Jupiter’s moon Ganymede could be a giant dark matter detector
Large pieces of dark matter hitting Jupiter’s largest moon would form distinctive craters in its icy surface, and upcoming space missions might be able to spot them
By Alex Wilkins
18 August 2025
A view of Ganymede from NASA’s Juno spacecraft
JunoCam/NASA/JPL-Caltech/SwRI/MSSS/Kalleheikki Kannisto
Jupiter’s moon Ganymede could be a vast dark matter detector, and upcoming space missions might be able to spot distinctive dark matter craters on its ancient surface.
Physicists searching for dark matter usually look for tiny, extremely light particles that interact weakly with standard matter, requiring large and well-insulated underground detectors. Another kind of dark matter object could instead be more than a metre in diameter, and perhaps as massive as a small asteroid, but also vanishingly rare, interacting with normal matter extremely infrequently. To detect these large dark matter objects, you would need a detector the size of a moon or planet to make up for their sparsity.
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William DeRocco at the University of Maryland has proposed that the largest moon in the solar system, Ganymede, might contain evidence of these massive dark matter object. His work suggests they would form distinctive craters in the moon’s icy surface that are preserved for millions of years thanks to its geological inactivity.
DeRocco calculated how far a massive dark matter object would penetrate Ganymede’s thick icy shell, and found it would go much deeper than a typical asteroid, reaching into the moon’s subsurface ocean and bringing up distinctive minerals.
Upcoming missions to Jupiter and Ganymede, such as NASA’s Europa Clipper and ESA’s JUICE, could spot signs of these dark matter craters from above. DeRocco calculates that they would look comparatively small, as well as isolated from other ruptures or geological features. The spacecraft could then make further observations. “If you used something like ground-penetrating radar, you might be able to see this column of melted ice going all the way down through the ice,” says DeRocco.