The influence of Al2O3 on the structural properties of MgSiO3 akimotoite

Author:

Siersch Nicki C.12,Criniti Giacomo1ORCID,Kurnosov Alexander1,Ballaran Tiziana Boffa1,Liu Zhaodong13ORCID,Ishii Takayuki14,Frost Daniel J.1ORCID,Yu Tony5,Wang Yanbin5

Affiliation:

1. Bayerisches Geoinstitut, Universität Bayreuth, D-95440 Bayreuth, Germany

2. † Present address: Sorbonne Université, Muséum National d‘Histoire Naturelle, UMR CNRS 7590, Institut de Minéralogie, de Physique des Matériaux et de Cosmochimie, IMPMC, Paris, France.

3. State Key Laboratory of Superhard Materials, Jilin University, Changchun 13001, China

4. ‡ Present address: Center for High Pressure Science and Technology Advanced Research, CHN-100094, Beijing, China.

5. Center for Advanced Radiation Sources, The University of Chicago, Chicago, Illinois 60637, U.S.A.

Abstract

Abstract Akimotoite, a MgSiO3 polymorph present in the lower transition zone within ultramafic portions of subducting slabs and potentially also in the ambient mantle, will partition some amount of Al, raising the question of how this will affect its crystal structure and properties. In this study, a series of samples along the MgSiO3-Al2O3 (akimotoite-corundum) solid solution have been investigated by means of single-crystal X-ray diffraction to examine their crystal chemistry. Results show a strong nonlinear behavior of the a- and c-axes as a function of Al content, which arises from fundamentally different accommodation mechanisms in the akimotoite and corundum structures. Furthermore, two Al2O3-bearing akimotoite samples were investigated at high pressure to determine the different compression mechanisms associated with Al substitution. Al2O3-bearing akimotoite becomes more compressible at least up to 20 mol% Al2O3, due likely to an increase in compressibility as the Al cation is incorporated into the SiO6 octahedron. This observation is in strong contrast to the stiffer corundum end-member having a KT = 250 GPa, which is larger than that of the akimotoite end-member [KT = 205(1) GPa]. These findings have implications for mineral physics models of elastic properties, which have in the past assumed linear mixing behavior between the MgSiO3 akimotoite and Al2O3 corundum end-members to calculate sound wave velocities for Al-bearing akimotoite at high pressure and temperature.

Publisher

Mineralogical Society of America

Subject

Geochemistry and Petrology,Geophysics

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