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Hydrogen Made the Moon's Core Lighter ⚡ экспресс

Original: "Fe-H melting curve below 3 GPa: Implications for hydrogen in the lunar core"
arXiv:2604.12222 · 2026-04-14 · CC BY · ⏱ 1 min · Materials Exoplanets
Experiments show: hydrogen readily dissolves in liquid iron at low pressure, explaining the low density of the Moon's core.
Abstract

It was thought that hydrogen barely gets into the iron cores of Moon-sized planets. But experiments revealed that at pressures like those inside the Moon, hydrogen dissolves in liquid iron, like fizz in a soda. This cuts density by 9%—exactly what was missing to explain lunar core data. Maybe hydrogen hides in other 'iron' worlds too?

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Previously it was thought that hydrogen barely mixes with liquid iron at low pressure, so it wasn't expected in the Moon's core. New experiments have flipped that view. Under the pressure conditions of the lunar interior, hydrogen readily seeps into the melt, changes the internal atomic order (entropy), and lowers the melting point — like a leavening agent making the metal more fluid and lighter.

At the pressure of the Moon's core (about 5 GPa), iron absorbs up to 1.2% hydrogen. That may seem like a drop in the ocean, but it's enough to reduce density by 9%. This is exactly the missing amount needed to explain data on the Moon's vibrations. The core resembles a soda: hydrogen, like invisible bubbles, makes it less dense than a solid metal.

This unexpected effect works beyond the Moon. The same impurity likely explains the anomalously light core of Mercury. The finding forces us to rethink the interiors of small planets, including distant exoplanets, where hydrogen could be hiding in iron cores, altering their properties.

🎯 The Moon isn't the only one: Mercury also has an unusually light core, and hydrogen might be hiding there too.

Scientists
Christian DopplerD. B. McLaughlinDidier QuelozMichel MayorR. A. RossiterJacob Bekenstein
Tags
hydrogen exoplanet entropy
Laws
second law of thermodynamicsDoppler effectBekenstein-Hawking entropyKepler's third lawCoulomb's lawBoltzmann distribution
Original: arXiv:2604.12222 · CC BY · bridge42worlds