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April 24, 2026Proceedings of the National Academy of Sciences0 citationsOpen Access

Gagarinite-type Fe 2.5 (OH) 6 under the deep lower mantle conditions

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LZLi ZhangZYZiqiang YangHMHo-kwang Mao

Key Points

  • The study aims to clarify the crystal chemistry of the H-phase formed under deep lower mantle conditions and its implications for geophysical processes.
  • Utilized the multigrain method for high-pressure structure determination
  • Conducted in situ structure analysis at 117 GPa
  • Refined the crystal structure from datasets of three grains
  • Determined the gagarinite-type structure with a = 5.0708(2) Å and c = 2.8214(1) Å
  • Identified the chemical formula of the H-phase as Fe2.5(OH)6
  • Proposed that this phase could serve as a significant water carrier in the deep lower mantle.

Abstract

Earth’s lower mantle is dominated by (Mg,Fe)SiO 3 bridgmanite. It was reported that (Mg,Fe)SiO 3 decomposes into an Fe-depleted bridgmanite phase and an iron-rich phase with a hexagonal structure (H-phase) under high pressure–temperature conditions of the deep lower mantle at depth >2,000 km. The nature of the decomposition reaction remains elusive due to the lack of information on the crystal chemistry of the H-phase. Using the multigrain method for high-pressure structure determination, here we reported in situ structure determination of the H-phase at 117 GPa and after temperature quench from 2,500 K. The structure analysis was performed by scaling and merging the single-crystal datasets of three selected grains. The crystal structure has been solved in space group P 6 3 / m , with a = 5.0708(2) Å and c = 2.8214(1) Å at 117 GP and 298 K. We obtained Fe 2.538 O 6 from the structure refinement and estimated the hydrogen content based on the volume expansion, suggesting a chemical formula Fe 2.5 (OH) 6 for the H-phase. The H-phase Fe 2.5 (OH) 6 resembles the crystal structure of the gagarinite-type minerals. To our knowledge, the gagarinite-type Fe 2.5 (OH) 6 is the most water-rich phase reported so far under the deep lower mantle conditions. We would expect that the gagarinite-type Fe 2.5 (OH) 6 is a potential water carrier in the deep lower mantle. Further, Fe-depletion in bridgmanite and formation of Fe 2.5 (OH) 6 may contribute to chemical heterogeneities in the bottom 1,000 km of the mantle and explain some of the complex seismic anomalies.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69eb0ac4553a5433e34b4c83https://doi.org/10.1073/pnas.2603677123
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