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X-ray Raman scattering study of MgSiO3 glass at high pressure: Implication for triclustered MgSiO3 melt in Earth's mantle.

Authors :
Sung Keun Lee
Jung-Fu Lin
Cai, Yong Q.
Hiraoka, Nozomu
Eng, Peter J.
Okuchih, Takuo
Ho-Kwang Mao
Yue Meng
Hu, Michael Y.
Chow, Paul
Jinfu Shu
Baosheng Li
Fukui, Hiroshi
Bum Han Lee
Hyun Na Kim
Choong-Shik Yoo
Source :
Proceedings of the National Academy of Sciences of the United States of America. 6/10/2008, Vol. 105 Issue 23, p7925-7929. 5p. 1 Diagram, 3 Graphs.
Publication Year :
2008

Abstract

Silicate melts at the top of the transition zone and the core-mantle boundary have significant influences on the dynamics and properties of Earth's interior. MgSiO3-rich silicate melts were among the primary components of the magma ocean and thus played essential roles in the chemical differentiation of the early Earth. Diverse macroscopic properties of silicate melts in Earth's interior, such as density, viscosity, and crystal-melt partitioning, depend on their electronic and short-range local structures at high pressures and temperatures. Despite essential roles of silicate melts in many geophysical and geodynamic problems, little is known about their nature under the conditions of Earth's interior, including the densification mechanisms and the atomistic origins of the macroscopic properties at high pressures. Here, we have probed local electronic structures of MgSiO3 glass (as a precursor to Mg-silicate melts), using high-pressure x-ray Raman spectroscopy up to 39 GPa, in which high-pressure oxygen K-edge features suggest the formation of tricluster oxygens (oxygen coordinated with three Si frameworks; [3]O) between 12 and 20 GPa. Our results indicate that the densification in MgSiO3 melt is thus likely to be accompanied with the formation of triculster, in addition to a reduction in nonbridging oxygens. The pressure-induced increase in the fraction of oxygen triclusters >20 GPa would result in enhanced density, viscosity, and crystal-melt partitioning, and reduced element diffusivity in the MgSiO3 melt toward deeper part of the Earth's lower mantle. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00278424
Volume :
105
Issue :
23
Database :
Academic Search Index
Journal :
Proceedings of the National Academy of Sciences of the United States of America
Publication Type :
Academic Journal
Accession number :
32755999
Full Text :
https://doi.org/10.1073/pnas.0802667105