio Astronomy Observatory (AUI/NRAO), and the National Astronomical Observatory of Japan (NAOJ).

About NRAO

The National Radio Astronomy Observatory is a facility of the U.S. National Science Foundation, operated under cooperative agreement by Associated Universities, Inc.


Friday, August 14, 2026

NASA Telescopes Create Colorful 'Craft' From Nearby Nebula

3 Doradus
Credit: X-ray: NASA/CXC/Ohio State Univ./J. Rodriguez et al; Infrared: NASA/ESA/CSA/STScI; Optical: NASA/ESA/STScI; Image Processing: NASA/CXC/SAO/P. Edmonds




  • A new study of the Tarantula Nebula is answering questions about why this star formation region in the Large Magellanic Cloud is losing energy from its center.

  • By combining data from Chandra, Hubble and Webb, and Spitzer, researchers identified what has tamed the Tarantula and where the energy has gone.

  • This new composite image has layers from three of these telescopes: Chandra (blue), Hubble (green), and Webb (red).

  • Scientists have concluded that energy has been lost through leakage of gas, the mixing of hot and cold gas and by conduction of heat.



Like a collage made of layered sheets of colored cellophane, a vibrant new image layers observations of a famous star-forming nebula from NASA space telescopes. The resulting cosmic “craft” reveals new details about the star formation region known as 30 Doradus, or the Tarantula Nebula.

Located in the Large Magellanic Cloud, a small neighbor galaxy to the Milky Way about 160,000 light-years from Earth, the Tarantula has thousands of young stars embedded in a vibrant honeycomb-like structure of gas and dust.

The new composite image contains X-rays from NASA’s Chandra X-ray Observatory, which has repeatedly observed the Tarantula Nebula over the course of its mission, in the layer that appears in blue. The X-ray data reveals gas blown away by winds from the surfaces of young, massive stars and heated to millions of degrees by shock waves, like sonic booms from supersonic jets.

The red represents infrared data from NASA’s James Webb Space Telescope showing thousands of young stars, plus swaths of cool dust that will provide the ingredients to form new stars and planets. Optical data in the green layer from NASA’s Hubble Space Telescope uncovers hydrogen gas that is warmer than seen with Webb, as well as some individual stars through the nebula.

The composite image shows the full Hubble and Webb images of this region, as well as a large section of the Chandra image, all recently published in a research paper in the Astrophysical Journal. In some regions the blue Chandra layer stands alone, and in others it combines with either the red Webb data or the green Hubble data. In the middle region all three images overlap to provide a holistic view in red, orange, yellow, green, and blue.

Tarantula Nebula (30 Doradus)
Optical + Infrared + X-ray

Previously, astronomers had studied the amount and the impact of energy produced by winds from young, massive stars in the Tarantula Nebula. Scientists expect that much of this energy should heat gas so that it produces X-rays. However, the research paper shows that there is much less X-ray-emitting gas in the nebula than expected. This led researchers to ask: Where has this energy gone and what tamed the Tarantula Nebula?

By studying the data from Chandra, Hubble, and Webb, combined with data from NASA’s retired Spitzer Space Telescope, the team concluded the Tarantula may be losing energy from several sources.

First, up to half of the hot gas is leaking through the shell walls of the gas and dust structures and escaping the nebula. Next, there is stirring and mixing between the cold gas near the shell walls and some of the hot gas, lowering the overall temperature of the gas. Finally, comparisons with computer simulations suggest the Tarantula may be losing energy through conduction. This involves direct physical contact between hot and cooler material, like with a frying pan on a burner, causing the hot and cooler material to equalize in temperature. In the case of the Tarantula Nebula, the hot gas would be conducting heat by being in direct contact with the cooler gas in the shells, especially in the densest regions. This scenario does not necessarily involve mixing the hot and cooler gas.

The combination of these three channels for losing large amounts of energy leads to this colorful and complex display revealed by NASA's telescopes working together.

Tarantula Nebula / 30 Doradus, cropped version. Credit: X-ray: NASA/CXC/Ohio State Univ./J. Rodriguez et al; Infrared: NASA/ESA/CSA/STScI; Optical: NASA/ESA/STScI; Image Processing: NASA/CXC/SAO/P. Edmonds

The paper describing these results was led by Jennifer Rodriguez of The Ohio State University in Columbus. Additional authors on the paper include Laura Lopez, Ohio State; Lachlan Lancaster, Columbia University in New York City; Anna Rosen, San Diego State University; Omnaraynai Nayak, Space Telescope Science Institute in Baltimore; Sebastian Lopez, Ohio State; Tyler Holland-Ashford, NASA’s Goddard Space Flight Center in Greenbelt, Maryland; and Trinity Webb, Ohio State.

NASA's Marshall Space Flight Center in Huntsville, Alabama, 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 features three images of the Tarantula Nebula, or 30 Doradus, a star-forming region of the Large Magellanic Cloud. Each image represents a different wavelength of light, presented in a different color. When layered atop one another, like sheets of colored cellophane, they combine to produce a vibrant and informative singular image.

The base layer of the nearly square, combined image, features a blanket of wispy blue clouds against a black backdrop. These clouds represent hot gas observed by NASA's Chandra X-ray Observatory. This layer reveals that gas has been blown from the surfaces of young, massive stars, and heated to millions of degrees by shock waves.

The second layer is a rectangular image cutting diagonally across the cloudy blue square, tilted from our upper left down toward our lower right. This layer features roiling red clouds and tiny, gleaming, red specks. These are swaths of cool, ingredient-rich dust, and scores of young stars. This red layer represents infrared data collected by NASA's James Webb Space Telescope.

The third layer is a tilted square, or diamond-shaped image, with its points touching the edges of the big blue base layer. Here, curling, sweeping tendrils of warm hydrogen gas swirl around the frame in shades of green. This layer represents data captured by NASA's Hubble Space Telescope.

In the center of the combined image, the three translucent layers overlap, resulting in a technicolor marvel; an image of intermingled blue, red, and green clouds that blend to include lively shades of fiery orange, golden yellow, and deep purple.



Fast Facts for Tarantula Nebula (30 Doradus)

Credit: X-ray: NASA/CXC/Ohio State Univ./J. Rodriguez et al; Infrared: NASA/ESA/CSA/STScI; Optical: NASA/ESA/STScI; Image Processing: NASA/CXC/SAO/P. Edmonds
Release Date: August 11, 2026
Scale: Image is about 10 arcmin (470 light-years) across.
Category:
Normal Stars & Star Clusters
Coordinates (J2000): RA 5h 38m 38s | Dec -69° 05´ 42"
Constellation:
Dorado
Observation Dates: 54 observations from January 2006 to January 2016
Observation Time: 571 hours (23 days 19 hours 56 minutes)
Obs. ID: 05906, 07263, 07264, 16192-16203, 16442-16449, 16612, 16615-16617, 16621, 16640, 17312-17414, 17486, 17544, 17545, 17555, 17561, 17562, 17602, 17603, 17640-17642, 17660, 18670-18672, 18706, 18720, 18721, 18722, 18729, 18749, 18750
Instrument: ACIS
Also Known As: 30 Doradus
References: Rodriguez, J.A., et al, 2026,
ApJ, 998, 318.
Color Code: X-ray: blue; Infrared: red; Optical (H-alpha): green
Distance Estimate: About 160,000 light-years from Earth