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Magnesium isotopes of the bulk solar wind from Genesis diamond‐like carbon films

NASA's Genesis Mission returned solar wind (SW) to the Earth for analysis to derive the composition of the solar photosphere from solar material. SW analyses control the precision of the derived solar compositions, but their ultimate accuracy is limited by the theoretical or empirical models of...

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Autores principales: Jurewicz, A. J. G., Rieck, K. D., Hervig, R., Burnett, D. S., Wadhwa, M., Olinger, C. T., Wiens, R. C., Laming, J. M., Guan, Y., Huss, G. R., Reisenfeld, D. B., Williams, P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7079557/
https://www.ncbi.nlm.nih.gov/pubmed/32214784
http://dx.doi.org/10.1111/maps.13439
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author Jurewicz, A. J. G.
Rieck, K. D.
Hervig, R.
Burnett, D. S.
Wadhwa, M.
Olinger, C. T.
Wiens, R. C.
Laming, J. M.
Guan, Y.
Huss, G. R.
Reisenfeld, D. B.
Williams, P.
author_facet Jurewicz, A. J. G.
Rieck, K. D.
Hervig, R.
Burnett, D. S.
Wadhwa, M.
Olinger, C. T.
Wiens, R. C.
Laming, J. M.
Guan, Y.
Huss, G. R.
Reisenfeld, D. B.
Williams, P.
author_sort Jurewicz, A. J. G.
collection PubMed
description NASA's Genesis Mission returned solar wind (SW) to the Earth for analysis to derive the composition of the solar photosphere from solar material. SW analyses control the precision of the derived solar compositions, but their ultimate accuracy is limited by the theoretical or empirical models of fractionation due to SW formation. Mg isotopes are “ground truth” for these models since, except for CAIs, planetary materials have a uniform Mg isotopic composition (within ≤1‰) so any significant isotopic fractionation of SW Mg is primarily that of SW formation and subsequent acceleration through the corona. This study analyzed Mg isotopes in a bulk SW diamond‐like carbon (DLC) film on silicon collector returned by the Genesis Mission. A novel data reduction technique was required to account for variable ion yield and instrumental mass fractionation (IMF) in the DLC. The resulting SW Mg fractionation relative to the DSM‐3 laboratory standard was (−14.4‰, −30.2‰) ± (4.1‰, 5.5‰), where the uncertainty is 2ơ SE of the data combined with a 2.5‰ (total) error in the IMF determination. Two of the SW fractionation models considered generally agreed with our data. Their possible ramifications are discussed for O isotopes based on the CAI nebular composition of McKeegan et al. (2011).
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spelling pubmed-70795572020-03-23 Magnesium isotopes of the bulk solar wind from Genesis diamond‐like carbon films Jurewicz, A. J. G. Rieck, K. D. Hervig, R. Burnett, D. S. Wadhwa, M. Olinger, C. T. Wiens, R. C. Laming, J. M. Guan, Y. Huss, G. R. Reisenfeld, D. B. Williams, P. Meteorit Planet Sci Articles NASA's Genesis Mission returned solar wind (SW) to the Earth for analysis to derive the composition of the solar photosphere from solar material. SW analyses control the precision of the derived solar compositions, but their ultimate accuracy is limited by the theoretical or empirical models of fractionation due to SW formation. Mg isotopes are “ground truth” for these models since, except for CAIs, planetary materials have a uniform Mg isotopic composition (within ≤1‰) so any significant isotopic fractionation of SW Mg is primarily that of SW formation and subsequent acceleration through the corona. This study analyzed Mg isotopes in a bulk SW diamond‐like carbon (DLC) film on silicon collector returned by the Genesis Mission. A novel data reduction technique was required to account for variable ion yield and instrumental mass fractionation (IMF) in the DLC. The resulting SW Mg fractionation relative to the DSM‐3 laboratory standard was (−14.4‰, −30.2‰) ± (4.1‰, 5.5‰), where the uncertainty is 2ơ SE of the data combined with a 2.5‰ (total) error in the IMF determination. Two of the SW fractionation models considered generally agreed with our data. Their possible ramifications are discussed for O isotopes based on the CAI nebular composition of McKeegan et al. (2011). John Wiley and Sons Inc. 2020-01-22 2020-02 /pmc/articles/PMC7079557/ /pubmed/32214784 http://dx.doi.org/10.1111/maps.13439 Text en © 2020 The Authors. Meteoritics & Planetary Science published by Wiley Periodicals, Inc. on behalf of The Meteoritical Society (MET) This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Articles
Jurewicz, A. J. G.
Rieck, K. D.
Hervig, R.
Burnett, D. S.
Wadhwa, M.
Olinger, C. T.
Wiens, R. C.
Laming, J. M.
Guan, Y.
Huss, G. R.
Reisenfeld, D. B.
Williams, P.
Magnesium isotopes of the bulk solar wind from Genesis diamond‐like carbon films
title Magnesium isotopes of the bulk solar wind from Genesis diamond‐like carbon films
title_full Magnesium isotopes of the bulk solar wind from Genesis diamond‐like carbon films
title_fullStr Magnesium isotopes of the bulk solar wind from Genesis diamond‐like carbon films
title_full_unstemmed Magnesium isotopes of the bulk solar wind from Genesis diamond‐like carbon films
title_short Magnesium isotopes of the bulk solar wind from Genesis diamond‐like carbon films
title_sort magnesium isotopes of the bulk solar wind from genesis diamond‐like carbon films
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7079557/
https://www.ncbi.nlm.nih.gov/pubmed/32214784
http://dx.doi.org/10.1111/maps.13439
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