Silicate rocks like basalt and olivine naturally react with dissolved CO₂ in rainwater, releasing calcium and magnesium ions that combine with carbon to form solid carbonate minerals — mineral carbonation. This locks the carbon away for tens of thousands of years. In nature this weathering takes millennia; enhanced weathering speeds it up by crushing rock into fine grains and spreading it where rain and CO₂ reach it constantly, most often over farmland.
A single tonne of finely crushed basalt can theoretically absorb up to roughly 0.3 tonnes of CO₂ as it fully weathers — and because the carbon ends up locked in solid minerals rather than a gas reservoir, enhanced weathering is considered one of the more durable, low-risk forms of carbon dioxide removal.
Crushed volcanic rock is spread across a field while atmospheric CO₂ molecules drift down, dissolve onto grain surfaces, and slowly turn dark basalt or olivine into a pale carbonate crust — a speeded-up view of enhanced weathering.
Mineral carbonation: silicate rock reacting with dissolved CO₂ to lock carbon away as solid carbonate minerals, and how grain size, temperature and moisture each accelerate that reaction.
Choose a rock type, crush it finer, warm it up and add rainfall to speed the reaction. Watch the reaction-rate multiplier and cumulative CO₂-captured counter respond as grains whiten with carbonate.
Iceland's Carbfix project injects CO₂-charged water into basalt formations and finds over 95% mineralises into solid rock within about two years — remarkably fast for a process that normally takes millennia.