| ID | 70877 |
| FullText URL | |
| Author |
Xie, Longjian
Center for High Pressure Science & Technology Advanced Research
Andrault, Denis
Université Clermont Auvergne, CNRS, IRD, OPGC, Laboratoire Magmas et Volcans
Yoshino, Takashi
Institute for Planetary Materials, Okayama University
ORCID
Kaken ID
publons
researchmap
Han, Cunrui
School of Natural Sciences, Birkbeck, University of London
Hammond, James O. S.
School of Natural Sciences, Birkbeck, University of London
Xu, Fang
School of Earth Sciences, Zhejiang University
Zhao, Bin
Institute for Planetary Materials, Okayama University
Lord, Oliver T.
School of Earth Sciences, University of Bristol
Fei, Yingwei
Earth & Planets Laboratory, Carnegie Institution for Science
Falvard, Simon
Université Clermont Auvergne, CNRS, IRD, OPGC, Laboratoire Magmas et Volcans
Kakizawa, Sho
Japan Synchrotron Radiation Research Institute
Tsujino, Noriyoshi
Japan Synchrotron Radiation Research Institute
Higo, Yuji
Japan Synchrotron Radiation Research Institute
Henry, Laura
Synchrotron SOLEIL
Guignot, Nicolas
Synchrotron SOLEIL
Dobson, David P.
Department of Earth Sciences, University College London
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| Abstract | Seismic and magnetotelluric studies suggest hydrous silicate melts atop the 410 km discontinuity form 30–100 km thick layers. Importantly, in some regions, two layers are observed. These stagnant layers are related to their comparable density to the surrounding mantle, but their formation mechanisms and detailed structures remain unclear. Here we report a large decrease of silicate melt viscosity at ~14 GPa, from 96(5) to 11.7(6) mPa⋅s, as water content increases from 15.5 to 31.8 mol% H₂O. Such low viscosities facilitate rapid segregation of melt, which would typically prevent thick layer accumulation. Our 1D finite element simulations show that continuous dehydration melting of upwelling mantle material produces a primary melt layer above 410 km and a secondary layer at the depth of equal mantle-melt densities. These layers can merge into a single thick layer under low density contrasts or high upwelling rates, explaining both melt doublets and thick single layers.
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| Published Date | 2025-04-04
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| Publication Title |
Nature Communications
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| Volume | volume16
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| Issue | issue1
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| Publisher | Springer Science and Business Media LLC
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| Start Page | 3239
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| ISSN | 2041-1723
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| Content Type |
Journal Article
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| language |
English
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| OAI-PMH Set |
岡山大学
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| Copyright Holders | © The Author(s) 2025
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| File Version | publisher
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| PubMed ID | |
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| Related Url | isVersionOf https://doi.org/10.1038/s41467-025-58518-7
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| License | http://creativecommons.org/licenses/by/4.0/
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| Citation | Xie, L., Andrault, D., Yoshino, T. et al. Low melt viscosity enables melt doublets above the 410-km discontinuity. Nat Commun 16, 3239 (2025). https://doi.org/10.1038/s41467-025-58518-7
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| 助成情報 |
NE/X009807:
( RCUK )
NE/T006617:
( RCUK )
UF150057:
( Royal Society )
21H04996:
川井型マルチアンビル装置による深部マントル研究の新展開
( 独立行政法人日本学術振興会 / Japan Society for the Promotion of Science )
NE/X009807:
( RCUK )
NE/T006617:
( RCUK )
|