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The James Webb Space Telescope has just captured the first direct measurement of a black hole
By Space Daily Editorial Team
The official ESA Webb announcement on 27 May 2026 and two papers report the first
direct mass measurement of a supermassive black hole in the first billion years after the Big
Bang. The object sits at the heart of a small red galaxy called Abell2744-QSO1, seen as it was
roughly 700 million years after the Big Bang. The mass comes out at 50 million times the mass
of the Sun. The galaxy around it is so faint that the central object accounts for around two-thirds
of the total mass of the system and is more massive than all the stars in the galaxy combined.
If the measurements hold, the implications run against the standard idea of how supermassive
black holes form, which has the galaxy assembling first and the central black hole growing in
step with it.
QSO1 belongs to a class of objects called Little Red Dots, first identified by the James
Webb Space Telescope (JWST) shortly after its commissioning in 2022. These are very compact,
very red sources, common in the first billion years of cosmic history and almost entirely absent
in the local universe. Previous mass estimates for black holes in the first billion years had relied
on indirect methods, mostly calibrated against scaling relations observed in the local universe.
These methods give an answer but carry the assumption that the physics of black hole accretion
in the distant past was broadly similar to what is observed nearby. According to Space.com’s
report on the work, D’Eugenio explained the team’s concern with that approach plainly: “We
didn’t know if those assumptions really apply to the distant universe”.
The galaxy itself contains relatively few stars. According to Universe Today’s coverage of
the papers, the stellar mass is constrained to be below roughly 20 million solar masses, and
some analyses push the upper limit considerably lower. The black hole is therefore more
massive than all the stars in its galaxy combined, by at least a factor of two and possibly far
more. The authors note in the paper published in Nature that QSO1 sits about a factor of ten
above even the most extreme cases of black-hole-heavy galaxies previously identified by the
JWST. The standard picture of supermassive black hole formation has the black hole growing
alongside its host galaxy, in a feedback relationship that takes billions of years. QSO1 cannot
have formed this way. The galaxy is too small to have fed the black hole through ordinary
accretion, and the time elapsed since the Big Bang at the moment of observation is too short
for slow co-evolution to have produced this result.
The team’s preferred interpretation, presented as such rather than as a conclusion, is
that the black hole formed first and the galaxy is now assembling around it. Ignas Juodžbalis,
one of the authors of the Nature paper, said that “This is very exciting because it is evidence
for primordial black holes or direct collapse black holes, which have been theorized but not
confirmed”. What the papers establish, in a narrower and more defensible sense, is that the
standard local scaling between black hole mass and host galaxy mass does not apply in the
first billion years. Whether QSO1 is unusual among Little Red Dots, or whether the population
as a whole follows the same pattern, is the next question the Cambridge–Florence team is
pursuing.
(Available at: https://spacedaily.com/d-the-james-webb-space-telescope-has-just-captured-the-first-direct-measurement-of-a-black-hole-50-million-times-the-mass-of-the-sun-sitting-in-an-ancient-galaxy-where-it-outweighs-every-star-around-i/ – text specially adapted for this test).