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Terapascal static pressure generation with ultrahigh yield strength nanodiamond

Studies of materials’ properties at high and ultrahigh pressures lead to discoveries of unique physical and chemical phenomena and a deeper understanding of matter. In high-pressure research, an achievable static pressure limit is imposed by the strength of available strong materials and design of h...

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Autores principales: Dubrovinskaia, Natalia, Dubrovinsky, Leonid, Solopova, Natalia A., Abakumov, Artem, Turner, Stuart, Hanfland, Michael, Bykova, Elena, Bykov, Maxim, Prescher, Clemens, Prakapenka, Vitali B., Petitgirard, Sylvain, Chuvashova, Irina, Gasharova, Biliana, Mathis, Yves-Laurent, Ershov, Petr, Snigireva, Irina, Snigirev, Anatoly
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Association for the Advancement of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4956398/
https://www.ncbi.nlm.nih.gov/pubmed/27453944
http://dx.doi.org/10.1126/sciadv.1600341
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author Dubrovinskaia, Natalia
Dubrovinsky, Leonid
Solopova, Natalia A.
Abakumov, Artem
Turner, Stuart
Hanfland, Michael
Bykova, Elena
Bykov, Maxim
Prescher, Clemens
Prakapenka, Vitali B.
Petitgirard, Sylvain
Chuvashova, Irina
Gasharova, Biliana
Mathis, Yves-Laurent
Ershov, Petr
Snigireva, Irina
Snigirev, Anatoly
author_facet Dubrovinskaia, Natalia
Dubrovinsky, Leonid
Solopova, Natalia A.
Abakumov, Artem
Turner, Stuart
Hanfland, Michael
Bykova, Elena
Bykov, Maxim
Prescher, Clemens
Prakapenka, Vitali B.
Petitgirard, Sylvain
Chuvashova, Irina
Gasharova, Biliana
Mathis, Yves-Laurent
Ershov, Petr
Snigireva, Irina
Snigirev, Anatoly
author_sort Dubrovinskaia, Natalia
collection PubMed
description Studies of materials’ properties at high and ultrahigh pressures lead to discoveries of unique physical and chemical phenomena and a deeper understanding of matter. In high-pressure research, an achievable static pressure limit is imposed by the strength of available strong materials and design of high-pressure devices. Using a high-pressure and high-temperature technique, we synthesized optically transparent microballs of bulk nanocrystalline diamond, which were found to have an exceptional yield strength (~460 GPa at a confining pressure of ~70 GPa) due to the unique microstructure of bulk nanocrystalline diamond. We used the nanodiamond balls in a double-stage diamond anvil cell high-pressure device that allowed us to generate static pressures beyond 1 TPa, as demonstrated by synchrotron x-ray diffraction. Outstanding mechanical properties (strain-dependent elasticity, very high hardness, and unprecedented yield strength) make the nanodiamond balls a unique device for ultrahigh static pressure generation. Structurally isotropic, homogeneous, and made of a low-Z material, they are promising in the field of x-ray optical applications.
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spelling pubmed-49563982016-07-22 Terapascal static pressure generation with ultrahigh yield strength nanodiamond Dubrovinskaia, Natalia Dubrovinsky, Leonid Solopova, Natalia A. Abakumov, Artem Turner, Stuart Hanfland, Michael Bykova, Elena Bykov, Maxim Prescher, Clemens Prakapenka, Vitali B. Petitgirard, Sylvain Chuvashova, Irina Gasharova, Biliana Mathis, Yves-Laurent Ershov, Petr Snigireva, Irina Snigirev, Anatoly Sci Adv Research Articles Studies of materials’ properties at high and ultrahigh pressures lead to discoveries of unique physical and chemical phenomena and a deeper understanding of matter. In high-pressure research, an achievable static pressure limit is imposed by the strength of available strong materials and design of high-pressure devices. Using a high-pressure and high-temperature technique, we synthesized optically transparent microballs of bulk nanocrystalline diamond, which were found to have an exceptional yield strength (~460 GPa at a confining pressure of ~70 GPa) due to the unique microstructure of bulk nanocrystalline diamond. We used the nanodiamond balls in a double-stage diamond anvil cell high-pressure device that allowed us to generate static pressures beyond 1 TPa, as demonstrated by synchrotron x-ray diffraction. Outstanding mechanical properties (strain-dependent elasticity, very high hardness, and unprecedented yield strength) make the nanodiamond balls a unique device for ultrahigh static pressure generation. Structurally isotropic, homogeneous, and made of a low-Z material, they are promising in the field of x-ray optical applications. American Association for the Advancement of Science 2016-07-20 /pmc/articles/PMC4956398/ /pubmed/27453944 http://dx.doi.org/10.1126/sciadv.1600341 Text en Copyright © 2016, The Authors http://creativecommons.org/licenses/by-nc/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution-NonCommercial license (http://creativecommons.org/licenses/by-nc/4.0/) , which permits use, distribution, and reproduction in any medium, so long as the resultant use is not for commercial advantage and provided the original work is properly cited.
spellingShingle Research Articles
Dubrovinskaia, Natalia
Dubrovinsky, Leonid
Solopova, Natalia A.
Abakumov, Artem
Turner, Stuart
Hanfland, Michael
Bykova, Elena
Bykov, Maxim
Prescher, Clemens
Prakapenka, Vitali B.
Petitgirard, Sylvain
Chuvashova, Irina
Gasharova, Biliana
Mathis, Yves-Laurent
Ershov, Petr
Snigireva, Irina
Snigirev, Anatoly
Terapascal static pressure generation with ultrahigh yield strength nanodiamond
title Terapascal static pressure generation with ultrahigh yield strength nanodiamond
title_full Terapascal static pressure generation with ultrahigh yield strength nanodiamond
title_fullStr Terapascal static pressure generation with ultrahigh yield strength nanodiamond
title_full_unstemmed Terapascal static pressure generation with ultrahigh yield strength nanodiamond
title_short Terapascal static pressure generation with ultrahigh yield strength nanodiamond
title_sort terapascal static pressure generation with ultrahigh yield strength nanodiamond
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4956398/
https://www.ncbi.nlm.nih.gov/pubmed/27453944
http://dx.doi.org/10.1126/sciadv.1600341
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