Showing posts with label little red dot (LRD). Show all posts
Showing posts with label little red dot (LRD). Show all posts

Sunday, May 31, 2026

NASA’s Webb Reveals Black Hole That Formed Before Its Galaxy

An image from NIRCam on NASA’s James Webb Space Telescope shows Little Red Dot Abell2744-QSO1, magnified and triply imaged by galaxy cluster Abell 2744 (Pandora’s Cluster). Credit Image: NASA, ESA, CSA, Lukas Furtak (Ben-Gurion University); Image Processing: Alyssa Pagan (STScI)

An image detail from NIRCam (left) on NASA’s James Webb Space Telescope shows Little Red Dot Abell2744-QSO1. A map of gas velocity in QSO1 (right), made using the IFU on NIRSpec, shows evidence for a 50-million-solar-mass black hole at the center. Credit Image: NASA, ESA, CSA, Ignas Juodžbalis (Cambridge), Cosimo Marconcini (University of Florence), Roberto Maiolino (Cambridge), Francesco D'Eugenio (Cambridge), Hannah Übler (MPE); Image Processing: Alyssa Pagan (STScI)

Image of Abell 2744 and Little Red Dot Abell2744-QSO1, captured by Webb’s NIRCam, with compass arrows, scale bar, and color key for reference. Credit Image: NASA, ESA, CSA, Lukas Furtak (Ben-Gurion University); Image Processing: Alyssa Pagan (STScI)

A sonification is a translation of data into sound. In this sonification, the velocity of hydrogen gas moving around a black hole in the center of a Little Red Dot known as Abell2744-QSO1 (QSO1) is translated into sounds of varying pitch (or frequency). The faster the gas is moving toward the telescope, the higher the pitch. The faster it is moving away from the telescope, the lower the pitch. Credit Sonification: NASA, ESA, CSA, STScI, Christopher Britt (STScI), Ralf Crawford (STScI), Alyssa Pagan (STScI), Margaret Carruthers (STScI); Science: Ignas Juodžbalis (Cambridge), Cosimo Marconcini (University of Florence), Roberto Maiolino (Cambridge), Francesco D'Eugenio (Cambridge), Hannah Übler (MPE)



Which comes first, the galaxy or the black hole? We don’t know, but scientists have long thought it could be the galaxy: Large stars within an existing galaxy consume their fuel and collapse to form black holes, which can gobble up surrounding material and merge over time to form more massive entities.

But it’s hard to figure out how black holes millions to billions of times the mass of the Sun, thousands of which have now been detected in the early universe, could have grown so quickly from such small seeds.

Now, researchers using NASA’s James Webb Space Telescope have detected clear evidence that some supermassive black holes were enormous from the beginning, forming without a stellar collapse phase, and without a significantly more massive host galaxy to feed them.

“This is a remarkable finding,” said Roberto Maiolino of University of Cambridge in the United Kingdom, co-author of studies published in Nature and the Monthly Notices of the Royal Astronomical Society. “It’s a paradigm shift, a total revisiting of the classical scenarios of how black holes form and grow.”

Little Red Dot QSO1

The team’s conclusion is based on detailed observations of Abell2744-QSO1 (QSO1), a prototypical Little Red Dot that existed just 700 million years after the big bang.

Although QSO1 is only 1,300 light-years across, and its light has been traveling for more than 13 billion years, it is easier to study than most other Little Red Dots because it is gravitationally lensed by galaxy cluster Abell 2744 (Pandora’s Cluster). QSO1 is both magnified and triply imaged, appearing in three different locations in the sky.

Initial studies of QSO1 revealed compelling evidence that it may be little more than a cloud of glowing hydrogen and helium gas circling a supermassive black hole estimated at 40 million times the mass of the Sun. But as with other early black holes discovered by Webb, there was uncertainty about whether it really was that massive. “Before now, all of the mass measurements of black holes in the early universe have been indirect, based on assumptions from what we know about them in the local universe. We didn’t know if those assumptions really apply to the distant universe,” said co-author Francesco D’Eugenio, also of the University of Cambridge.

Mapping gas composition, velocity

The team recognized that if QSO1’s black hole is as massive as it looks, they should be able to use the integral field unit (IFU) on Webb’s NIRSpec (Near Infrared Spectrograph) to trace the effects of its gravity on the gas swirling around it, while also mapping the distribution of various elements in the gas.

Cambridge graduate student Ignas Juodžbalis and Cosimo Marconcini of the University of Florence, lead authors on one of the studies, used the IFU observations to map motions of hydrogen gas surrounding the black hole. When they plotted the rotation velocity as a function of distance from the center, they found that the gas has Keplerian motion: It orbits a central point in the same way that planets in our solar system orbit the Sun.

“This is important because it tells us that most of the mass of QSO1 is concentrated in the black hole at the center,” said Juodžbalis. “If the mass were more distributed, as it would be if there were a lot of stars, the gas would not have this perfect Keplerian rotation.”

Since Keplerian motion is governed by simple laws of gravity, the team was able to use the gas velocity measurements to calculate the black hole mass directly, a feat that had not previously been possible.

They found that not only is the black hole immense — roughly 50 million solar masses — it makes up, at minimum, an astonishing two-thirds of QSO1’s total mass. This proportion is thousands of times greater than in nearby galaxies, where supermassive black holes make up only a tiny fraction of the host galaxy’s total mass.

The IFU composition maps supported these results, showing that the gas throughout QSO1 is almost entirely hydrogen and helium, with very little of the heavier elements like oxygen that would be expected in a galaxy rich with stars and stellar debris. With a metallicity less than 0.5% of the Sun, QSO1 is one of the most pristine galactic environments ever measured.

“This is a phenomenal result,” said Maiolino. “It is the first direct measurement of a black hole mass within the first billion years after the big bang, and it is consistent with the previous measurements.” The team thinks this is a good sign that the assumptions used for indirect mass measurements are valid and the masses of other black holes in the early universe have not been overestimated.

Supermassive black hole origins

The team recognized that if QSO1’s black hole is as massive as it looks, they should be able to use the integral The outsized mass of QSO1 relative to its host galaxy suggests that it can’t have formed gradually from much smaller, stellar-mass black holes merging and feeding. “It seems that we have found a black hole that does not have a substantial host galaxy and that has predated stellar processes,” said Juodžbalis. “This is very exciting because it is evidence for primordial black holes or direct collapse black holes, which have been theorized but not confirmed.”

Whether QSO1’s black hole evolved from a “heavy seed” that formed within the first second of the big bang or somewhat later from the collapse of a giant cloud of gas, it was almost certainly born big, and may be in the early stages of building a galaxy around it.

The team thinks that Little Red Dots like QSO1 cannot have been rare in the early universe, and is in the process of analyzing similar objects to find out whether supermassive black holes actually do predate the galaxies where they currently reside.

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).




Related Links

Watch: NASA Black Hole Visualization Takes Viewers Beyond the Brink

Explore more: ViewSpace | Black Holes: Searching for the unseen

Read more: Dissecting Supermassive Black Holes

Watch: What Webb Learns from Light

Explore more: NASA's Universe of Learning: Black Hole Resources

More Webb News

More Webb Images

Webb Science Themes

Webb Mission Page


Saturday, May 02, 2026

NASA Connects Little Red Dots With Chandra, Webb

These images of a special object, dubbed the “X-ray dot,” represent a discovery from Chandra that could help explain the nature of a mysterious class of sources in the early Universe. The optical and infrared image from Hubble show the region around the X-ray dot, while the Chandra X-ray image shows the close up. Prior to this discovery, “little red dots” seen by the Webb telescope had not been known to emit X-rays. This one does, which leads researchers to propose that the X-ray dot represents a previously unknown transition phase of growing supermassive black holes. X-ray, Infrared, and Optical images of X-ray Dot 3DHST-AEGIS-12014 Credit: X-ray: NASA/CXC/Max Plank Inst./R. Hviding et al.; Optical/IR; NASA/ESA/STScI/HST; Image Processing: NASA/CXC/SAO/N. Wolk




  • NASA’s Chandra X-ray Observatory has found a “little red dot” (LRD) — a class of red, distant objects — that is giving off X-rays, unlike others observed so far.

  • This suggests that this so-called X-ray dot represents a previously unseen phase of supermassive black holes in the early Universe.

  • In the proposed scenario, gas surrounding the growing black hole becomes patchy as the black hole consumes it.

  • Over time X-rays from material falling onto the black hole are then able to poke through, which Chandra can detect.



This image of a special object, dubbed the “X-ray dot,” represents a discovery from NASA’s Chandra X-ray Observatory that could help explain the nature of a mysterious class of sources in the early Universe as described in our latest press release. Officially known as 3DHST-AEGIS-12014, the X-ray dot is located about 11.8 billion light-years from Earth and may provide a crucial bridge between young black holes embedded in dense gas and typical growing supermassive black holes.

Shortly after NASA’s James Webb Space Telescope started its science observations, scientists reported a new class of unexplained objects. Astronomers found sources that were relatively small and red and located about 12 billion light-years from Earth or farther. (One reason for this redness is their great distances, causing their light to be shifted toward the part of the infrared spectrum with the longest wavelengths, which results in red colors in Webb images.) These became known as “little red dots” (LRDs), and since then astronomers have been trying to determine what exactly these LRDs are.

Recently, a team of researchers found one special object that could help, the X-ray dot depicted in this graphic. An optical and infrared composite image is centered on the position of the X-ray dot and shows its key features as an LRD – small and red. Optical light from NASA’s Hubble Space Telescope is colored blue and green and infrared light from Hubble is colored orange and red. The Chandra X-ray image of the X-ray dot (purple) is in the inset, showing it is bright in X-rays.

The X-ray dot was discovered when comparing new data from Webb with a deep survey previously performed by Chandra. Up until then, all the other LRDs didn’t appear to emit X-rays. This was perplexing because if LRDs were early black holes, as many suspected they were, then they should commonly produce bright X-rays.

Therefore, it was significant to find an LRD that does. The researchers suggest that the X-ray dot could represent a transition phase from an LRD to a typical growing supermassive black hole. As the black hole in an LRD consumes gas surrounding it, patchy holes in the clouds of gas appear. This allows X-rays from material falling onto the black hole to poke through, which are observed by Chandra. Eventually all the gas is consumed, and the “black hole star” ceases to exist. A snapshot of this scenario is depicted in the artist’s illustration below.

The artist’s impression of the X-ray dot shows the research team’s understanding of this new object: a growing supermassive black hole at the center of a patchy sphere of gas.

Artist's Illustration of a Close-Up View of X-ray Dot, 3DHST-AEGIS-12014.
Credit: NASA/CXC/SAO/M. Weiss; adapted by K. Arcand & J. Major

There are also hints in the Chandra data of the X-ray dot that there are variations in X-ray brightness, which supports the idea that the black hole is partly obscured. As the cloud of gas rotates, patches of denser and less dense gas can move across the black hole, causing changes in X-ray brightness.

An alternate idea for the X-ray dot is that it is a more common type of growing supermassive black hole but is veiled in an exotic type of dust that astronomers have not seen before. Future observations are planned that should be able to shed light on the truth.

A paper describing these results has been published in The Astrophysical Journal with the lead author of Raphael Hviding (Max Planck Institute for Astronomy in Germany). A full list of authors can be found in the paper available at https://arxiv.org/abs/2601.09778

NASA's Marshall Space Flight Center in Huntsville, Alabama, manages the Chandra program. The Smithsonian Astrophysical Observatory's Chandra X-ray Center controls science operations from Cambridge, Massachusetts, and flight operations from Burlington, Massachusetts.





Visual Description:

Today's release features a composite image with an X-ray insert, and an artist's illustration of a little dot located 11.8 billion light-years from Earth.

Shortly after NASA's James Webb Space Telescope started its observations, reports of a new class of curious objects emerged. Astronomers discovered small red specks more than about 12 billion light-years from Earth. These mysterious objects were given the accurate and descriptive name "little red dots," or LRDs.

One such dot sits at the heart of the primary image of this release. The composite optical and infrared image features a smattering of distant galaxies and other cosmic objects and phenomena in a variety of colors, set against the blackness of space. At the center of the square image is a small, somewhat pixelated, little red dot, outlined in a white box for clarity.

This curious, but inconspicuous, little dot is enlarged in an X-ray insert at our upper right, because it does something no other LRD has been found to do; it emits X-rays! In the insert, the dot appears as a much larger white sphere in the Chandra image, ringed with a neon purple glow. This exciting discovery has earned this little dot the nickname the "X-ray dot."

The X-ray dot is further enlarged in an artist's illustration. Many scientists think LRDs are supermassive black holes embedded in clouds of dense gas. Here, the dot is a round, patchy cloud of brilliant red gas. At its core is a relatively tiny black sphere, the black hole, floating in a swirling pool of pale purple mist. Research suggests that the X-ray dot represents a transition phase from an LRD to a typical growing supermassive black hole. As the black hole star consumes its surrounding gas, patchy holes appear in the cloud. This allows X-rays to poke through, which are then observed by Chandra.



Fast Facts for 3DHST-AEGIS-12014

Credit: X-ray: NASA/CXC/Max Plank Inst./R. Hviding et al.; Optical/IR; NASA/ESA/STScI/HST;Image Processing: NASA/CXC/SAO/N. Wolk
Release Date: April 28, 2026
Scale: Image is about 20 arcsec (500,000 light-years) across.

Category: Quasars & Active Galaxies, Black Holes
Coordinates (J2000): RA 14h 20m 47.5s | Dec +53° 02´ 32.83"
Constellation: Ursa Major
Observation Dates: 29 Observations from Mar 2005 to Jun 2008
Observation Time: 214 hours 42 minutes (8 days 22 hours 42 minutes)
Obs. ID: 5845,5846, 6214, 6215, 9450-9453, 9720-9726, 9793-9797, 9842-9844, 9863, 9866, 9870, 9873, 9875, 9876
Instrument:
ACIS
References: Hviding, R.E., et al., 2026, ApJL, 1000, L18.
Color Code: X-ray: purple; Optical/IR: red, orange, green, and blue
Distance Estimate: About 11.8 billion light-years from Earth (z~3.28)