Max Planck Institute for Astronomy

Max Planck Institute for Astronomy

Astronomy is one of the oldest sciences – and yet also one of the most modern. The Max Planck Institute for Astronomy in Heidelberg is proof of this. The researchers here decipher the mysteries of the universe with high-tech instruments, constructing clever add-ons and detectors for telescopes and satellites which examine the light from cosmic sources according to all the laws of physics. Infant stars and the birth of planetary systems are but two objects of their scientific curiosity. “Is Earth the only inhabited place in the universe?” is one of their burning research questions. The Max Planck astronomers also travel through the depths of space and time, investigating active galaxies and quasars to gain an idea of the beginning and the development of today’s richly structured universe.

Contact

Königstuhl 17
69117 Heidelberg
Phone: +49 6221 528-0
Fax: +49 6221 528-246

PhD opportunities

This institute has an International Max Planck Research School (IMPRS):

IMPRS for Astronomy and Cosmic Physics

In addition, there is the possibility of individual doctoral research. Please contact the directors or research group leaders at the Institute.

Department Planet and Star Formation

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Department Atmospheric Physics of Exoplanets

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Department Galaxies and Cosmology

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Department Planet and Star Formation

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Cross-section of a yellow-reddish glowing gas shell with flames reaching out into space around a small black sphere in the center

A new class of supermassive black holes embedded in a thick gas shell could explain small red dots in images from the James Webb Space Telescope

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An artist’s impression of a protoplanetary disk around the young star V883 Orionis. The disk consists of gas and dust spiralling towards the central bright star, glowing in warm yellow and orange hues. The outer regions appear cooler and more diffuse. A zoom-in inset highlights the presence of complex organic molecules, depicted as ball-and-stick molecular structures, including propionitrile, glycolonitrile, alanine, glycine, ethylene glycol, and acetonitrile. These molecules are shown floating in space, representing the chemical composition of the disk.

Astronomers find signs of complex organic molecules – precursors to sugars and amino acids – in a planet-forming disc

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A cylindrical, transparent container stands on an open, silver-coloured metal frame. It is filled with clear water, at the centre of which a slender, funnel-shaped vortex rotates from surface to bottom. The water surface is indented at the centre and slightly rippled at the edges. Tiny air bubbles are drawn downward by the vortex, forming fine lines along the inner wall. LED light strips encircle the container, making the vortex stand out starkly against the dark surroundings. The scene has the appearance of a scientific demonstration visualising fluid dynamics.

A new laboratory experiment uses a water vortex to investigate how planets form from material in protoplanetary gas and dust disks

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A cylindrical, transparent container stands on an open, silver-coloured metal frame. It is filled with clear water, at the centre of which a slender, funnel-shaped vortex rotates from surface to bottom. The water surface is indented at the centre and slightly rippled at the edges. Tiny air bubbles are drawn downward by the vortex, forming fine lines along the inner wall. LED light strips encircle the container, making the vortex stand out starkly against the dark surroundings. The scene has the appearance of a scientific demonstration visualising fluid dynamics.

A new laboratory experiment uses a water vortex to investigate how planets form from material in protoplanetary gas and dust disks

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stars and galaxies in front of black background

The first images are larger and deeper than ever before, showing sections of the Milky Way and the deep universe. Researchers from the Max Planck Society report on their planned research

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The galaxies we see around us have had a turbulent past, full of collisions, plentiful gas flows, and bursts of increased star formation. Our home galaxy is no exception. A team led by Hans-Walter Rix at the Max Planck Institute for Astronomy is reconstructing the Milky Way’s history in a process that resembles archaeological research.

Six months after its launch, the James Webb telescope has delivered its first images, revealing fascinating insights into distant galaxies as well as turbulent scenarios encompassing the birth and death of stars. The space observatory has also captured the spectra of exoplanets. The Max Planck Institute for Astronomy in Heidelberg was involved in building the instruments.

Two years ago, a new department opened at the Max Planck Institute for Astronomy in Heidelberg in which researchers study the atmospheres of extrasolar planets. Its young director, Laura Kreidberg, has made a name for herself with some of the first observations of these worlds and is one of the lucky ones who will get to observe with the new James Webb Space Telescope.

The chemistry of a star contains valuable information such as its history or affiliation with a particular stellar population. But accurate detection of abundances of chemical elements based on spectral fingerprints require highly sophisticated methods. Maria Bergemann from the Max Planck Institute for Astronomy in Heidelberg has set new standards here.

Stars cluster in galaxies of dramatically different shapes and sizes: elliptical galaxies, spheroidal galaxies, lenticular galaxies, spiral galaxies, and occasionally even irregular galaxies. Nadine Neumayer at the Max Planck Institute for Astronomy in Heidelberg and Ralf Bender at the Max Planck Institute for Extraterrestrial Physics in Garching investigate the reasons for this diversity. They have already identified one crucial factor: dark matter.

Postdoctoral Prize Fellowship and Postdoctoral Positions (m/f/d) | Galaxies and Cosmology

Max Planck Institute for Astronomy, Heidelberg October 02, 2025

Postdoctoral Fellowship Positions (m/f/d) | Planet & Star Formation

Max Planck Institute for Astronomy, Heidelberg September 15, 2025

Tenure-Track Staff Position (m/f/d) | Atmospheric Physics of Exoplanets (APEx)

Max Planck Institute for Astronomy, Heidelberg September 12, 2025

A missing link in black hole evolution

2024 Häberle, Maximilian; Neumayer, Nadine; Pössel, Markus; Nielbock, Markus

Astronomy Astrophysics

We have identified rapidly moving stars in the Omega Centauri star cluster, indicating the presence of a black hole at its centre with a mass of at least 8,200 solar masses. While astronomers had long assumed such intermediate-mass black holes exist, there has been a lack of reliable observations to confirm it. This discovery also establishes that Omega Centauri is the core region of a galaxy absorbed by the Milky Way billions of years ago. Stripped of its outer stars, the galactic core has since undergone little further evolution.

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Rocky planets could harbour water already at birth

2023 Markus Nielbock, Giulia Perotti, Thomas Henning

Astronomy Astrophysics

Water is essential for life, at least on Earth. The question of its origin is therefore central to the chance of life on other Earth-like planets. Through observations with the James Webb Space Telescope, we have now found evidence for a mechanism that supplies potentially habitable planets with water during their formation. The JWST/MIRI data indicate a substantial reservoir of water in the central region of a planet-forming disk of gas and dust around the young star PDS 70, where Earth-like planets may be forming.

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The exotic weather of the hot Jupiter WASP-121 b

2022 Thomas Mikal-Evans

Astronomy Astrophysics

Through observations of the exoplanet WASP-121 b with the Hubble Space Telescope, we have studied the atmospheric conditions on the night side of a hot Jupiter in detail for the first time. Incorporating measurements from the dayside, we determined the temperature profile in the stratosphere and an unusual water cycle between the two hemispheres. This study is a significant step towards deciphering the global matter and energy cycles in the atmospheres of exoplanets.

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Raw material for new stars

2021 Syed, Jonas

Astronomy Astrophysics

From the data of the THOR survey led at the Max Planck Institute for Astronomy (MPIA), we have identified one of the longest known structures in the Milky Way, stretching some 3900 light years and consisting almost entirely of atomic hydrogen gas. This filament, called Maggie, could represent a link in the stellar matter cycle. Our analysis suggests that locally the atomic gas binds to molecular hydrogen there. Compressed in large clouds, this material ultimately forms stars.

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How to weigh a quasar

2021 Dr. Felix Bosco, Dr. Jörg-Uwe Pott

Astronomy Astrophysics

We have successfully tested the performance of a new method for determining the masses of extreme black holes in quasars, called spectroastrometry, for the first time through observations. It measures radiation coming from gas in the vicinity of supermassive black holes. Compared to other weighing techniques, it is relatively straightforward and efficient to perform using modern large telescopes. Its high sensitivity makes it possible to study the surroundings of luminous quasars and supermassive black holes in the early Universe.

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