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)
To the Point:
Hydrogen emission as a tracer
Masses and growth
Implications for research
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
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
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.
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.
“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.
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.
“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.
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.

