The Earth is a unique rocky planet with liquid water at the surface and an oxygen-rich atmosphere, consequences of its particular accretion history. The earliest accreting bodies were small and could be either differentiated and undifferentiated; later larger bodies had formed cores and mantles with distinct properties. In addition, there may have been an overall trend of early reduced and later oxidized material accreting to form the Earth. This paper provides an overview—based on natural materials in our Earthbound sample collections, experimental studies on those samples, and calculations and numerical simulations of differentiation processes—of planetary accretion, core–mantle equilibration, mantle redox processes, and redox variations in Earth, Mars, and other terrestrial bodies.
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Research Article|
June 01, 2020
Redox Processes in Early Earth Accretion and in Terrestrial Bodies
Kevin Righter;
NASA Johnson Space Center, 2101 NASA Parkway, Houston, TX, 77058, USA
E-mail: kevin.righter-1@nasa.gov
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Christopher D. K. Herd;
University of Alberta, Department of Earth and Atmospheric Sciences, 1-26 Earth Sciences Building, Edmonton, AB, T6G 2E9, Canada
E-mail: herd@ualberta.ca
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Asmaa Boujibar
Earth and Planets Laboratory, Carnegie Institution for Science, 5251 Broad Branch Road NW, Washington DC 20015-1305, USA
E-mail: aboujibar@carnegiescience.edu
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University of Alberta, Department of Earth and Atmospheric Sciences, 1-26 Earth Sciences Building, Edmonton, AB, T6G 2E9, Canada
Publisher: Mineralogical Society of America
First Online:
02 Jul 2020
Online ISSN: 1811-5217
Print ISSN: 1811-5209
Copyright © 2020 by the Mineralogical Society of America
Mineralogical Society of America
Elements (2020) 16 (3): 161–166.
Article history
First Online:
02 Jul 2020
Citation
Kevin Righter, Christopher D. K. Herd, Asmaa Boujibar; Redox Processes in Early Earth Accretion and in Terrestrial Bodies. Elements 2020;; 16 (3): 161–166. doi: https://doi.org/10.2138/gselements.16.3.161
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Index Terms/Descriptors
- accretion
- achondrites
- atmosphere
- buffers
- carbon
- chemical reactions
- chondrites
- core
- cosmic dust
- differentiation
- early solar system
- Earth
- Eh
- fugacity
- HED meteorites
- iron
- mantle
- Mars
- Mercury Planet
- metals
- meteorites
- numerical models
- oxidation
- oxygen
- phase equilibria
- planetary interiors
- planetesimals
- planets
- reduction
- silicates
- silicon
- stony meteorites
- sulfur
- terrestrial planets
- Venus
- inner solar system
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