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Magnesium isotope evidence that accretional vapour loss shapes planetary compositions
It has long been recognised that Earth and other differentiated planetary bodies are chemically fractionated compared to primitive, chondritic meteorites and by inference the primordial disk from which they formed. An important question has been whether the notable volatile depletions of planetary b...
Autores principales: | , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
2017
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5624506/ https://www.ncbi.nlm.nih.gov/pubmed/28959965 http://dx.doi.org/10.1038/nature23899 |
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author | Hin, Remco C. Coath, Christopher D. Carter, Philip J. Nimmo, Francis Lai, Yi-Jen Pogge von Strandmann, Philip A.E. Willbold, Matthias Leinhardt, Zoë M. Walter, Michael J. Elliott, Tim |
author_facet | Hin, Remco C. Coath, Christopher D. Carter, Philip J. Nimmo, Francis Lai, Yi-Jen Pogge von Strandmann, Philip A.E. Willbold, Matthias Leinhardt, Zoë M. Walter, Michael J. Elliott, Tim |
author_sort | Hin, Remco C. |
collection | PubMed |
description | It has long been recognised that Earth and other differentiated planetary bodies are chemically fractionated compared to primitive, chondritic meteorites and by inference the primordial disk from which they formed. An important question has been whether the notable volatile depletions of planetary bodies are a consequence of accretion1, or inherited from prior nebular fractionation2. The isotopic compositions of the main constituents of planetary bodies can contribute to this debate3–6. Using a new analytical approach to address key issues of accuracy inherent in conventional methods, we show that all differentiated bodies have isotopically heavier magnesium compositions than chondritic meteorites. We argue that possible magnesium isotope fractionation during condensation of the solar nebula, core formation and silicate differentiation cannot explain these observations. However, isotopic fractionation between liquid and vapour followed by vapour escape during accretionary growth of planetesimals generates appropriate residual compositions. Our modelling implies that the isotopic compositions of Mg, Si and Fe and the relative abundances of the major elements of Earth, and other planetary bodies, are a natural consequence of substantial (~40% by mass) vapour loss from growing planetesimals by this mechanism. |
format | Online Article Text |
id | pubmed-5624506 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2017 |
record_format | MEDLINE/PubMed |
spelling | pubmed-56245062018-03-27 Magnesium isotope evidence that accretional vapour loss shapes planetary compositions Hin, Remco C. Coath, Christopher D. Carter, Philip J. Nimmo, Francis Lai, Yi-Jen Pogge von Strandmann, Philip A.E. Willbold, Matthias Leinhardt, Zoë M. Walter, Michael J. Elliott, Tim Nature Article It has long been recognised that Earth and other differentiated planetary bodies are chemically fractionated compared to primitive, chondritic meteorites and by inference the primordial disk from which they formed. An important question has been whether the notable volatile depletions of planetary bodies are a consequence of accretion1, or inherited from prior nebular fractionation2. The isotopic compositions of the main constituents of planetary bodies can contribute to this debate3–6. Using a new analytical approach to address key issues of accuracy inherent in conventional methods, we show that all differentiated bodies have isotopically heavier magnesium compositions than chondritic meteorites. We argue that possible magnesium isotope fractionation during condensation of the solar nebula, core formation and silicate differentiation cannot explain these observations. However, isotopic fractionation between liquid and vapour followed by vapour escape during accretionary growth of planetesimals generates appropriate residual compositions. Our modelling implies that the isotopic compositions of Mg, Si and Fe and the relative abundances of the major elements of Earth, and other planetary bodies, are a natural consequence of substantial (~40% by mass) vapour loss from growing planetesimals by this mechanism. 2017-09-27 /pmc/articles/PMC5624506/ /pubmed/28959965 http://dx.doi.org/10.1038/nature23899 Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms |
spellingShingle | Article Hin, Remco C. Coath, Christopher D. Carter, Philip J. Nimmo, Francis Lai, Yi-Jen Pogge von Strandmann, Philip A.E. Willbold, Matthias Leinhardt, Zoë M. Walter, Michael J. Elliott, Tim Magnesium isotope evidence that accretional vapour loss shapes planetary compositions |
title | Magnesium isotope evidence that accretional vapour loss shapes planetary compositions |
title_full | Magnesium isotope evidence that accretional vapour loss shapes planetary compositions |
title_fullStr | Magnesium isotope evidence that accretional vapour loss shapes planetary compositions |
title_full_unstemmed | Magnesium isotope evidence that accretional vapour loss shapes planetary compositions |
title_short | Magnesium isotope evidence that accretional vapour loss shapes planetary compositions |
title_sort | magnesium isotope evidence that accretional vapour loss shapes planetary compositions |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5624506/ https://www.ncbi.nlm.nih.gov/pubmed/28959965 http://dx.doi.org/10.1038/nature23899 |
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