Showing posts with label Epsilon Indi Ab. Show all posts
Showing posts with label Epsilon Indi Ab. Show all posts

Friday, April 24, 2026

Astronomers find an exo-Jupiter, and it seems to have clouds

Artist's impression of the planet Epsilon Indi Ab, with water clouds atop its ammonia-dominated atmosphere.
© E. C. Matthews, MPIA / T. Müller, HdA
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To the point

  • New observations: Astronomers have used the James Webb Space Telescope to study the atmosphere of a massive Jupiter-analogue.

  • Evidence for clouds: Surprisingly, the observations indicate the presence of water-ice clouds – previous models had been too simple!

  • Part of a larger search: Observations and analysis provide a test run for certain challenges of observing a “second Earth”



A team of astronomers led by Elisabeth Matthews at the Max Planck Institute for Astronomy (MPIA) has made a discovery that highlights the limits of most current models of exoplanet atmospheres: water-ice clouds on a distant Jupiter-like exoplanet called Epsilon Indi Ab. The way the observations were made has broader implications for exoplanet research: as an interesting immediate step on the path towards eventually finding and characterizing an Earth-analogue exoplanet.

Step by step towards a second Earth

Exoplanet research has an ambitious long-term goal: at some time within the next few decades, astronomers hope to be able to detect traces of life on an exoplanet. On the path towards that goal, exoplanet research has gone through several stages. In the first stage of research, from 1995 to about 2022, the main focus of exoplanet researchers was on detecting more and more exoplanets, using indirect methods that gave them information about the masses of some exoplanets, the diameters of others, and in some cases both mass and diameter.

When the James Webb Space Telescope (JWST) began operating in earnest in 2022, exoplanet research entered a second stage: High-quality, detailed information about the atmospheres of many exoplanets became available for a considerable number of planets, and researchers began to reconstruct the properties of such atmospheres in some detail. This is still at least one stage removed from realistic searches for life on exoplanets, which are expected to require the next generation of space telescopes.

With the new study, the astronomers are exploring some aspects of these next-level methods – although not yet for a planet like Earth. Elisabeth Matthews (Max Planck Institute for Astronomy), the study’s lead author, says: “JWST is finally allowing us to study solar-system analogue planets in detail. If we were aliens, several light years away, and looking back at the Sun, JWST is the first telescope that would allow us to study Jupiter in detail. For studying Earth in detail, we would need much more advanced telescopes, though.”

Elusive exo-Jupiters But as amazing as results from JWST about exoplanet atmospheres are, studying the analogues of our Solar System’s Jupiter has proven surprisingly difficult. Almost all gas giants studied with JWST so far differ from Jupiter in that they are much, much hotter – for the most common method of studying exoplanet atmospheres to work, the planet needs to pass in front of its host star from the perspective of an observer on Earth, and the probability for that configuration is much higher when the planet is closer to its star, which in turns makes the planet comparatively hot. The new study by Elisabeth Matthews and her colleagues uses a different technique. This is the closest observers have come to studying a Jupiter-analogue – and it has provided at least one surprise!

Matthews and her colleagues used JWST’s mid-infrared instrument MIRI to obtain direct images of the planet Epsilon Indi Ab. Naming conventions for exoplanets are such that this designation indicates the first planet discovered to orbit the star Epsilon Indi A in the constellation Indus (in the southern sky). Bhavesh Rajpoot, a PhD student at the Max Planck Institute for Astronomy who contributed to the study, says: “This planet has a considerably greater mass than Jupiter – the new study fixes its mass at 7.6 Jupiter masses – but the diameter is about the same as for its solar-system cousin.”

A more massive, slightly warmer Jupiter

Epsilon Indi Ab is about four times as distant from its central star as Jupiter is from the Sun. The star Epsilon Indi A itself is a bit less massive and a bit less hot than our Sun. This makes the surface temperature of Epsilon Indi Ab very low, at about 200 to 300 Kelvin (between –70 and +20 degrees Celsius). The reason the planet is slightly warmer than Jupiter (140 K) is that there is still a lot of heat remaining from the planet formation phase. Over the next billions of years, Epsilon Indi Ab will steadily cool down, eventually becoming colder than Jupiter. The astronomers used the coronagraph of the MIRI instrument to block out the central star’s light, which would otherwise outshine the planet’s much dimmer light. They then took an image through a very particular filter: 11.3 μm, which is just outside the wavelength region close to 10.6 μm that is characteristic for ammonia molecules NH3. The comparison with images at 10.6 μm that Matthews and her team had already taken in 2024 enabled the astronomers to estimate the amount of ammonia present. (Incidentally, both the mechanical filter wheels placing the coronagraph and the filter in front of the MIRI camera were constructed at MPIA, one of the German contributions to the JWST.)

Surprising evidence for clouds

For Jupiter, both ammonia gas and ammonia clouds dominate the upper layers of the atmosphere that are visible in observations. Given its properties, Epsilon Indi Ab was thought to have massive amounts of ammonia gas as well, although not ammonia clouds. Surprisingly, the photometric comparison showed somewhat less ammonia than expected. The best explanation Matthews and her colleagues found for this deficit was the presence of thick but patchy water-ice clouds, similar to the high-altitude cirrus clouds in Earth’s atmosphere – an unexpected complication!

In interpreting observations of this kind, astronomers compare their data to simulations of planetary atmospheres. But most of the published models neglect to include clouds, as the presence of clouds makes the computation that much more complicated – clearly something theorists will need to fix! James Mang (University of Texas at Austin), a co-author of the study, says: “It’s a great problem to have, and it speaks to the immense progress we’re making thanks to JWST. What once seemed impossible to detect is now within reach, allowing us to probe the structure of these atmospheres, including the presence of clouds. This reveals new layers of complexity that our models are now beginning to capture, and opens the door to even more detailed characterization of these cold, distant worlds.”

An opportunity for the Roman Space Telescope

On the upside, there is an upcoming opportunity for observing the water-ice clouds, which are very reflective directly: NASA’s Nancy Grace Roman Space Telescope, where MPIA is a partner, is slated for launch in 2026–2027, and should be suitable for exactly that kind of observation. In the meantime, Matthews and her colleagues are applying for JWST observation time to target additional cold Jupiter-analogues. And at the same time that Matthews and other astronomers are learning more about cold exo-Jupiters, their observational techniques are laying the groundwork that, if all goes well, will help future observers target earthlike planets, in search of life.

Background information

The results described here have been published as E. C. Matthews et al., “A second visit to Eps Ind Ab with JWST: new photometry confirms ammonia and suggests thick clouds in the exoplanet atmosphere of the closest super-Jupiter” in the Astrophysical Journal Letters.

The MPIA researchers involved are Elisabeth Matthews and Bhavesh Rajpoot, in collaboration with James Mang and Caroline Morley (University of Texas at Austin), Aarynn Carter and Mathilde Mâlin (Space Telescope Science Institute), and others.




Contacts:

Dr. Markus Pössel
Head of press relations and outreach
Tel:
 +49 6221 528-261
pr@mpia.de
Max Planck Institute for Astronomy, Heidelberg

Dr. Elisabeth Matthews
Tel:
+49 6221 528-102
matthews@mpia.de
Max Planck Institute for Astronomy, Heidelberg



Original publication

Elisabeth C. Matthews, James Mang, Aarynn L. Carter, Mathlide Mâlin, Caroline V. Morley, Bhavesh Rajpoot, Leindert A. Boogaard, Jennifer A. Burt, Ian J. M. Crossfield, Fabo Feng, Anne-Marie Lagrange, Mark W Phillips
A second visit to Eps Ind Ab with JWST: new photometry confirms ammonia and suggests thick clouds in the exoplanet atmosphere of the closest super-Jupiter
Astrophysical Journal Letters (2026)

Source | DOI


Tuesday, July 30, 2024

NASA's Webb Images Cold Exoplanet 12 Light-Years Away

This image of the gas-giant exoplanet Epsilon Indi Ab was taken with the coronagraph on NASA’s James Webb Space Telescope’s MIRI (Mid-Infrared Instrument). A star symbol marks the location of the host star Epsilon Indi A, whose light has been blocked by the coronagraph, resulting in the dark circle marked with a dashed white line. Epsilon Indi Ab is one of the coldest exoplanets ever directly imaged. Light at 10.6 microns was assigned the color blue, while light at 15.5 microns was assigned the color orange. MIRI did not resolve the planet, which is a point source. Credits: Image: NASA, ESA, CSA, STScI, Elisabeth Matthews (MPIA)



An international team of astronomers using NASA’s James Webb Space Telescope has directly imaged an exoplanet roughly 12 light-years from Earth. The planet, Epsilon Indi Ab, is one of the coldest exoplanets observed to date.

The planet is several times the mass of Jupiter and orbits the K-type star Epsilon Indi A (Eps Ind A), which is around the age of our Sun, but slightly cooler. The team observed Epsilon Indi Ab using the coronagraph on Webb’s MIRI (Mid-Infrared Instrument). Only a few tens of exoplanets have been directly imaged previously by space- and ground-based observatories.

“Our prior observations of this system have been more indirect measurements of the star, which actually allowed us to see ahead of time that there was likely a giant planet in this system tugging on the star,” said team member Caroline Morley of the University of Texas at Austin. “That's why our team chose this system to observe first with Webb.”

“This discovery is exciting because the planet is quite similar to Jupiter — it is a little warmer and is more massive, but is more similar to Jupiter than any other planet that has been imaged so far,” added lead author Elisabeth Matthews of the Max Planck Institute for Astronomy in Germany.

A Solar System Analog

Previously imaged exoplanets tend to be the youngest, hottest exoplanets that are still radiating much of the energy from when they first formed. As planets cool and contract over their lifetime, they become significantly fainter and therefore harder to image.

“Cold planets are very faint, and most of their emission is in the mid-infrared,” explained Matthews. “Webb is ideally suited to conduct mid-infrared imaging, which is extremely hard to do from the ground. We also needed good spatial resolution to separate the planet and the star in our images, and the large Webb mirror is extremely helpful in this aspect.”

Epsilon Indi Ab is one of the coldest exoplanets to be directly detected, with an estimated temperature of 35 degrees Fahrenheit (2 degrees Celsius) — colder than any other imaged planet beyond our solar system, and colder than all but one free-floating brown dwarf. The planet is only around 180 degrees Fahrenheit (100 degrees Celsius) warmer than gas giants in our solar system. This provides a rare opportunity for astronomers to study the atmospheric composition of true solar system analogs.

“Astronomers have been imagining planets in this system for decades; fictional planets orbiting Epsilon Indi have been the sites of Star Trek episodes, novels, and video games like Halo,” added Morley. “It's exciting to actually see a planet there ourselves, and begin to measure its properties.”

Not Quite As Predicted

Epsilon Indi Ab is the twelfth closest exoplanet to Earth known to date and the closest planet more massive than Jupiter. The science team chose to study Eps Ind A because the system showed hints of a possible planetary body using a technique called radial velocity, which measures the back-and-forth wobbles of the host star along our line of sight.

“While we expected to image a planet in this system, because there were radial velocity indications of its presence, the planet we found isn't what we had predicted,” shared Matthews. “It’s about twice as massive, a little farther from its star, and has a different orbit than we expected. The cause of this discrepancy remains an open question. The atmosphere of the planet also appears to be a little different than the model predictions. So far we only have a few photometric measurements of the atmosphere, meaning that it is hard to draw conclusions, but the planet is fainter than expected at shorter wavelengths.”

The team believes this may mean there is significant methane, carbon monoxide, and carbon dioxide in the planet’s atmosphere that are absorbing the shorter wavelengths of light. It might also suggest a very cloudy atmosphere.

The direct imaging of exoplanets is particularly valuable for characterization. Scientists can directly collect light from the observed planet and compare its brightness at different wavelengths. So far, the science team has only detected Epsilon Indi Ab at a few wavelengths, but they hope to revisit the planet with Webb to conduct both photometric and spectroscopic observations in the future. They also hope to detect other similar planets with Webb to find possible trends about their atmospheres and how these objects form.

NASA's upcoming Nancy Grace Roman Space Telescope will use a coronagraph to demonstrate direct imaging technology by photographing Jupiter-like worlds orbiting Sun-like stars – something that has never been done before. These results will pave the way for future missions to study worlds that are even more Earth-like.

These results were taken with Webb’s Cycle 1 General Observer program 2243 and have been published in the journal Nature.

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




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