Showing posts with label Max Planck Institute for Extraterrestrial Physics. Show all posts
Showing posts with label Max Planck Institute for Extraterrestrial Physics. Show all posts

Saturday, July 25, 2026

First observational signature of ambipolar diffusion in prestellar core L1544

llustration of ion-neutral drift in the L1544 prestellar core. The blue lines represent the magnetic field lines, which are bent due to the gravitational contraction of the core. The red and green dots depict the ion and neutral molecular species, respectively, and the arrows trace their inflow motion towards the core center (the faster they travel the longer the arrows). While in the outer part of the core both the ions and neutrals are attached to the magnetic field lines, within the inner part of the core the neutrals decouple from the magnetic field lines and infall faster compared to the ions, which remain attached to the field lines. This ion-neutral decoupling known as ambipolar diffusion is required for the onset of the gravitational collapse of the prestellar core, which will produce a protostar in its center and ultimately a stellar system similar to our own Solar System. Credit: Y. Nakamura & D. Arzoumanian/Kyushu University



To the Point
  • An international team, including MPE researchers, has found the first observational signature of ambipolar diffusion in a prestellar core.

  • The result is based on high-resolution spectral observations of the dense core L1544 with the IRAM 30-meter telescope.

  • The team detected a small but systematic velocity offset between an ion and a neutral molecule that traces nearly the same gas.

  • The finding offers a new way to test theories of how magnetic fields regulate the earliest stages of star formation.

  • Future observations could test whether similar signatures appear in other prestellar cores and help constrain magnetic fields, geometry, chemistry, and dust growth.



An international team with major contributions from the Max Planck Institute for Extraterrestrial Physics (MPE) has found the first observational signature consistent with ambipolar diffusion in a prestellar core. Using high spectral resolution observations with the IRAM 30-meter telescope, the researchers detected a small but systematic velocity difference between ionized and neutral gas in L1544, a prototypical dense core in the Taurus molecular cloud.

The result addresses one of the central questions in star-formation research: how gravity and magnetic fields interact in the earliest phases of collapse. In dense molecular gas, ions remain coupled to magnetic fields, while neutral molecules can move more freely. Ambipolar diffusion describes the gradual decoupling of these components, allowing neutral gas to drift inward while charged particles remain coupled to the magnetic field. Until now, this process had been predicted by theory and simulations but had not been directly identified in a prestellar core.

“L1544 gives us a rare opportunity to study the interplay between magnetic fields and collapsing gas at a very early stage,” says Tommaso Grassi of MPE. “The data reveal a small but systematic relative motion between ions and neutrals — exactly the kind of signature expected if ambipolar diffusion is at work.” How the team detected the effect

L1544 is a prototypical prestellar core: cold, dense, gravitationally bound, and still without a protostar. That makes it an ideal laboratory for studying the physical conditions just before star birth. At such low temperatures, however, many common molecular tracers freeze onto dust grains, making them difficult to observe. The team therefore selected two molecules that probe similar dense regions of the core: the molecular ion N2D+ and the neutral molecule para-NH2D.

“This is a powerful example of what becomes possible when the right target is observed with very high spectral resolution and carefully matched tracers,” says Silvia Spezzano, Max Planck Research Group Leader at MPE. “It provides a direct observational probe of a process that has long been central to star-formation theory.”

What the observations reveal

The observations reveal a mean ion-neutral velocity offset of about 0.05 km/s. In a cold, slowly evolving prestellar core, this is a very small number — but one that is physically meaningful and consistent with the drift expected when ions and neutrals begin to decouple during gravitational collapse. The analysis also shows that the two tracers have similar spatial distributions, strengthening the case that they sample nearly the same gas and that the measured velocity difference reflects a real physical effect rather than a difference in the layers being traced.

At the same time, the authors are careful not to overstate the result. Geometry, projection effects, and the internal structure of the core all influence what can be seen along the line of sight. The study also does not detect a significant difference in linewidth between the ion and neutral species. For that reason, the result should be seen as strong evidence for ambipolar diffusion, not as final proof.

What comes next

Future observations with higher spatial and spectral resolution could test whether similar signatures appear in other prestellar cores and how they vary across a core’s structure. They could also help disentangle the roles of ambipolar diffusion, geometry, chemistry, and dust growth in shaping the collapse process. If ion-neutral drift velocities can be measured more broadly, they may become a new diagnostic for magnetic field strength and the physical conditions that regulate star formation.

For MPE, the study highlights the institute’s role in precision astrophysics at the frontier of star-formation research. For the field more broadly, it provides one of the clearest observational tests of a process that has shaped theory for decades but has been difficult to capture directly.

“This study highlights the remarkable synergy between astronomy, astrochemistry, and laboratory spectroscopy," says Paola Caselli, Director at the Max Planck Institute for Extraterrestrial Physics. "Detecting velocity differences of only a few tens of meters per second is possible only because laboratory measurements have established molecular transition frequencies with extraordinary precision. These advances now allow us to probe subtle physical processes, such as ambipolar diffusion, that govern the earliest stages of star formation, just before a new star is born.”




Contacts:

Dr. Silvia Spezzano
Max Planck Research Group Leader - CAS
Tel:
+49 89 30000-3513
Email: spezzano@mpe.mpg.de
Max Planck Institute for Extraterrestrial Physics, Garching

Dr. Tommaso Grassi
Scientist
Tel:
+49 89 30000-3639
Email: tgrassi@mpe.mpg.de
Center for Astrochemical Studies

Prof. Dr. Paola Caselli
Director of the Center for Astrochemical Studies (CAS)
Tel:
+49 89 30000-3400
Fax: +49 89 30000-3399
Email: caselli@mpe.mpg.de
Max Planck Institute for Extraterrestrial Physics, Garching



Original Publication

1. Arzoumanian, D., S. Spezzano, T. Grassi, P.Caselli, Y. Tsukamoto, H. Fukihara, Y. Misugi, F. Alves, J. Pineda, S.Jensen, E. Redaelli, and A. Ivlev

Probing the ion-neutral drift velocity towards the L1544
prestellar core: Detection of ambipolar diffusion using N2D+ and para-NH2D
A & A


Source | DOI

2. Grassi, T. , J.E. Pineda, S. Spezzano, D. Arzoumanian, F. Lique, Y. Misugi, E. Redaelli, S. S. Jensen, P. Caselli
A differentiable and optimizable 3D model for interpretation of observed spectral data cubes
A & A


Source | DOI



Further Information


Recreating the Cosmos: Modeling Sulfur Chemistry in Interstellar Ice Analogues

May 12, 2026
In a new study led by the Center for Astrochemical Studies (CAS) and conducted in collaboration with the Centro de Astrobiología in Madrid, MPE scientists combined laboratory experiments and advanced computer modeling to investigate how sulfur-bearing molecules evolve on icy grains in interstellar space.


A chemically rich outflow from a young Sun-like star: A new laboratory for shock chemistry

March 13, 2026


Conditions suitable for life on distant moons

March 11, 2026
Even in the darkness of space, life could be possible: A team of researchers from the ORIGINS Cluster has shown that moons of free-floating planets can keep their oceans liquid for billions of years.


Thursday, June 18, 2026

How Galaxies Keep the Fuel Flowing

Montage of the NOEMA Telescopes and the detected massive disk galaxies with spiral arms and bars that actively transported cold gas inward. © Jean-Baptiste Jolly



Spiral Arms and Bars Drive Gas Transport at Cosmic Noon

Studies from the Infrared & Submillimeter Astronomy Group at the Max Planck Institute for Extraterrestrial Physics (MPE) using NOEMA and JWST reveal that during cosmic noon, massive disk galaxies with spiral arms and bars actively transported cold gas inward. This process sustained star formation by distributing gas efficiently across galactic disks, challenging previous views of early chaotic galaxies.

Galaxies need a continuous supply of cold gas to form new stars. This was especially true during "cosmic noon", roughly 8 to 10 billion years ago, when galaxies across the universe were forming stars at rates far exceeding those seen today. A key question in galaxy evolution is therefore how this gas was distributed within galaxies, and how it was transported from the outer disk into the regions where stars, bulges, and central black holes form and grow. Two new studies from the NOEMA3D survey, led by the Infrared-Submillimeter-Astronomy Group at the Max Planck Institute for Extraterrestrial Physics (MPE) and collaborators, now provide one of the clearest observational views yet of these processes.

Using the NOrthern Extended Millimeter Array (NOEMA), a radio interferometer located in the French Alps, the team obtained the deepest millimeter-wave observations to date of cold molecular gas — traced via CO emission — in ten massive, star-forming galaxies at redshifts z ~ 1.1–1.6. With integration times of typically more than 20 hours per galaxy, the NOEMA3D survey resolves both the distribution and kinematics of molecular gas on kiloparsec scales. These observations were combined with high-resolution infrared imaging from the James Webb Space Telescope (JWST), which reveals the underlying stellar structure of the same galaxies in unprecedented detail.

What JWST shows is itself striking: many of these distant systems are not the chaotic, merger-dominated objects that early galaxies were long assumed to be. Instead, they are well-ordered disk galaxies with clear spiral arms and, in four out of ten cases, bars. Structural features previously thought to be rare or absent at these redshifts.

The NOMA3D sample: 10 large massive galaxies on the star forming main sequence, at 1.1 < z < 1.6, showing clear spiral arms and for 4 of them bars. © Jean-Baptiste Jolly


G4_38065 is a massive spiral galaxy at z = 1.12. The velocity residuals, obtained by subtracting a model velocity map from the observed one, show clear patterns along the spiral arms which we interpret as inflowing gas refueling the galaxy. © Jean-Baptiste Jolly

Cold Gas Distribution Supports Star Formation Across Galactic Disks

The first study analyzes the kinematics of the molecular gas. All ten galaxies show ordered rotation consistent with a rotating disk. But after subtracting the best-fitting disk model, coherent velocity residuals remain in nearly every system, gas motions that cannot be accounted for by simple rotation alone. These residuals reach typical in-plane velocities of 50 to 100 km/s, substantially larger than comparable non-circular motions in nearby disk galaxies. Crucially, they are spatially correlated with the non-axisymmetric structures seen in the JWST images: spiral arms and bars. “For the first time, we can directly link spiral arms and bars to the motions of cold gas within galaxies,” says Jean-Baptiste Jolly. “This provides compelling evidence that these structures were already driving gas transport when the Universe was at the peak of its star-forming activity.”.

Spiral arms and bars are therefore not merely aesthetic features in galaxy images. They are dynamical structures that actively redistribute gas within the disk. When interpreted as radial inflows, the inferred molecular gas transport rates are often comparable to the galaxies' star formation rates, of order tens of solar masses per year. Such flows could move gas inward to feed central star formation, contribute to the growth of bulges, and potentially supply material to central supermassive black holes.

The companion study examines where the cold gas and dust are actually located. Comparing the spatial distributions of CO emission, neutral carbon [C I], dust continuum, stars, and star formation across the same ten galaxies, it finds that molecular gas and dust are generally extended over the full galactic disk, with sizes broadly comparable to the stellar component. This stands in sharp contrast to merger-driven compact starburst galaxies at similar redshifts, where dust and star formation are typically concentrated in small central regions. The resolved measurements further show that both the molecular gas fraction and the gas depletion time remain broadly flat across the disk, out to approximately twice the stellar effective radius. “The depth of the NOEMA observations allows us to trace the cold-gas reservoirs that fueled galaxy growth during cosmic noon,” says Jianhang Chen. “We can now see, in unprecedented detail, how galaxies sustained star formation across their disks over billions of years.”

Taken together, the two studies present a coherent picture of how massive disk galaxies sustained their star formation during a crucial epoch in cosmic history. Gas was present across the full disk; star formation proceeded with broadly similar efficiency at different radii. Internal structures, like spiral arms and bars, provided an efficient mechanism for moving gas inward. The NOEMA3D observations thereby connect the large-scale gas reservoirs of galaxies to the internal dynamical processes that regulate their growth.

These results also highlight the power of combining NOEMA and JWST. NOEMA provides the cold-gas kinematics and molecular gas maps; JWST reveals the stellar structures that shape the gas motion. Only by combining both telescopes can the link between morphology and gas dynamics be directly observed.

The broader implication is significant. By z ~ 1–2, massive star-forming galaxies already possessed organized disks with spiral arms and bars capable of driving significant gas transport. These structures likely played an important role in keeping galaxies on the star-forming main sequence and in shaping the buildup of disks, bulges, and black holes over cosmic time. The findings challenge the long-held view that early galaxies were predominantly turbulent and merger-driven. Many were already mature, well-ordered systems — not unlike our own Milky Way, but younger and considerably more active.




Contacts:

Dr. Jean-Baptiste Jolly
Postdoc Infrared-Group
Tel:
+49 89 30000-3335
Email: jbjolly@mpe.mpg.de
Max-Planck-Institut für extraterrestrische Physik, Garching

Dr. Jianhang Chen
Postdoc Infrared-Group
Tel:
+49 89 30000-3374
Email: jhchen@mpe.mpg.de
Max-Planck-Institut für extraterrestrische Physik, Garching



Original Publication

1. Chen, J., L. Tacconi, R. Genzel, R. Neri, K. Schuster, N. Förster Schreiber, J.-B. Jolly et al.
NOEMA3D: Spatially resolved dust, CO, and [C I] in massive star-forming main sequence galaxies at cosmic noon
A & A


DOI

2. Jolly, J.-B., L.J. Tacconi, R. Genzel, R. Neri, K. Schuster, J. Chen et al.
NOEMA3D: Resolving radial gas flows in disk galaxies at z ∼ 1.1 − 1.6 with high-resolution CO observations
A & A


Source | DOI



Further Information

Series: Research Highlight

The series “Research Highlight” features a scientific highlight of MPE researchers.







September 22, 2014
With the official inauguration of the first of six planned NOEMA antennas on 22 September, the Max Planck Society and its partner institution IRAM are taking a crucial step towards one of the largest Franco-German projects in astronomy: the expansion of the Plateau de Bure observatory in the French Alps into the most powerful and most sensitive millimetre radio telescope in the northern hemisphere. The scientists are hoping that this state of the art observatory will provide answers to questions about our origins and the formation of the universe.




April 08, 2026
New observations and simulations by a team of researchers led by MPE reveal that a massive binary star near our Galaxy’s center is responsible for creating a series enigmatic gas clouds — compact gas clumps that help feed the supermassive black hole Sagittarius A*.


Wednesday, May 20, 2026

Recreating the Cosmos: Modeling Sulfur Chemistry in Interstellar Ice Analogues

Ultraviolet (UV) photons break up molecules in the ice on interstellar dust grains, and subsequent reactivity of the products leads to the synthesis of new molecules. Illustrated here are the starting molecules in the experiment (CS2 and CO2), and assorted sulfur-bearing molecules that either result directly from the break-up of the initial molecules, or are produced via chemical reactions. Disclaimer: This image is an AI-generated creation. © Olli Sipilä



One of astronomy’s most persistent chemical mysteries is why a major part of the sulfur reservoir appears to be missing from dense interstellar clouds. In a new study led by the Center for Astrochemical Studies (CAS) and conducted in collaboration with the Centro de Astrobiología in Madrid, MPE scientists combined laboratory experiments and advanced computer modeling to investigate how sulfur-bearing molecules evolve on icy grains in interstellar space. Their findings suggest that current theories of sulfur chemistry in the cosmos remain incomplete — but also point toward new ways of closing the gap.

Astronomers have long known that sulfur should be far more abundant in dense interstellar clouds than observations indicate. This implies that most of the sulfur reservoir is in a form that is difficult to detect, highly likely residing in the ice covering interstellar dust grains. To shed more light on this “missing sulfur problem”, MPE researchers simulated the irradiation of frozen mixtures of carbon dioxide (CO2) and carbon disulfide (CS2) at temperatures near absolute zero, mimicking conditions inside dark molecular clouds where stars and planets form. Using the pyRate astrochemical code developed at CAS, adapted specifically for the experiment, the team tracked how ultraviolet radiation transforms sulfurbearing ices over time.

The simulations successfully reproduced several key chemical processes seen in the laboratory. But the model also exposed major uncertainties in current understanding of sulfur chemistry. Some compounds — including OCS, CS, and SO — formed too efficiently in the simulations, while others, such as sulfur dioxide and sulfur allotropes, were underproduced. “The discrepancy between the simulations and experiments highlights how limited our knowledge of the evolution of sulfur-bearing compounds under interstellar conditions still is”, says Olli Sipilä, a postdoctoral researcher at MPE who led the study. “However, performing simulations tailored to mimic experiments helps us understand the experimental results better, and also makes it possible to constrain effects that occurred during the experiment but which could not be directly detected.”

Toward Uncovering the Hidden Sulfur Reservoir

Another major finding of the work was that nondiffusive chemistry — chemical reactions occurring without the need for molecules to migrate across the ice surface — is essential for reproducing many of the sulfurbearing compounds observed experimentally. “It is clear that customary models where reactivity is limited by the reactants diffusing on the ice simply cannot reproduce the experimental findings”, says Wiebke Riedel, a postdoctoral researcher and recent CAS graduate who developed the implementation of nondiffusive chemistry in pyRate.

The work represents the first attempt to model a complex, multicomponent interstellar ice experiment using a rate-equation astrochemical code, marking an important milestone for the field. By combining experimental and theoretical approaches, the study offers a new framework for investigating how sulfur is stored and transformed in space — a question closely tied to the chemistry that shapes emerging planetary systems and, ultimately, the ingredients available for life.




Contacts:

Dr. Olli Sipilä
Postdoc at Center for Astrochemical Studies
Tel:
+49 89 30000-3646
Email: osipila@mpe.mpg.de
Max-Planck-Institut für extraterrestrische Physik, Garching

Dr. Wiebke Riedel
Postdoc at Center for Astrochemical Studies
Tel:
+49 89 30000-3007
Email: riedel@mpe.mpg.de
Max-Planck-Institut für extraterrestrische Physik, Garching



Original Publication

O. Sipilä, R. Martín-Doménech, W. Riedel, D. Navarro-Almaida, A. Fuente, A. Taillard, G.M. Muñoz Caro
Modeling the UV-photon irradiation of CS2-bearing ices in the laboratory with the pyRate gas-grain astrochemical code
Astronomy & Astrophysics

Source | DOI



Further Information


January 23, 2026
Astrophysicists Discover Largest Sulfur-Containing Molecular Compound in Space




July 04, 2024
Using the JWST, a team of researchers including Paola Caselli and Michela Giuliano from MPE, have probed deep into dense cloud cores, revealing details of interstellar ice that were previously unobservable. The study focuses on the Chamaeleon I region, using JWST’s NIRCam to measure spectroscopic lines towards hundreds of stars behind the cloud.


Wednesday, May 13, 2026

Baryons at the Edge: SRG/eROSITA Survey Detects “Missing” Cosmic Gas at the Outskirts of Galaxy Clusters

X-rays from the large-scale environment around a galaxy cluster in the IllustrisTNG simulation show how the cluster’s outer atmosphere, beyond r200m, connects to other halos through cosmic filaments. © Xiaoyuan Zhang / MPE, based on the IllustrisTNG simulations



A team of astronomers at the Max Planck Institute for Extraterrestrial Physics (MPE), has detected hot gas extending beyond galaxy clusters using data from the eROSITA All-Sky Survey. This finding reveals the distribution of hot gas in the outskirts, indicating that galaxy clusters are actively accreting material from the cosmic web. This study shows that these regions host the baryonic matter that is missing from the galaxy cluster center, enhancing our understanding of galaxy cluster growth and the surrounding intergalactic environment.

Using data from the SRG/eROSITA All-Sky Survey, the team of international researchers have now achieved a key advance in tracing ordinary matter in the Universe. They detected hot, shock-heated gas extending far beyond the previously studied boundaries of galaxy clusters, offering a new perspective on how these vast cosmic structures grow by drawing in material from the surrounding intergalactic medium.

The study, led by scientists at the Max Planck Institute for Extraterrestrial Physics (MPE), focuses on the outermost regions of galaxy clusters – areas that have been particularly difficult to observe until now. The results reveal how hot gas is distributed in and around these distant outskirts, offering insights into the environments surrounding some of the most massive structures in the Universe.

Bridging the Gap Between Clusters and the Cosmos

Galaxy clusters are among the largest gravitationally bound systems in the Universe, containing hundreds to thousands of galaxies embedded within vast halos of dark matter and filled with hot, diffuse plasma. Yet, the transition between a cluster and the surrounding cosmic web – the network of gas filaments connecting large-scale structures – has long remained uncertain.

Over the past five decades, X-ray space telescopes have shown that galaxy clusters host hot thermal atmospheres with temperatures of tens of millions of degrees and spatial extents of several million light-years. However, the true size of these atmospheres has been unclear because their X-ray brightness drops sharply at large distances from the cluster center.

By “stacking” X-ray data from 680 galaxy clusters, the team amplified the faint glow of gas in these remote regions. They detected a statistically significant X-ray signal extending out to 4.5 megaparsecs (about 14 million light-years) – well beyond the virial radius, which is generally considered the cluster’s edge.

“The survey’s observation depth for a single object is shallow, but it covers the entire western Galactic hemisphere. By selecting 680 galaxy clusters in the nearby Universe, we obtained an extremely high signal-to-noise surface brightness profile through stacking,” explains lead author Xiaoyuan Zhang, postdoctoral researcher at MPE.

Significant stacked X-ray emission
Animation showing the improvement in the signal-to-noise ratio as more galaxy clusters are added to the stacking. Both the noise level in the stacked image (left) and the surface brightness profile uncertainty (right) decrease with increasing stacking sample size.

“Historically, observations have focused mainly on cluster centers because signals from the outskirts are weak. It is extremely exciting that we can now probe the very edges of clusters – regions that can tell us much about the fundamental physics of gas and dark matter,” adds co-author Benedikt Diemer, Assistant Professor at the University of Maryland.

Using the IllustrisTNG cosmological simulations, developed by researchers at the Max Planck Institute for Astrophysics, the team showed that gas around galaxy clusters is not distributed evenly. It is much denser along cosmic filaments – the large-scale structures connecting matter across the Universe – than in the low-density voids between them. This indicates that galaxy clusters are actively accreting material from the cosmic web through these filamentary channels.

MPE research group leader Esra Bulbul, second author of the study, adds: “Astronomers have long searched for the Universe’s ‘missing baryons’ – the normal matter that should exist but has been difficult to detect. Our results show that, in the far outskirts of galaxy clusters, the amount of gas reaches about 90 percent of what we expect based on the Universe’s average matter density. This suggests that much of the ‘missing’ matter is indeed present, hidden in these vast, hot, and turbulent outer regions. This helps us understand not only how clusters grow but also the physics of the gas that fills the cosmos.”

This study highlights that, in addition to its strong source-detection capabilities, the eROSITA All-Sky Survey also enables the exploration of extremely faint emission – down to below one percent of the sky background – through stacking techniques.




eROSITA

The eROSITA instrument (extended ROentgen Survey with an Imaging Telescope Array) is the primary telescope aboard the Spektr RG (SRG) mission. It was designed to perform the most sensitive all-sky X-ray survey to date, mapping millions of active galactic nuclei and galaxy clusters to study the evolution of the large-scale structure of the Universe and the nature of dark energy.



Contacts:

Dr. Xiaoyuan Zhang
Postdoc Highenergy Group
Tel.:
+49 89 30000-3807
Email: xzhang@mpe.mpg.de
Max Planck Institute for Extraterrestrial Physics

Dr. Esra Bulbul
Head of galaxy clusters group
Tel:
+49 89 30000-3502
Email: ebulbul@...
Max Planck Institute for Extraterrestrial Physics



Original Publication

X. Zhang, E. Bulbul, B. Diemer, Y. E. Bahar, J. Comparat, V. Ghirardini, A. Liu, ,N. Malavasi, T. Mistele, M. Ramos-Ceja, J. S. Sanders, Y. Zhang, E. Artis, Z. Ding, L. Fiorino, M. Kluge, A. Merloni, K. Nandra, and S. Zelmer
The SRG/eROSITA All-Sky Survey Detection of shock-heated gas beyond the halo boundary into the accretion region.
A&A

Source | DOI



Further Information

eROSITA website of the MPE
ERC Project DarkQuest
Webpages of the ERC funded project led by Esra Bulbul

eROSITA relaxes cosmological tension

February 14, 2024

Results from the first X-ray sky survey resolve the previous inconsistency between competing measurements of the structure of the Universe


Unveiling the 'Ghost' Baryonic Matter

November 19, 2024

A team of scientists from the Max Planck Institute for Extraterrestrial Physics (MPE) has shed light on one of the most elusive components of the universe: the warm-hot intergalactic medium (WHIM).

The X-ray sky opens to the world

January 31, 2024

First eROSITA sky-survey data release makes public the largest ever catalogue of high-energy cosmic sources

June 19, 2020


Cosmic dance of the ‘Space Clover’

April 30, 2024

A group led by MPE has, for the first time, detected X-ray gas at the location of the cloverleaf ORC, an odd radio circle (ORC). The origin of ORCs is unknown; in the case of the cloverleaf ORC, the combined data from different wavelengths indicate that the emission is due to a merger of two small galaxy groups.


Saturday, April 18, 2026

Tracing the Origins of Mysterious Gas Clouds near the Galactic Center

The picture shows the dynamic environment around the supermassive black hole at the Milky Way's center, featuring the newly discovered gas cloud G2t alongside previously known clouds G1 and G2, whose similar orbits suggest a common origin from the star system IRS16SW. © ESO/D. Ribeiro for the MPE GC team

The integration team after successfully mounting ERIS to the Cassegrain focus of UT4 at the VLT. Adhering to the restrictions associated with pandemic, both for travel and while at the observatory, make the whole process of integration and testing much more arduous than in normal times. © MPE/ESO/ERIS



New observations and simulations by a team of researchers led by MPE reveal that a massive binary star near our Galaxy’s center is responsible for creating a series enigmatic gas clouds — compact gas clumps that help feed the supermassive black hole Sagittarius A*.

The center of our Milky Way is a remarkably dense and dynamic region. At its heart lies the supermassive black hole Sagittarius A* (Sgr A*), surrounded by stars, gas, and dust moving under extreme gravitational forces. These surroundings provide a natural laboratory for studying how matter behaves close to a black hole and how such objects are supplied with new material.

Over the last twenty years, astronomers have discovered several compact gas clouds near Sgr A* using infrared observations. These “clumps” are important clues to understanding how gas may eventually reach the black hole. Yet their exact origin and the physical processes that shape them have remained uncertain.

The G‑Clouds: A Growing Family

In 2012, astronomers identified a first, compact, ionized gas cloud named G2. It has a mass of a few Earths and emits light from hydrogen and helium, typical for hot, dusty gas. G2 follows an elongated orbit around Sgr A* and shows a faint trailing structure, G2t. Revisiting earlier observations revealed shortly after a similar object, G1, moving along a comparable orbit.

G1, G2, and G2t were proposed to be denser clumps within a common stream of gas. Moderate density fluctuations can lead to a clumpy appearance because a cloud’s brightness increases with the square of its density. Recently, researchers found that gas from G2’s tail has condensed into a third compact clump moving along a similar path, which one now could call G3, except that this name had by now already been given to a different object. Together, these objects form a coherent structure — the G1–2–3 streamer— tracing material that flows through the Galactic Center.

Calculations show that the infall of one such clump, roughly one Earth mass every decade, could provide enough material to sustain Sgr A*’s current activity. Understanding how these clumps form is therefore key to explaining how the black hole is fuelled.

Searching for the Source

Several origins have been proposed: stellar winds from massive stars, explosive events such as novae, or tidal stripping by Sgr A*. To test these ideas, an international team led by MPE used adaptive-optics-assisted spectrographs SINFONI and ERIS, which enable sharp infrared spectroscopy. Focusing on the hydrogen Brackett‑γ emission line, they reconstructed the orbits of the three clouds from their positions and velocities.

The analysis revealed that G1, G2, and G2t travel on orbits with almost identical orientation and shape. The chance that three unrelated objects share such specific orbital parameters is vanishingly small. This indicates a common origin for all three clumps.

A Binary Star as the Creator

By tracing the motions of the gas streamer backward in space and radial velocity, the researchers identified a viable source: the massive contact binary star IRS 16SW, located in the clockwise disk of young stars orbiting Sgr A*. The small differences between the G‑cloud orbits can be explained by the binary’s own orbital motion.

Hydrodynamical simulations further support this conclusion. They show that gas clumps can form where the stellar winds from the binary collide with the surrounding medium, producing a shock between the two stars. There, gas accumulates and becomes compressed, eventually detaching as individual clumps that travel inward — like what is observed in the G1–2–3 streamer.

What does it mean?

These findings suggest that stellar winds from massive stars in the Galactic Center can continually supply material to the black hole. The result connects stellar evolution, gas dynamics, and black‑hole feeding into one consistent picture — showing how star formation and black‑hole growth may be linked even in our own Galaxy.




Contacts:

Dr. Stefan Gillessen
Scientist Infrared-Group
Tel.:
+49 89 30000-3839
Email: Stefan.gillessen@mpe.mpg.de
Max-Planck-Institut für extraterrestrische Physik, Garching

Prof. Dr. Frank Eisenhauer
Direktor der Infrarot-Gruppe am MPE
Tel.:
+49 89 30000-3100
Fax.: +49 89 30000-3102
Email:
eisenhau@mpe.mpg.de
Max-Planck-Institut für extraterrestrische Physik, Garching

Prof. Dr. Reinhard Genzel
Direktor der Infrarot-Gruppe am MPE
Tel.:
+49 89 30000-3280
Fax.: +49 89 30000-3601
Email:
genzel@mpe.mpg.de
Max-Planck-Institut für extraterrestrische Physik, Garching




Original Publication

S. Gillessen, F. Eisenhauer, J. Cuadra, R. Genzel, et al.
The gas streamer G1–2–3 in the Galactic center
A&A, 707 (2026) A79


Source | DOI



Further Information

Series: Paper of the Month

The series “Paper of the month” features a scientific highlight of MPE researchers.


 

Sharper infrared eyes for the VLT: ERIS sees first light

November 23, 2022

The Enhanced Resolution Imager and Spectrograph (ERIS), a science instrument which was built by a consortium under the leadership of the Max Planck Institute for Extraterrestrial Physics, has successfully completed its first test observations. One of them exposed the heart of the galaxy NGC 1097 in mesmerising detail.





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

September 17, 2025

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

 

 


Hyper-luminous, Yet Surprisingly Organized

July 15, 2024

Members of the Infrared Group at the Max Planck Institute for Extraterrestrial Physics (MPE), including Daizhong Liu and Natascha M. Förster Schreiber, and other international institutes, showed that a Hyper-luminous Infrared Galaxy (HyLIRG) can also arise in a massive turbulent rotating disk within a single galaxy, where the gas is organized in a structured way, rather than by collisions of several galaxies. 
 
 
 
 



Thursday, February 19, 2026

Supermassive black hole heartbeat hosts surprising mini-flares in new X-ray discovery

When a star passes too close to a supermassive black hole, the enormous tidal forces can tear it apart, creating a temporary disk of glowing gas. Such tidal disruption events offer a fleeting opportunity to study otherwise invisible black holes. In recent years, X-ray observatories have revealed that some of these events display repeating bursts of X-rays — known as quasi-periodic eruptions (QPEs). These intense and regular pulses occur only in a handful of known sources and remain an open mystery in high-energy astrophysics. They have quasi-periodicities ranging from a few hours to a few days. In a new study led by MPE PhD student Pietro Baldini, astronomers report that J2344 exhibits QPE-like eruptions— but with unprecedented behaviour uncovered thanks to follow-up observations with the Einstein Probe and XMM-Newton satellites. “Quasi-periodic eruptions are extremely rare, so I was already excited when I saw the Einstein Probe light curve,” says Pietro Baldini. “But when the XMM-Newton data came in, my jaw dropped: not only had we discovered a new QPE source, but its behaviour was completely unprecedented.”

Zoom on the features of the XMM-Newton lightcurve of J2344: A crest of narrow flares can be distinctively observed over the broader modulations (the QPEs)

Astronomers have uncovered a rare and unexpectedly complex pattern of X-ray eruptions in the source eRASSt J2344, the most luminous tidal disruption event discovered by SRG/eROSITA. Follow-up observations with Einstein Probe and XMM-Newton reveal powerful outbursts repeating every twelve hours - the hallmark of quasi-periodic eruptions (QPEs) - but with an unprecedented addition: shorter, hotter mini-flares embedded within them. This layered behavior challenges current models of how matter behaves in the closest regions around supermassive black holes.

Cosmic ECG of J2344
Animation of the X-ray lightcurve of J2344. The sequence is sped up by a factor of 10,000, revealing rhythmic eruptions and brief, intense mini-flares appearing at the beginning, middle, and end of the lightcurve – like a cosmic electrocardiogram.

The observations revealed a sequence of main X-ray eruptions lasting about two hours and recurring every twelve hours, a typical pattern for known QPEs. However, J2344 also produced a series of much shorter and hotter flares, lasting only a few minutes — a feature never observed before in such systems. The leading explanation for QPEs involves a smaller object, such as a star, orbiting the supermassive black hole and interacting periodically with its accretion disk. While this model explains the regular main eruptions, it cannot account for the additional rapid flares seen in J2344. Their presence indicates that the physics of matter near black holes may be more complex than previously thought. To better understand the mechanisms at work, the team has been awarded additional observation time to monitor J2344 over longer timescales and explore how the two types of flares are connected.

Since its launch in January 2024, the Einstein Probe (EP) has been continuously surveying the variable X-ray sky. Its wide-field optics and high-cadence observations, together with its sensitive follow-up X-ray telescopes. make it uniquely capable of capturing rare and transient events such as QPEs. “Since launch, Einstein Probe has opened an entirely new discovery space in X-ray astronomy,” says Arne Rau (MPE). “This result is just a first glimpse of the kind of rare and unexpected phenomena we expect to find, and we are very excited about what comes next.” As Einstein Probe continues its mission, astronomers expect to uncover more of these enigmatic systems, providing fresh insights into the dynamic behaviour of supermassive black holes — and the extreme environments around them.




Contacts:

Pietro Baldini
PhD-student
Tel:
+49 89 30000-3269
Email: baldini@mpe.mpg.de

Arne Rau
scientist
Tel:
+49 89 30000-3851
Fax: +49 89 30000-3569
Email: arau@mpe.mpg.de

Kirpal Nandra
managing director
Tel:
+49 89 30000-3401
Fax:
+49 89 30000-3569
knandra@mpe.mpg.de



Publication

P. Baldini, A. Rau, A. Merloni, B. Trakhtenbrot, R. Arcodia, M. Giustini, G. Miniutti, S. J. Brennan, M. Freyberg, P. Sánchez-Sáez, I. Grotova, Z. Liu, T. Lian, K. Nandra
Discovery of crested quasi-periodic eruptions following the most luminous SRG/eROSITA tidal disruption event
https://doi.org/10.1051/0004-6361/202558241


Tuesday, January 27, 2026

New insights into the origins of the chemistry of life

In the heart of our Galaxy, scientists discovered the first sulfur-bearing six-membered ring molecule hiding in an interstellar cloud. © MPE/ NASA/JPL-Caltech

This is a state-of-the-art self-developed laboratory spectrometer. MPE scientists Christian Endres and Mitsunori Araki (right) orchestrate the experiment: one drives the production of a new molecule, while the other captures its signatures through precision spectroscopy. At the center of the photo stands a massive vacuum chamber—the arena where a new molecule is born and immediately put under measurement. © MPE



Astrophysicists Discover Largest Sulfur-Containing Molecular Compound in Space

• For the first time, a complex, ring-shaped molecule containing 13 atoms—including sulfur—has been detected in interstellar space, based on laboratory measurements.

• The discovery closes a critical gap by linking simple chemistry in space with the complex organic building blocks found in comets and meteorites.

• This represents a major step toward explaining the cosmic origins of the chemistry of life

Researchers at the Max Planck Institute for Extraterrestrial Physics (MPE), in collaboration with astrophysicists from the Centro de Astrobiología (CAB), CSIC-INTA, have identified the largest sulfur-bearing molecule ever found in space: 2,5-cyclohexadiene-1-thione (C₆H₆S). They made this breakthrough by combining laboratory experiments with astronomical observations. The molecule resides in the molecular cloud G+0.693–0.027, about 27,000 light-years from Earth near the center of the Milky Way. With a stable six-membered ring and a total of 13 atoms, it far exceeds the size of all previously detected sulfur-containing compounds in space.

“This is the first unambiguous detection of a complex, ring-shaped sulfur-containing molecule in interstellar space—and a crucial step toward understanding the chemical link between space and the building blocks of life.”
— Dr. Mitsunori Araki, scientist at MPE and lead author of the study

Until now, astronomers had only detected small sulfur compounds—mostly with six atoms or fewer—in interstellar space. Large, complex sulfur-containing molecules were expected, particularly due to sulfur’s essential role in proteins and enzymes, yet these larger molecules had remained elusive. This gap between interstellar chemistry and the organic inventory found in comets and meteorites had been a central mystery in astrochemistry.

The newly discovered C₆H₆S is structurally related to molecules found in extraterrestrial samples—and is the first of its kind definitively detected in space. It establishes a direct chemical “bridge” between the interstellar medium and our own solar system. The team synthesized the molecule in the lab by applying a 1,000-volt electrical discharge to the evil smelling liquid thiophenol (C₆H₅SH). Using a self-developed spectrometer, they precisely measured the radio emission frequencies of C₆H₆S, producing a unique “radio fingerprint” with more than seven significant digits. This signature was then matched to astronomical data from a large observational survey led by CAB, collected with the IRAM 30m and the Yebes 40-meter radio telescopes in Spain.

“Our results show that a 13-atom molecule structurally similar to those in comets already exists in a young, starless molecular cloud. This proves that the chemical groundwork for life begins long before stars form.”
— Dr. Valerio Lattanzi, Scientist at MPE

The discovery suggests that many more complex sulfur-bearing molecules likely remain undetected—and that the fundamental ingredients of life may have formed in the depths of interstellar space, long before Earth came into existence.




Contacts:

Dr. Mitsunori Araki
Postdoc at Center for Astrochemical Studies
Tel:
+49 89 30000-3314
araki@mpe.mpg.de
Max Planck Institute for Extraterrestrial Physics

Dr. Valerio Lattanzi
Scientist at Center for Astrochemical Studies
Tel:
+49 89 30000-3808
lattanzi@mpe.mpg.de

Prof. Dr. Paola Caselli
Director of the CAS group at MPE
Tel:
+49 89 30000-3400
Fax: +49 89 30000-3399
caselli@mpe.mpg.de
Max Planck Institute for Extraterrestrial Physics, Garching



Publication

M. Araki, M. Sanz-Novo, C. P. Endres, P. Caselli, V. M. Rivilla, I. Jiménez-Serra, L. Colzi, S. Zeng, A. Megías, A. López-Gallifa, A. Martínez-Henares, D. San Andrés, S. Martín, M. A. Requena-Torres, J. García de la Concepción, V. Lattanzi
Sulfur-Bearing Cyclic Hydrocarbons in Space
Nature Astronomy Issue 1 Nr. 10 2026


Source


Friday, August 01, 2025

Semi-heavy water ice detected around young Sun-like star

JWST image of the protostellar system L1527 IRS. The protostar is, embedded within a cloud of dust, gas and ice (including semi-heavy water ice), which feeds its growth. © NASA/ESA/CSA/STScI




For the first time, a team at Leiden University led by Ewine van Dishoek, an external scientific member of MPE, has robustly detected semi-heavy water ice around a young, sun-like star. These results support the theory that some of the water in our solar system originated before the Sun and its planets formed. The researchers used the James Webb Space Telescope to make their discovery, which they have published in The Astrophysical Journal Letters.

One way astronomers trace the origin of water is by measuring its deuteration ratio. Deuterium is a stable isotope of hydrogen whose nucleus contains a neutron as well as the proton. Water composed of one deuterium atom and one hydrogen atom – HDO rather than H₂O – is also known as semi-heavy water. A high fraction of semi-heavy water indicates that the water formed in a very cold place, such as the primitive dark clouds of dust, ice, and gas from which stars are born.

In our oceans, comets, and icy moons, up to one in a couple of thousand water molecules consists of semi-heavy water. This is about ten times higher than expected based on the composition of the Sun. Therefore, astronomers hypothesise that some of the water pin our solar system originated as ice in dark clouds hundreds of thousands of years before the birth of the Sun. To confirm this, they must measure the deuteration ratio of water ice in star-forming regions.

An international team of astronomers has now detected a high ratio of semi-heavy water ice in a protostellar envelope. This is the cloud of material surrounding a star in its embryonic stages.

The astronomers used the James Webb Space Telescope. Prior to its launch, the water deuteration ratio in star-forming regions could only be reliably measured in the gas phase, where chemical alteration occurs."Now, with the unprecedented sensitivity of Webb, we observe a beautifully clear semi-heavy water ice signature toward a protostar," says Katie Slavicinska, the Leiden University (Netherlands) PhD student who led the study.

The L1527 water deuteration ratio is very similar to that of some comets, as well as to the protoplanetary disk of a more evolved young star. This suggests that the water found in all of these objects has similar cold and ancient chemical origins.

"This finding adds to the mounting evidence that the bulk of water ice makes its journey largely unchanged from the earliest to the latest stages of star formation," says co-author Ewine van Dishoeck, a professor of astronomy at Leiden University who has spent much of her career tracing the journey of water through space.




Contact:

Ewine van Dishoeck
external scientific member
tel:
+49 89 30000-3592
fax: +49 89 30000-3569
ewine@mpe.mpg.de



Original publication

K. Slavicinska, Ł. Tychoniec, M. G. Navarro, E. F. van Dishoeck, et al.
HDO ice detected toward an isolated low-mass protostar with JWST 2025 ApJL L19


Source | DOI



More Information

Detection of semi-heavy water ice around young sunlike star


Monday, October 30, 2023

Ultracompact: The Black Hole at the center of our Milky Way


This image shows the motion of the flares on the sky from a combined fit of the astrometric flare data, taking into account constraints from the polarimetry data. The colours indicate the progression of the flare orbit over time. The background image is a simulated image of the black hole at the center of our Milky Way with the circle indicating the shadow size of the black hole. © MPE


Every now and then, luminous gas is seen swirling around Sagittarius A*, the black hole at the center of the Milky Way. Now, astronomers at the Max Planck Institute for Extraterrestrial Physics (MPE) have succeeded in measuring the black hole mass from this motion – and it perfectly matches the measurement honoured with the Nobel Prize in Physics in 2020, which has been refined ever since. The conclusion: the 4.3 million solar masses are contained within an orbit smaller than that of Venus around the Sun. A truly astounding mass concentration!

At the center of our Milky Way there is a black hole with a mass of 4.3 million solar masses – several teams have established this beyond any reasonable doubt over the past four decades. In 2020, this finding was even honoured by the Nobel Prize in Physics for MPE director Reinhard Genzel. Since then, the research has focused on using the galactic centre as a laboratory to test the theory of general relativity in the very strong gravitational field close to this black hole – and to pin down its properties with high precision.

The team at MPE has now used GRAVITY, the near-infrared interferometer at ESO’s Very Large Telescope Interferometer (VLTI) to closely monitor the emission from the region around the black hole and probe for extremely bright states: flares. Such flares occur once or twice per day, and the emission becomes bright enough that it is possible to trace the motion of surrounding gas. The team analysed flares observed during 2018, 2021 and 2022, for which GRAVITY simultaneously delivered position and polarisation measurements.

This combined data set allowed the team to determine the mass of the black hole with high accuracy to be 4.297 million solar masses, a strong and independent constraint to previous measurements. The new data also show that the mass has to be enclosed inside the flares’ radius of around nine gravitational radii, which is smaller than the orbital radius of the planet Venus around the Sun.

“The mass we derived now from the flares at just a few gravitational radii is compatible with the value measured from the orbits of stars at several thousand gravitational radii,” emphasizes Diogo Ribeiro, who was responsible for the theoretical modelling at MPE. “This strengthens the case for a single black hole at the center of the Milky Way.”

Studying the motion of this orbiting gas can also shed light on the formation history of the structures at the Galactic Center. The orientation of the flare orbits is close to that of a stellar disk observed at 100,000 gravitational radii, suggesting a physical connection. “It is great to see the repeated, similar behaviour of the flares,” points out Antonia Drescher, who analysed the polarimetric measurements. “All of them show a clockwise looped motion on the sky; all have a similar radius and a similar orbital period. This is really beautiful to see.”

Strong winds from the stars farther out probably fuel the accretion flow of gas, which carries the initial angular momentum down to scales close to the event horizon. “The amount of information from the polarization was extremely fruitful and we learn a lot about the physics in the Galactic Center region from the joint data set,” adds Ribeiro. The dynamics of the flares may even carry information on the spin of the black hole – an open question today.




Contacts:

Diogo Currito Ribeiro
tel:+49 89 30000-3852
tel:+49 89 30000-0

dribeiro@mpe.mpg.de

Antonia Drescher
phd student
tel:+49 89 30000-3853
tel:+49 89 30000-

drescher@mpe.mpg.de

Stefan Gillessen
scientist
tel:+49 89 30000-3839
tel:017699664139
tel:+49 89 30000-3390

ste@mpe.mpg.de



Original publication:

GRAVITY Collaboration
Polarimetry and astrometry of NIR flares as event horizon scale, dynamical probes for the mass of Sgr A*
A&A 677, L10 (2023)

Source | DOI




More Information


GRAVITY instrument confirms black hole status of the Milky Way centre





Thursday, May 25, 2023

eROSITA sees changes in the most powerful quasar

Artist’s impression of a quasar

Credit: NOIRLab/NSF/AURA/J. da Silva

Researchers have observed the X-ray emission of the most luminous quasar seen in the last 9 billion years of cosmic history. Significant changes in the quasar’s emission give a new perspective on the inner workings of quasars and how they interact with their environment. The study was led by Dr Elias Kammoun, a postdoctoral researcher at the Research Institute in Astrophysics and Planetology (IRAP), and Zsofi Igo, a PhD candidate at the Max Planck Institute for Extraterrestrial Physics (MPE).

Hosted by a galaxy 9.6 billion light years away from the Earth, between the constellations of Centaurus and Hydra, the quasar known as SMSS J114447.77-430859.3, or J1144 for short, is extremely powerful. Shining 100,000 billion times brighter than the Sun, J1144 is much closer to Earth than other sources of the same luminosity, allowing astronomers to gain insight into the black hole powering the quasar and its surrounding environment.

Quasars are among the brightest and most distant objects in the known universe, powered by the fall of gas into a supermassive black hole. They can be described as active galactic nuclei (AGN) of very high luminosity that emit vast amounts of electromagnetic radiation; observable in radio, infrared, visible, ultraviolet and X-ray wavelengths. J1144 was initially observed in visible wavelengths in 2022 by the SkyMapper Southern Survey (SMSS).

For this study, researchers combined observations from several observatories in orbit around the Earth: the eROSITA instrument on board the Spectrum-Roentgen-Gamma (SRG) observatory, the ESA XMM-Newton observatory, NASA’s Nuclear Spectroscopic Telescope Array (NuSTAR), and NASA’s Neil Gehrels Swift observatory. eROSITA detected the source during the first five sky scans between 2020 and 2022. “eROSITA is not only a fantastic instrument to discover such rare bright quasars, but also to monitor their variability by repeatedly scanning their X-ray emission every six months,” says author Zsofi Igo. “It will be vital to further our knowledge of accretion physics.”

The team used the data from eROSITA and the other observatories to measure the temperature of the X-rays being emitted from the quasar. They found this temperature to be around 350 million Kelvin, more than 60,000 times the temperature at the surface of the Sun. The team also found that the mass of the black hole at the quasar’s centre is around 10 billion times the mass of the Sun, and the rate at which it is growing to be of the order of 100 solar masses per year.

Further information was revealed by studying how the quasar properties change over time. For example, eROSITA found J1144 to be variable in its brightness over timescales of a year, but interestingly showed little variation in the shape of its energy spectrum during this period. There was also variability detected on a timescale of a few days, which is not usually seen in quasars with black holes as large as the one residing in J1144. Additionally, the observations showed that while a portion of the gas is swallowed by the black hole, some gas is ejected in the form of extremely powerful winds, releasing large amounts of energy into the host galaxy.

“Similar quasars are usually found at much larger distances, so they appear much fainter, and we see them as they were when the Universe was only 2-3 billion years old,” says Dr. Kammoun, lead author of the paper. “J1144 is a very rare source as it is so luminous and much closer to Earth, giving us a unique glimpse of what such powerful quasars look like.”



Contacts:

Zsofi Igo
phd student
+49 89 30000

zigo@mpe.mpg.de

Andrea Merloni
Senior Scientist
+49 89 30000-3893 +49 89 30000-3569

am@mpe.mpg.de

Original publication:

E. S. Kammoun, Z. Igo, J. M. Miller, et al.
The first X-ray look at SMSS J114447.77-430859.3: the most luminous quasar in the last 9 Gyr
Monthly Notices of the Royal Astronomical Society, stad952

DOI

More Information:

eROSITA
eROSITA webpages at MPE



Monday, February 06, 2023

Serendipitous detection of a rapidly accreting black hole in the early Universe


A new, faint X-ray source (right) was found in the eROSITA Final Equatorial-Depth Survey (eFEDS). Using optical follow-up observations (left top), the eROSITA team identified this as a quasar at a redshift of z=6.56. Quasars are powered by a central supermassive black hole, accreting material at a high rate. This is the most distant blind X-ray detection to date and allows the scientists to investigate the growth of black holes in the early Universe. Credit: Collage: MPE/Cluster Origins


X-ray image cutouts in the region of J0921+0007. The eROSITA/eFEDS image is on the left, the high-resolution Chandra image is on the right. Credit: © MPE

eROSITA telescope finds an X-ray bright, optically faint quasar accreting material at an extremely high rate only about 800 million years after the big bang

Analysing data from the eROSITA Final Equatorial-Depth Survey, astronomers at MPE have found a faint X-ray source identified with a very distant supermassive black hole that is accreting material at an extremely high rate. This quasar, at a redshift of z=6.56, is much more luminous in X-rays than expected. This is the most distant blind X-ray detection to date, from an object whose radiation was emitted almost 13 billion years ago and allows the scientists to investigate the growth of black holes in the early Universe.

Supermassive black holes at the centres of galaxies can be detected out to great distances – but only if they accrete matter, which heats up and shines brightly, causing it to become an “active galactic nucleus” (AGN). These “quasars” or quasi-stellar objects then outshine the rest of their galaxy, but at large distances, they nevertheless are difficult to detect and extremely rare. To date, only about 50 quasars with redshift z>5.7, when the Universe was less than one billion years old, have been detected in X-rays.

Analysing X-ray data of the eROSITA Final Equatorial-Depth Survey (eFEDS), which were taken during the Performance Verification Phase of the eROSITA telescope in 2019, the eROSITA team found a new point source. In collaboration with colleagues using the Subaru telescope, they identified the X-ray emission with a previously known quasar J0921+0007 at a redshift of 6.56, which was initially discovered by a team searching for distant sources with the Subaru telescope. Dedicated follow-up observations at infrared wavelengths showed that the black hole has 250 million solar masses, a relatively low mass for a supermassive black hole at this distance. Chandra follow-up observations confirmed the high X-ray luminosity measured by eROSITA, indicating a very high accretion rate.

“We did not expect to find such a low-mass AGN already in our very first mini-survey with eROSITA”, says Julien Wolf, who searches for the most distant supermassive black holes in eROSITA data as part of his Ph.D. at the Max Planck Institute for Extraterrestrial Physics (MPE). “It is the most distant serendipitous X-ray detection to date and its properties are rather atypical for quasars at such high redshifts: it is intrinsically faint in visible light but very luminous in X-rays.”

The quasar detected by eROSITA shows properties, which are similar to so-called narrow-line Seyfert-1 galaxies, a particular class of active galaxies in the local Universe. They are associated with supermassive black holes below 100 million solar masses, accreting matter at a high rate, and could be younger than their higher mass siblings.

“Hunting for rare objects like this needs deep multi-wavelength data complementing the large X-ray survey area. Luckily, most of the sky is mapped at optical and infrared wavelengths, although the Subaru data in eFEDS area are especially deep,” emphasises Mara Salvato, eROSITA spokesperson.

While the bulk of active galaxies detected at high redshifts (i.e. large distances) host black holes with masses of one to ten billion solar masses, there must also be many with less massive black holes. These, however, need to accrete matter at a very high rate to shine brightly enough so that they can be detected at all.

In addition to this source, the team had earlier found another luminous and similarly distant quasar in the same field. “eROSITA is uniquely suited to performing a census of rare X-ray objects like these powerful high-redshift quasars,” states Kirpal Nandra, director of high-energy physics at MPE. “This is now the second example we’ve found in eFEDS when we expected to find none”.

The early eROSITA data are just a foretaste of what’s to come. Based on these early detections, the scientists expect to find hundreds more examples with the eROSITA all-sky survey. In an effort to find this elusive population of yet unknown distant quasars, the group has developed a large programme exploring the eROSITA all-sky survey. This dedicated survey has already led to the discovery of five new X-ray luminous quasars at z>5.6, which will be presented in a future publication. Simultaneously, a Russian team of researchers have also reported the first eROSITA high-redshift detections in the northern hemisphere.

Objects like these are currently our best way of understanding early black hole formation. If the surprising eFEDS detections are confirmed in the larger dataset, it could represent a challenge for some evolutionary models.

Contacts:

Julien Wolf
phd student
tel.+49 89 30000-3879
fax.+49 89 30000-3569

jwolf@mpe.mpg.de

Mara Salvato
Senior Scientist
tel.+49 89 30000-3815
fax.+49 89 30000-3569

mara@mpe.mpg.de

Kirpal Nandra
director
tel.+49 89 30000-3401
fax.+49 89 30000-3569

knandra@mpe.mpg.de

Original publication

J. Wolf, K. Nandra, M. Salvato, et al.
X-ray emission from a rapidly accreting narrow-line Seyfert 1 galaxy at z=6.56 A&A 669, A127 (2023)

Source