```html
Marsβs Northern Ice Cap is Surprisingly Young

If you have ever looked at Mars through a telescope, you probably noticed its two polar ice caps. The northern one is made largely of water iceβthe most obvious sign that Mars was once a wetter, warmer world. A team of researchers from the German Aerospace Center (DLR) used that ice cap to make surprising discoveries about it and what it tells us about Mars's interior.
Surprising Findings from the North Polar Cap
According to Adrien Broquet and a team of DLR planetary scientists, the northern polar cap on Mars is quite young. They discovered this by applying techniques used to measure what ice sheets on Earth do to its surface. The effect that widespread glaciation has is called βglacial isostatic adjustment,β and itβs still happening in places such as Scandinavia. Essentially, itβs a constant movement of land as Earthβs surface deforms in response to the weight of ice. The rate of deformation depends on the specific characteristics of the underlying mantle.
The Process of Glacial Isostatic Adjustment
Large areas of our planet have been covered at times by thick glacial sheets. The last time this occurred was during a glacial period that ended about 11,700 years ago. Those sheets βweighed downβ the surface, compressing it. As the glaciers melted, the surface began to rise back up in a process called βisostatic rebound.β The rate of both depression and the subsequent rising motion tells something about Earthβs interior, particularly the mantle. Think of pushing down on a sponge and then watching as it expands when you take your hand away.

Studying a Rebounding Ice Cap
Broquet and his team decided to measure glacial isostatic rebound on Mars under the northern ice cap. Itβs about 1,000 kilometers wide and three kilometers thick. They studied its formation by combining models of the planetβs thermal evolution with calculations of glacial isostatic adjustment, along with gravity, radar, and seismic observations.
The team concluded that the Martian northern polar cap is quite young, and itβs depressing the ground underneath. βWe show that the ice sheet pushes the underlying ground into the mantle at a rate of up to 0.13 millimeters per year,β said Broquet. Thatβs a fairly small deformation, according to team member Ana-Catalina Plesa. βThe small deformation rates indicate that the upper mantle of Mars is cold, highly viscous, and much stiffer than Earthβs upper mantle,β she said.
Understanding Planetary Construction
So, how can measurements of ice weighing down planetary surfaces tell us so much? Remember that rocky planets like Earth and Mars are in constant states of change. Those changes can range from short-lived events like volcanic eruptions to long-lived ones like Ice Ages. Each alteration affects the surface, as does the rate at which the surface deforms and βbounces back.β Earth scientists use techniques such as the study of glacial isostatic adjustment to probe deep beneath the surface to understand the characteristics of those layers.
Estimating Mars's Interior
To understand why Mars's interior is the way it is, you need estimates of Mars's gravity field (which varies), seismic measurements made by the InSight lander, and other data. They all help to determine rates of depression and rebound on the Red Planetβs surface and interior. The result? It appears that the surface under the Martian north pole has not had nearly enough time to fully deform under the weight of the ice. Broquetβs group estimates that Marsβs north pole surface area is currently subsiding at rates of up to 0.13 millimeters per year. For it to be that slow, the underlying upper mantle viscosity tells us that the Martian interior is quite cold.
The team's measurements indicate the ice cap is youngβmuch younger than any other large-scale feature seen on the planet. Itβs most likely to be between 2 and 12 million years.

Other places on the planet may not be quite so frigid as the polar regions. βAlthough the mantle underneath Marsβs north pole is estimated to be cold, our models are still able to predict the presence of local melt zones in the mantle near the equator,β said study co-author Doris Breuer.
These findings represent the first time that scientists have found glacial isostatic adjustment operating on another rocky planet. Future missions to Mars could include more instruments to measure the rise and fall of the Martian surface in response to glaciation.
For More Information
Marsβs Northern Ice Cap is Young with a Cold, Stiff Mantle Beneath
Glacial Isostatic Adjustment Reveals Marsβs Interior Viscosity Structure
```