Coordinates
| Position (RA): | 4 54 11.04 |
|---|---|
| Position (Dec): | -3° 0' 51.75" |
| Field of view: | 2.22 x 2.15 arcminutes |
| Orientation: | North is 69.6° right of vertical |
Interactive Sky View
Background Survey Options
Colours & filters
| Band | Wavelength | Telescope |
|---|---|---|
| Optical (Purple) | 900 nm | James Webb Space Telescope NIRCam |
| Infrared (Blue) | 1.5 μm | James Webb Space Telescope NIRCam |
| Infrared (Blue) | 1.15 μm | James Webb Space Telescope NIRCam |
| Infrared (Cyan) | 2.0 μm | James Webb Space Telescope NIRCam |
|
Infrared
(Green) methane | 2.1 μm | James Webb Space Telescope NIRCam |
| Infrared (Green) | 2.77 μm | James Webb Space Telescope NIRCam |
|
Infrared
(Yellow) water ice | 3.0 μm | James Webb Space Telescope NIRCam |
| Infrared (Orange) | 3.56 μm | James Webb Space Telescope NIRCam |
| Infrared (Red) | 4.44 μm | James Webb Space Telescope NIRCam |
| Infrared (Red) | 4.1 μm | James Webb Space Telescope NIRCam |
Galaxies in a cosmic house of mirrors
This NASA/ESA/CSA James Webb Space Telescope Picture of the Month features galaxies in incredible detail that have been warped and multiplied like they’ve stepped into a house of mirrors. The brilliant golden galaxies splashed across this image belong to a galaxy cluster called MACS J0454.1-0300. The orange galaxies concentrated on one side of the cluster are not actually part of the cluster; these galaxies are much farther away from us than the galaxies that make up MACS J0454.1-0300.
MACS J0454.1-0300 is itself incredibly distant: the light from these galaxies has been travelling to us for so long that we’re seeing the cluster as it was when the Universe was about 8 billion years old. While this galaxy cluster is a valuable scientific target in its own right, the real stars of this image are the galaxies that appear warped and stretched, like a painting that has been smeared by a giant hand.
These strange-looking galaxies are of immense interest to astronomers. The way these galaxies look is the result of gravitational lensing, in which the enormous mass of a foreground object such as a galaxy cluster bends and magnifies the light from a more distant object in the background. Gravitational lensing allows astronomers to observe galaxies, star clusters and even individual stars that are too far away for our telescopes to see under normal conditions. While the large, orange galaxies appear obviously distorted, look carefully at some of the small reddish background galaxies throughout this picture: even at the very edges of the frame, there are galaxies whose images have been bent into tiny arcs by MACS J0454.1-0300’s gravity.
In addition to making galaxies look stretched out or bent, gravitational lensing can also make us see double — or quadruple. Under certain conditions, multiple images of the same galaxy can appear. It’s rare to see four or more images of the same galaxy, as this requires the position of the background object and the shape of the massive foreground object to be just so. Because the requirements are so particular, this phenomenon is only seen in 10–20% of galaxy clusters.
Researchers spotted this rare configuration twice in the Webb observations of MACS J0454.1-0300, marking the first time this phenomenon has been seen more than once in the same galaxy cluster. The gravitationally lensed areas show multiple images of galaxies from when the Universe was young: a group of galaxies 2 billion years after the Big Bang, and a single galaxy just 800 million years old after the Big Bang. The galaxy group appears to be going through a merger, resulting in an enormous burst of star formation.
Astronomers have also identified individual bright ‘knots’ within these gravitationally lensed areas, corresponding to regions as small as 5 light-years across. These tiny clumps appear magnified by a factor of more than 300, in some cases.
A NASA/ESA Hubble Space Telescope image of this same cluster was released in 2014. Take a moment to compare the two images; the difference between them is dramatic. Start by finding the similarities: the two bright stars from within our own galaxy that happened to make it into the picture, and the fuzzy white galaxy near the centre of the cluster. The new Webb image reveals hundreds of galaxies missing from the earlier image. These galaxies were there all along, but Webb is much more sensitive to their much redder light.
The data behind this image come from two observing programmes (#5058, PI: Furtak; #6882, PI: Fujimoto) that leverage the ability of massive galaxy clusters to bring distant objects into view. One programme searches for individual gravitationally lensed stars in the first billion years of the Universe. This programme will monitor a particular gravitationally lensed galaxy in the MACS J0454.1-0300 field of view for signs of hugely magnified single stars. The second programme aims to observe a large sample of galaxy clusters at many wavelengths, helping researchers study the onset star formation and the evolution of early galaxies.
[Image Description: A massive galaxy cluster, made of many golden elliptical galaxies with the largest, brightest one in the centre. Heavily distorted orange galaxies appear all around the cluster, the largest concentrated in a large arc around the cluster's centre; these are images of very distant galaxies, created by gravitational lensing. A few galaxies are large and bluish-white in colour; bright, nearby stars are the same colour.]
Links
Credit:ESA/Webb, NASA & CSA, L. Furtak, S. Fujimoto
About the Image
| Id: | potm2609a | |
|---|---|---|
| Type: | Observation | |
| Release date: | 29 September 2026, 10:00 | |
| Size: | 4256 x 4117 px | |

