Effects of composition and pressure on electronic states of iron in bridgmanite

Author:

Dorfman Susannah M.12,Potapkin Vasily3,Lv Mingda14,Greenberg Eran56,Kupenko Ilya37,Chumakov Aleksandr I.7,Bi Wenli89,Alp E. Ercan8,Liu Jiachao1,Magrez Arnaud10,Dutton Siân E.1112,Cava Robert J.11,McCammon Catherine A.1314,Gillet Philippe2

Affiliation:

1. Department of Earth and Environmental Sciences, Michigan State University, East Lansing, Michigan 48824, U.S.A.

2. Earth and Planetary Science Laboratory, Institute of Physics, École Polytechnique Fédérale de Lausanne, CH-1015 Lausanne, Switzerland

3. Institute of Mineralogy, University of Münster, D-48149 Münster, Germany

4. § Orcid 0000-0003-3477-5560.

5. School of Physics & Astronomy, Tel-Aviv University, Tel-Aviv 6997801, Israel

6. † Present address: Applied Physics Department, Soreq Nuclear Research Center (NRC), Yavne 81800, Israel.

7. ESRF-The European Synchrotron, 71, Avenue des Martyrs, 38000 Grenoble, France

8. Advanced Photon Source, Argonne National Laboratory, Argonne, Illinois 60439, U.S.A.

9. Department of Geology, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, U.S.A.; Department of Physics, University of Alabama at Birmingham, Birmingham, Alabama 35294, U.S.A.

10. Crystal Growth Facility, Institute of Physics, École Polytechnique Fédérale de Lausanne, CH-1015 Lausanne, Switzerland

11. Department of Chemistry, Princeton University, Princeton, New Jersey 08544, U.S.A.

12. ‡ Present address: Cavendish Laboratory, University of Cambridge, Cambridge, CB3 OHE, U.K.

13. Bayerisches Geoinstitut, University of Bayreuth, 95447 Bayreuth, Germany

14. || Orcid 0000-0001-5680-9106.

Abstract

Abstract Electronic states of iron in the lower mantle's dominant mineral, (Mg,Fe,Al)(Fe,Al,Si)O3 bridgmanite, control physical properties of the mantle including density, elasticity, and electrical and thermal conductivity. However, the determination of electronic states of iron has been controversial, in part due to different interpretations of Mössbauer spectroscopy results used to identify spin state, valence state, and site occupancy of iron. We applied energy-domain Mössbauer spectroscopy to a set of four bridgmanite samples spanning a wide range of compositions: 10–50% Fe/total cations, 0–25% Al/total cations, 12–100% Fe3+/total Fe. Measurements performed in the diamond-anvil cell at pressures up to 76 GPa below and above the high to low spin transition in Fe3+ provide a Mössbauer reference library for bridgmanite and demonstrate the effects of pressure and composition on electronic states of iron. Results indicate that although the spin transition in Fe3+ in the bridgmanite B-site occurs as predicted, it does not strongly affect the observed quadrupole splitting of 1.4 mm/s, and only decreases center shift for this site to 0 mm/s at ~70 GPa. Thus center shift can easily distinguish Fe3+ from Fe2+ at high pressure, which exhibits two distinct Mössbauer sites with center shift ~1 mm/s and quadrupole splitting 2.4–3.1 and 3.9 mm/s at ~70 GPa. Correct quantification of Fe3+/total Fe in bridgmanite is required to constrain the effects of composition and redox states in experimental measurements of seismic properties of bridgmanite. In Fe-rich, mixed-valence bridgmanite at deep-mantle-relevant pressures, up to ~20% of the Fe may be a Fe2.5+ charge transfer component, which should enhance electrical and thermal conductivity in Fe-rich heterogeneities at the base of Earth's mantle.

Publisher

Mineralogical Society of America

Subject

Geochemistry and Petrology,Geophysics

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