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Canadian Telescope CHIME Captures Universe’s Earliest Hydrogen Glow in Landmark First

October 3, 2026
in Space
Grant Pearson
By Grant Pearson Scienmag Editorial Profile - Observational Astronomy
Reading Time: 6 mins read
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Canadian Telescope CHIME Captures Universe’s Earliest Hydrogen Glow in Landmark First

Canadian Telescope CHIME Captures Universe's Earliest Hydrogen Glow in Landmark First

Canadian Telescope CHIME Captures Universe's Earliest Hydrogen Glow in Landmark First

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High in the hills above Penticton, British Columbia, a strange-looking array of metal troughs has quietly been scanning the entire northern sky every single day. Now, the Canadian Hydrogen Intensity Mapping Experiment, known to astronomers around the world as CHIME, has delivered a result that cosmologists have been anticipating for more than a decade. For the first time, the telescope has detected the faint radio glow of hydrogen gas from deep in the universe’s past using nothing but its own data, without cross-checking against galaxy surveys produced by other instruments. The finding, published in The Astrophysical Journal, marks the moment a bold Canadian-led idea for probing the cosmos moved from promising concept to demonstrated reality, and it opens an entirely new observational window onto dark energy, the mysterious force driving the accelerating expansion of the universe.

The significance of the achievement lies in what hydrogen can tell us about the largest questions in physics. Hydrogen is the most common element in the universe and the raw material from which stars form, and its atoms emit a characteristic radio signal at a wavelength of 21 centimetres. As that light travels across billions of light years, the expansion of the universe stretches it to longer wavelengths, carrying within it a record of how fast space was expanding when it was emitted. “Its faint radio emission acts like a cosmic tracer, revealing how matter is distributed across space,” said co-author Dr. Arnab Chakraborty, a postdoctoral fellow at the University of Toronto who first proposed the finding. By mapping where this glow is stronger or weaker across the sky, astronomers can reconstruct the large-scale structure of matter at epochs that are extraordinarily difficult to reach by any other means.

Dark energy sits at the heart of why this matters. In the late 1990s, observations of distant supernovae revealed that the universe is not merely expanding but expanding at an ever-increasing rate, a discovery that earned the Nobel Prize in Physics and upended the expectation that gravity would gradually slow cosmic growth. Whatever is responsible for that acceleration is called dark energy, and it currently accounts for roughly seventy per cent of the total energy content of the cosmos. Yet despite decades of effort, physicists still do not know what it is. Competing theories describe it in fundamentally different ways, from a constant energy density inherent to empty space to dynamical fields whose strength changes over cosmic time. Distinguishing between these possibilities requires measuring how the expansion rate of the universe has evolved across billions of years, which is precisely the kind of measurement CHIME was built to make.

CHIME is a radio telescope hosted by the National Research Council of Canada at the Dominion Radio Astrophysical Observatory near Penticton. Its distinctive design, four cylindrical reflectors arranged in a half-pipe configuration, gives it an enormous field of view and allows it to map the entire northern sky every day as Earth rotates beneath it. The project is a pan-Canadian collaboration built and operated by scientists at the University of British Columbia, McGill University, the University of Toronto and the Dominion Radio Astrophysical Observatory, together with North American partners including Arizona State University. From the outset, the instrument was conceived with one overriding scientific goal: to chart the distribution of hydrogen gas across the early universe, allowing astronomers to calculate how the cosmos has expanded and thereby investigate dark energy directly.

What makes the new result a genuine milestone is that CHIME achieved this detection autonomously. Previously, the collaboration had to cross-correlate its observations with galaxy survey data from other telescopes, using those optical catalogues as a reference to confirm that the telescope was genuinely seeing the cosmic hydrogen signal. Galaxy surveys investigate the same underlying questions about cosmic expansion, but they work in visible light and focus in fine detail on individual galaxies. That approach is extraordinarily expensive, costing millions of dollars more, and it carries a fundamental limitation: galaxies only exist in the parts of the universe that are hot and dense enough to have formed stars. By mapping the combined radio glow that hydrogen emits on its own, CHIME can explore the same questions at a greater scale, reach further back in cosmic time, operate at a fraction of the cost, and do so without relying on anyone else’s results.

The technique CHIME employs is known as hydrogen intensity mapping, and it is as elegant as it is technically punishing. Rather than resolving individual galaxies, the telescope measures the aggregate radio emission from all the hydrogen within large volumes of space, treating the gas as a continuous glowing background whose brightness fluctuations trace the clustering of matter. Because hydrogen pervades regions of the universe that never lit up with stars, intensity mapping can in principle survey cosmic epochs that optical surveys simply cannot reach. The trade-off is that the cosmological signal is astonishingly faint, buried beneath foregrounds that can be millions of times brighter, including radio emission from our own galaxy, from distant galaxies, and from human technology, as well as noise generated by the instrument itself. Extracting the signal demands extraordinary care in calibration, data processing and statistical analysis.

In an accompanying paper, the researchers examined what the observed signal actually reveals about the distribution of hydrogen in the universe. “Our data indicate that roughly two per cent of the hydrogen in the universe was in neutral atomic form at this time, broadly consistent with other measurements,” said co-author Dr. Shabbir Shaikh, a postdoctoral fellow at Arizona State University. “By measuring how that hydrogen is distributed and clustered, CHIME gives us a new way to test our understanding of how galaxies form and evolve.” That figure carries real scientific weight, because the fraction of hydrogen remaining in neutral atomic form constrains models of how gas cools, collapses and ignites into stars across cosmic history. The consistency with independent measurements suggests the telescope is measuring something real about the intergalactic medium when the universe was about five billion years old.

The path to the detection was anything but a sudden flash of insight. The team applied new data analysis and processing techniques to tease the faint signal out of the overwhelming noise of the background universe, human technology and even the telescope itself, and then spent more than a year testing the result to prove it was correct. The measurement is based on 94 nights of observation data collected in 2019. “We worked very hard to convince ourselves that this wasn’t a false alarm,” said Dr. Chakraborty. “After all the tests, the signal remained. That gave us confidence we were seeing real hydrogen from the distant universe.” That deliberate, sceptical pace reflects the hard lessons of the field, where earlier claims of hydrogen intensity mapping detections have been contested, and where the difference between a cosmological signal and a stubborn instrumental artefact can be agonizingly subtle.

For the collaboration, the moment carries both scientific and national significance. “This is a completely new technique for probing the cosmos, delivered by an instrument that was conceived, built and funded by Canadians,” said co-author Dr. Mark Halpern, professor in the UBC department of physics and astronomy and CHIME principal investigator. “It’s a bold new step in the global cosmology program and a Canadian success story.” Co-author Dr. Simon Foreman, an assistant professor at Arizona State University, framed the broader implications: “For a long time, astrophysicists have believed there is great potential in this hydrogen mapping technique with this kind of telescope. By actually showing that the technique works in practice, we’ve opened up a whole new window on the universe. We can use it to test our current theories, and learn new things about galaxies and other properties of the universe.”

Perhaps the most striking aspect of the announcement is how much untapped data remains. The current measurement uses only a small fraction of what CHIME has collected since operations began, and researchers now have nearly seven years of observations available for analysis. The team is working to expand the analysis to earlier periods in cosmic history, targeting epochs when the universe was only three billion years old, when dark energy’s influence on cosmic expansion was far weaker and its underlying nature may be easier to disentangle from ordinary matter and gravity. If the technique continues to perform at scale, hydrogen intensity mapping could become one of the most cost-effective tools in cosmology, complementing billion-dollar galaxy surveys and offering an independent check on the theories that attempt to explain why the universe’s expansion is speeding up. The project is funded by the Canada Foundation for Innovation, the National Research Council of Canada, the Natural Sciences and Engineering Research Council and the provinces of British Columbia, Ontario and Quebec, with support from the Digital Research Alliance of Canada. What began as a Canadian experiment in the hills of British Columbia has now proven it can hear the universe’s oldest storyteller, and the story it tells is only beginning.

Subject of Research: Hydrogen intensity mapping of the early universe with the CHIME radio telescope to probe dark energy

Article Title: Canadian telescope directly maps earliest glow of hydrogen, opening a new window on the universe

Article References: Canadian telescope directly maps earliest glow of hydrogen, opening a new window on the universe. (n.d.). Original publication

Image Credits: AI Generated

DOI: Not provided

Keywords: CHIME, hydrogen intensity mapping, dark energy, cosmology, 21-cm radio emission, cosmic expansion, radio telescope, large-scale structure, galaxy formation, neutral hydrogen, The Astrophysical Journal, University of British Columbia

Cite Scienmag News

Grant Pearson. (October 3, 2026). Canadian Telescope CHIME Captures Universe’s Earliest Hydrogen Glow in Landmark First. Scienmag. https://scienmag.com/canadian-telescope-chime-captures-universes-earliest-hydrogen-glow-in-landmark-first/

Grant Pearson. "Canadian Telescope CHIME Captures Universe’s Earliest Hydrogen Glow in Landmark First." Scienmag, 3 October 2026, https://scienmag.com/canadian-telescope-chime-captures-universes-earliest-hydrogen-glow-in-landmark-first/. Accessed 3 October 2026.

Grant Pearson. "Canadian Telescope CHIME Captures Universe’s Earliest Hydrogen Glow in Landmark First." Scienmag. October 3, 2026. https://scienmag.com/canadian-telescope-chime-captures-universes-earliest-hydrogen-glow-in-landmark-first/

Tags: 21-centimeter hydrogen emission21-cm radio emissionCanadian Hydrogen Intensity Mapping ExperimentCHIMECHIME radio telescopecosmic expansioncosmic hydrogen gas observationcosmologycosmology and universe expansiondark energydark energy researchdeep universe explorationdetection of universe's earliest hydrogen glowGalaxy Formationgalaxy formation and evolutionhydrogen intensity mappinginnovative astronomical instrumentationlarge-scale sky surveylarge-scale structureneutral hydrogenradio astronomy advancementsradio telescopeThe Astrophysical JournalUniversity of British Columbia
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