Hydrogen isotopes reveal water leakage from the core

Chemical heterogeneities in Earth’s deep mantle may record either preserved primordial reservoirs or later core-mantle exchange, but distinguishing between these origins remains challenging. Hydrogen isotopes offer a sensitive tracer, yet whether magma ocean crystallization could generate a deuterium-depleted deep reservoir has not been quantitatively evaluated. Here, we use machine learning–accelerated path-integral simulations to determine equilibrium hydrogen isotope fractionation between silicate melt and bridgmanite, ringwoodite, and wadsleyite under magma ocean conditions. Incorporating these fractionation factors into a magma ocean crystallization model shows that mineral-melt fractionation is intrinsically weak, producing an essentially homogeneous D/H distribution in the primitive mantle. Magma ocean crystallization therefore cannot generate the extremely low δD values observed in some ocean island basalts. Combined with exceptionally high 3 He/ 4 He ratios, these signatures more plausibly reflect selective transfer of primordial volatiles from Earth’s core, implying sustained volatile exchange across the core-mantle boundary.

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Publication Details

Journal
Science Advances
Published
2026-10-09
DOI
https://doi.org/10.1126/sciadv.aei4756
Primary Topic
Geological and Geochemical Analysis
Type
article
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article

Hydrogen isotopes reveal water leakage from the core

Bowen Chen, Zhongqing Wu, Wenzhong Wang, Yu Zhang
Science Advances
Geological and Geochemical Analysis
article

Hydrogen isotopes reveal water leakage from the core

Bowen Chen, Zhongqing Wu, Wenzhong Wang, Yu Zhang
article en

Abstract

Chemical heterogeneities in Earth’s deep mantle may record either preserved primordial reservoirs or later core-mantle exchange, but distinguishing between these origins remains challenging. Hydrogen isotopes offer a sensitive tracer, yet whether magma ocean crystallization could generate a deuterium-depleted deep reservoir has not been quantitatively evaluated. Here, we use machine learning–accelerated path-integral simulations to determine equilibrium hydrogen isotope fractionation between silicate melt and bridgmanite, ringwoodite, and wadsleyite under magma ocean conditions. Incorporating these fractionation factors into a magma ocean crystallization model shows that mineral-melt fractionation is intrinsically weak, producing an essentially homogeneous D/H distribution in the primitive mantle. Magma ocean crystallization therefore cannot generate the extremely low δD values observed in some ocean island basalts. Combined with exceptionally high 3 He/ 4 He ratios, these signatures more plausibly reflect selective transfer of primordial volatiles from Earth’s core, implying sustained volatile exchange across the core-mantle boundary.

Science AdvancesVol. 12(41)
University of Science and Technology of China (CN)
Openalex Percentile: Top 16%
Geological and Geochemical Analysis
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