SuperCDMS shield
August 26, 2026

SuperCDMS SNOLAB begins preliminary phase of dark matter hunt

The deep-underground experiment could produce early-scientific results in the search for one of nature’s most elusive substances, even before reaching optimal sensitivity when the full search begins next year.

By Ali Sundermier

In the hunt for one of nature’s most elusive substances – dark matter, which makes up 85% of all matter in the universe – scientists are going to extremes. 

Deep underground and chilled to near absolute zero, the Super Cryogenic Dark Matter Search (SuperCDMS) SNOLAB – one of the world’s most sensitive dark matter searches – has begun collecting its very first scientific data. 

During this early-science phase, the team will fine-tune the system for its full-scale search, set to begin in 2027. Although the experiment isn’t yet operating at full sensitivity, it could still deliver meaningful results.

The search for dark matter at SuperCDMS SNOLAB is finally underway. 

Tina Cartaro SuperCDMS Operations Manager

“The search for dark matter at SuperCDMS SNOLAB is finally underway,” said Tina Cartaro, SuperCDMS operations manager at the Department of Energy's SLAC National Accelerator Laboratory. “Even in this early phase, our most sensitive detectors have the potential to deliver breakthrough discoveries. At the same time, we're preparing and testing the entire system, learning how our detectors and cryogenic cooling perform together so we can unlock their design sensitivity.”

SuperCDMS is an international collaboration of 28 institutions, with SLAC serving as the lead laboratory. This second-generation experiment is designed to detect “light” dark matter, hypothetical particles so lightweight that their interactions with ordinary matter leave only the faintest traces, making them especially hard to detect.

More than a mile beneath Earth's surface, in SNOLAB, a deep underground laboratory located in the Vale Creighton mine near Sudbury, Ontario, SuperCDMS houses 24 ultra-pure silicon and germanium crystals, each about the size of a hockey puck, inside a refrigerator colder than outer space. If a dark matter particle strikes one of these crystals, it will produce a tiny vibration called a phonon, along with a small electrical signal. To detect those minuscule signals, the crystals are outfitted with superconducting sensors that only work when they are extremely cold. The entire setup is surrounded by layers of clean shielding materials to prevent stray background radiation from drowning out the signal. Layers of copper, polyethylene, ultrapure lead and a barrier against radon are used to reduce these backgrounds to acceptable levels.

The early-science phase will continue through fall 2026. Following this early data-taking period, the SuperCDMS Collaboration and Operations team plans to warm up the experiment to further optimize both the cryogenic system and noise environment. This warm-up and maintenance period is expected to last into late 2026, followed by a year of data collection with the detectors running at optimized, full sensitivity.

This opens up new avenues in the search for dark matter.

Priscilla Cushman SuperCDMS spokesperson and a professor in the University of Minnesota School of Physics and Astronomy

“Our detectors will explore, with unprecedented sensitivity, regions where the lightest-mass dark matter particles may be lurking,” said SuperCDMS spokesperson Priscilla Cushman, a professor in the University of Minnesota School of Physics and Astronomy. “This opens up new avenues in the search for dark matter.”

The SuperCDMS SNOLAB experiment is a joint project of the U.S. Department of Energy Office of Science, the U.S. National Science Foundation, the Canada Foundation for Innovation, the Natural Sciences and Engineering Research Council of Canada and the Arthur B. McDonald Institute (Canada). For more information about the SuperCDMS experiment and collaboration, please visit https://supercdms.slac.stanford.edu.

For media inquiries, please contact media@slac.stanford.edu. For other questions or comments, contact SLAC Strategic Communications & External Affairs at communications@slac.stanford.edu.


About SLAC

SLAC National Accelerator Laboratory explores how the universe works at the biggest, smallest and fastest scales and invents powerful tools used by researchers around the globe. As world leaders in ultrafast science and bold explorers of the physics of the universe, we forge new ground in understanding our origins and building a healthier and more sustainable future. Our discovery and innovation help develop new materials and chemical processes and open unprecedented views of the cosmos and life’s most delicate machinery. Building on more than 60 years of visionary research, we help shape the future by advancing areas such as quantum technology, scientific computing and the development of next-generation accelerators.

SLAC is operated by Stanford University for the U.S. Department of Energy’s Office of Science. The Office of Science is the single largest supporter of basic research in the physical sciences in the United States and is working to address some of the most pressing challenges of our time.

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