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Evidence of shock-compressed stishovite above 300 GPa

SiO(2) is one of the most fundamental constituents in planetary bodies, being an essential building block of major mineral phases in the crust and mantle of terrestrial planets (1–10 M(E)). Silica at depths greater than 300 km may be present in the form of the rutile-type, high pressure polymorph st...

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Autores principales: Schoelmerich, Markus O., Tschentscher, Thomas, Bhat, Shrikant, Bolme, Cindy A., Cunningham, Eric, Farla, Robert, Galtier, Eric, Gleason, Arianna E., Harmand, Marion, Inubushi, Yuichi, Katagiri, Kento, Miyanishi, Kohei, Nagler, Bob, Ozaki, Norimasa, Preston, Thomas R., Redmer, Ronald, Smith, Ray F., Tobase, Tsubasa, Togashi, Tadashi, Tracy, Sally J., Umeda, Yuhei, Wollenweber, Lennart, Yabuuchi, Toshinori, Zastrau, Ulf, Appel, Karen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7311448/
https://www.ncbi.nlm.nih.gov/pubmed/32576908
http://dx.doi.org/10.1038/s41598-020-66340-y
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author Schoelmerich, Markus O.
Tschentscher, Thomas
Bhat, Shrikant
Bolme, Cindy A.
Cunningham, Eric
Farla, Robert
Galtier, Eric
Gleason, Arianna E.
Harmand, Marion
Inubushi, Yuichi
Katagiri, Kento
Miyanishi, Kohei
Nagler, Bob
Ozaki, Norimasa
Preston, Thomas R.
Redmer, Ronald
Smith, Ray F.
Tobase, Tsubasa
Togashi, Tadashi
Tracy, Sally J.
Umeda, Yuhei
Wollenweber, Lennart
Yabuuchi, Toshinori
Zastrau, Ulf
Appel, Karen
author_facet Schoelmerich, Markus O.
Tschentscher, Thomas
Bhat, Shrikant
Bolme, Cindy A.
Cunningham, Eric
Farla, Robert
Galtier, Eric
Gleason, Arianna E.
Harmand, Marion
Inubushi, Yuichi
Katagiri, Kento
Miyanishi, Kohei
Nagler, Bob
Ozaki, Norimasa
Preston, Thomas R.
Redmer, Ronald
Smith, Ray F.
Tobase, Tsubasa
Togashi, Tadashi
Tracy, Sally J.
Umeda, Yuhei
Wollenweber, Lennart
Yabuuchi, Toshinori
Zastrau, Ulf
Appel, Karen
author_sort Schoelmerich, Markus O.
collection PubMed
description SiO(2) is one of the most fundamental constituents in planetary bodies, being an essential building block of major mineral phases in the crust and mantle of terrestrial planets (1–10 M(E)). Silica at depths greater than 300 km may be present in the form of the rutile-type, high pressure polymorph stishovite (P4(2)/mnm) and its thermodynamic stability is of great interest for understanding the seismic and dynamic structure of planetary interiors. Previous studies on stishovite via static and dynamic (shock) compression techniques are contradictory and the observed differences in the lattice-level response is still not clearly understood. Here, laser-induced shock compression experiments at the LCLS- and SACLA XFEL light-sources elucidate the high-pressure behavior of stishovite on the lattice-level under in situ conditions on the Hugoniot to pressures above 300 GPa. We find stishovite is still (meta-)stable at these conditions, and does not undergo any phase transitions. This contradicts static experiments showing structural transformations to the CaCl(2), α-PbO(2) and pyrite-type structures. However, rate-limited kinetic hindrance may explain our observations. These results are important to our understanding into the validity of EOS data from nanosecond experiments for geophysical applications.
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spelling pubmed-73114482020-06-25 Evidence of shock-compressed stishovite above 300 GPa Schoelmerich, Markus O. Tschentscher, Thomas Bhat, Shrikant Bolme, Cindy A. Cunningham, Eric Farla, Robert Galtier, Eric Gleason, Arianna E. Harmand, Marion Inubushi, Yuichi Katagiri, Kento Miyanishi, Kohei Nagler, Bob Ozaki, Norimasa Preston, Thomas R. Redmer, Ronald Smith, Ray F. Tobase, Tsubasa Togashi, Tadashi Tracy, Sally J. Umeda, Yuhei Wollenweber, Lennart Yabuuchi, Toshinori Zastrau, Ulf Appel, Karen Sci Rep Article SiO(2) is one of the most fundamental constituents in planetary bodies, being an essential building block of major mineral phases in the crust and mantle of terrestrial planets (1–10 M(E)). Silica at depths greater than 300 km may be present in the form of the rutile-type, high pressure polymorph stishovite (P4(2)/mnm) and its thermodynamic stability is of great interest for understanding the seismic and dynamic structure of planetary interiors. Previous studies on stishovite via static and dynamic (shock) compression techniques are contradictory and the observed differences in the lattice-level response is still not clearly understood. Here, laser-induced shock compression experiments at the LCLS- and SACLA XFEL light-sources elucidate the high-pressure behavior of stishovite on the lattice-level under in situ conditions on the Hugoniot to pressures above 300 GPa. We find stishovite is still (meta-)stable at these conditions, and does not undergo any phase transitions. This contradicts static experiments showing structural transformations to the CaCl(2), α-PbO(2) and pyrite-type structures. However, rate-limited kinetic hindrance may explain our observations. These results are important to our understanding into the validity of EOS data from nanosecond experiments for geophysical applications. Nature Publishing Group UK 2020-06-23 /pmc/articles/PMC7311448/ /pubmed/32576908 http://dx.doi.org/10.1038/s41598-020-66340-y Text en © The Author(s) 2020 Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/.
spellingShingle Article
Schoelmerich, Markus O.
Tschentscher, Thomas
Bhat, Shrikant
Bolme, Cindy A.
Cunningham, Eric
Farla, Robert
Galtier, Eric
Gleason, Arianna E.
Harmand, Marion
Inubushi, Yuichi
Katagiri, Kento
Miyanishi, Kohei
Nagler, Bob
Ozaki, Norimasa
Preston, Thomas R.
Redmer, Ronald
Smith, Ray F.
Tobase, Tsubasa
Togashi, Tadashi
Tracy, Sally J.
Umeda, Yuhei
Wollenweber, Lennart
Yabuuchi, Toshinori
Zastrau, Ulf
Appel, Karen
Evidence of shock-compressed stishovite above 300 GPa
title Evidence of shock-compressed stishovite above 300 GPa
title_full Evidence of shock-compressed stishovite above 300 GPa
title_fullStr Evidence of shock-compressed stishovite above 300 GPa
title_full_unstemmed Evidence of shock-compressed stishovite above 300 GPa
title_short Evidence of shock-compressed stishovite above 300 GPa
title_sort evidence of shock-compressed stishovite above 300 gpa
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7311448/
https://www.ncbi.nlm.nih.gov/pubmed/32576908
http://dx.doi.org/10.1038/s41598-020-66340-y
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