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Astronomers Catch a Galaxy Cluster Heating Up 11 Billion Light-Years Away

Using 634,000 seconds of Chandra X-ray observations, researchers detected a vast cloud of gas tens of millions of degrees hot around a quasar, offering one of the clearest views yet of a galaxy cluster forming in the…

चरण दर चरण

  1. 1

    Chandra watches quasar ID1 600,000+ seconds

  2. 2

    Quasar's own light simulated and compared

  3. 3

    Excess X-ray glow spans 98,000 light-years

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    Even in all directions — not a jet

  5. 5

    Gas model yields temperature and mass

A team led by Andrea Travascio of the University of Milano-Bicocca has detected an enormous cloud of superheated gas surrounding a quasar, a very bright, actively feeding supermassive black hole, embedded in a dense concentration of galaxies more than 11 billion light-years away, according to a study published in Astronomy & Astrophysics. Using more than 600,000 seconds of observations from NASA's Chandra X-ray Observatory, the team found extended X-ray emission consistent with a young "proto-ICM," the hot gas that fills the space between galaxies in mature clusters, caught here still forming.

The protocluster is centred on a bright quasar nicknamed ID1, observed when the universe was less than 2 billion years old; a 2025 paper by the same collaboration had already found six actively feeding black holes there, an unusually large number confirming it as a genuine protocluster. Because a quasar's own light can overwhelm faint signals from surrounding hot gas, the researchers simulated what the quasar's light alone should look like and compared it with the real data, finding a clear excess of X-ray light extending to at least 98,000 light-years from the quasar. Splitting the region into eight sectors, the excess light was statistically even in every direction, consistent with settled gas rather than a jet from the quasar, an explanation the team ruled out.

Fitting the excess signal to a model of hot, thin, ionized gas produced a temperature of about 21 million Kelvin, a gas mass of roughly 2.6 trillion times the mass of the Sun, and a total mass, including dark matter, of about 30 trillion Suns. That hot gas alone accounts for around 56% of the ordinary, non-dark matter expected in a halo of this size, a share comparable to fully mature galaxy clusters seen nearby today, even though this structure existed when the universe was under 2 billion years old.

The researchers caution that the reported quantities are rough estimates with large uncertainties, given the limited number of detected X-ray photons, and say more sensitive observations with future telescopes will be needed to confirm the findings.

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#astronomy#galaxy cluster#Chandra X-ray Observatory#quasar
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