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Updated: Jul 12, 2026

Simulation of the Planetary Interior Differentiation Processes in the Laboratory
Published on: November 15, 2013
Light hydrogen isotopes in terrestrial core
Yu Zhang1,2, Wenzhong Wang1,2,3, Zhengbin Deng4
1Laboratory of Seismology and Physics of the Earth's Interior, School of Earth and Space Sciences, University of Science and Technology of China, Hefei, China.
Abstract:
The origin of Earth's water remains unresolved. Hydrogen isotopes provide a key tracer of planetary water history, yet the isotope composition of Earth's core-the planet's largest internal reservoir-has remained unconstrained. Here, we use first-principles calculations combined with machine-learning-accelerated path-integral molecular dynamics to quantify hydrogen isotope fractionation between silicate and metallic melts under core-forming conditions. We find that core formation enriched the silicate Earth in deuterium while concentrating isotopically light hydrogen in the core, requiring the proto-Earth to have started with a lower deuterium-to-hydrogen (D/H) ratio than that preserves in the present-day mantle. Our models show that the bulk-Earth D/H ratio can be explained either by direct accretion of enstatite chondrite-dominated material or by isotopic resetting of deuterium-rich planetesimals through interactions with solar nebular gas. These results suggest that Earth's water inventory was established during the earliest stages of accretion.
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