Not a fact anymore

Mars became dry mainly because its ancient surface water escaped into space.

What we know now

Mars lost substantial water to space, but that was not its only major fate. Isotope-constrained models indicate that ocean-scale amounts of ancient water could also have become locked into hydrated minerals in the crust, while some remains in ice and other reservoirs.

Why it changed

Atmospheric escape alone had difficulty matching the observed hydrogen-isotope ratio, estimates of ancient water volume and the water still present on Mars. A 2021 model that included crustal hydration could satisfy those constraints while storing a large share of early Martian water in rock.

Status
Narrowed
Category
Planetary Science
Accepted for
Not quantified
Accepted approximately
Late 20th century–2021
Changed approximately
2021

Ancient Mars had rivers and lakes, and may once have held large seas. One long-standing explanation for where that water went focused on atmospheric escape: water molecules were broken apart, and lightweight hydrogen gradually escaped to space.

That process certainly happened. The question was whether it could explain most of the missing water. Any model also had to match Mars’s present deuterium-to-hydrogen ratio, geological estimates of its ancient water supply and the reservoirs that still exist today.

A 2021 study added a major sink that had often been underestimated: water becoming chemically bound in the Martian crust. When water reacts with rock to form hydrated minerals, it can remain trapped there. On Earth, plate tectonics can recycle some of that water back toward the surface. Mars does not have the same large-scale recycling system.

With crustal hydration included alongside volcanic degassing and atmospheric escape, the models could reproduce the available constraints while storing an ocean-scale quantity of water in the crust. The estimated range was wide, so it was not a precise accounting of how much went where.

Current reviews therefore treat Mars’s lost water as a problem with several answers. Some escaped to space, some remains as ice or in the subsurface, and a substantial amount may still be present in hydrated rock. Atmospheric escape remains important, but it is no longer a sufficient explanation on its own.

Evidence

Sources and what they establish

Previous belief

Primary research

Current evidence

  • Water Ice in the Subsurface and Polar Caps of MarsSpace Science Reviews

    A 2025 review treats ancient Martian water as having multiple fates, including loss to space, sequestration in the solid crust and storage in polar or subsurface ice, rather than a single escape pathway.

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