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Nano-Structured Materials under Irradiation: Oxide Dispersion-Strengthened Steels

Oxide dispersion-strengthened materials are reinforced by a (Y, Ti, O) nano-oxide dispersion and thus can be considered as nanostructured materials. In this alloy, most of the nanoprecipitates are (Y, Ti, O) nano-oxides exhibiting a Y(2)Ti(2)O(7) pyrochlore-like structure. However, the lattice struc...

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Autores principales: Ribis, Joël, Mouton, Isabelle, Baumier, Cédric, Gentils, Aurélie, Loyer-Prost, Marie, Lunéville, Laurence, Siméone, David
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8538775/
https://www.ncbi.nlm.nih.gov/pubmed/34685031
http://dx.doi.org/10.3390/nano11102590
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author Ribis, Joël
Mouton, Isabelle
Baumier, Cédric
Gentils, Aurélie
Loyer-Prost, Marie
Lunéville, Laurence
Siméone, David
author_facet Ribis, Joël
Mouton, Isabelle
Baumier, Cédric
Gentils, Aurélie
Loyer-Prost, Marie
Lunéville, Laurence
Siméone, David
author_sort Ribis, Joël
collection PubMed
description Oxide dispersion-strengthened materials are reinforced by a (Y, Ti, O) nano-oxide dispersion and thus can be considered as nanostructured materials. In this alloy, most of the nanoprecipitates are (Y, Ti, O) nano-oxides exhibiting a Y(2)Ti(2)O(7) pyrochlore-like structure. However, the lattice structure of the smallest oxides is difficult to determine, but it is likely to be close to the atomic structure of the host matrix. Designed to serve in extreme environments—i.e., a nuclear power plant—the challenge for ODS steels is to preserve the nano-oxide dispersion under irradiation in order to maintain the excellent creep properties of the alloy in the reactor. Under irradiation, the nano-oxides exhibit different behaviour as a function of the temperature. At low temperature, the nano-oxides tend to dissolve owing to the frequent ballistic ejection of the solute atoms. At medium temperature, the thermal diffusion balances the ballistic dissolution, and the nano-oxides display an apparent stability. At high temperature, the nano-oxides start to coarsen, resulting in an increase in their size and a decrease in their number density. If the small nano-oxides coarsen through a radiation-enhanced Ostwald ripening mechanism, some large oxides disappear to the benefit of the small ones through a radiation-induced inverse Ostwald ripening. In conclusion, it is suggested that, under irradiation, the nano-oxide dispersion prevails over dislocations, grain boundaries and free surfaces to remove the point defects created by irradiation.
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spelling pubmed-85387752021-10-24 Nano-Structured Materials under Irradiation: Oxide Dispersion-Strengthened Steels Ribis, Joël Mouton, Isabelle Baumier, Cédric Gentils, Aurélie Loyer-Prost, Marie Lunéville, Laurence Siméone, David Nanomaterials (Basel) Article Oxide dispersion-strengthened materials are reinforced by a (Y, Ti, O) nano-oxide dispersion and thus can be considered as nanostructured materials. In this alloy, most of the nanoprecipitates are (Y, Ti, O) nano-oxides exhibiting a Y(2)Ti(2)O(7) pyrochlore-like structure. However, the lattice structure of the smallest oxides is difficult to determine, but it is likely to be close to the atomic structure of the host matrix. Designed to serve in extreme environments—i.e., a nuclear power plant—the challenge for ODS steels is to preserve the nano-oxide dispersion under irradiation in order to maintain the excellent creep properties of the alloy in the reactor. Under irradiation, the nano-oxides exhibit different behaviour as a function of the temperature. At low temperature, the nano-oxides tend to dissolve owing to the frequent ballistic ejection of the solute atoms. At medium temperature, the thermal diffusion balances the ballistic dissolution, and the nano-oxides display an apparent stability. At high temperature, the nano-oxides start to coarsen, resulting in an increase in their size and a decrease in their number density. If the small nano-oxides coarsen through a radiation-enhanced Ostwald ripening mechanism, some large oxides disappear to the benefit of the small ones through a radiation-induced inverse Ostwald ripening. In conclusion, it is suggested that, under irradiation, the nano-oxide dispersion prevails over dislocations, grain boundaries and free surfaces to remove the point defects created by irradiation. MDPI 2021-10-01 /pmc/articles/PMC8538775/ /pubmed/34685031 http://dx.doi.org/10.3390/nano11102590 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ribis, Joël
Mouton, Isabelle
Baumier, Cédric
Gentils, Aurélie
Loyer-Prost, Marie
Lunéville, Laurence
Siméone, David
Nano-Structured Materials under Irradiation: Oxide Dispersion-Strengthened Steels
title Nano-Structured Materials under Irradiation: Oxide Dispersion-Strengthened Steels
title_full Nano-Structured Materials under Irradiation: Oxide Dispersion-Strengthened Steels
title_fullStr Nano-Structured Materials under Irradiation: Oxide Dispersion-Strengthened Steels
title_full_unstemmed Nano-Structured Materials under Irradiation: Oxide Dispersion-Strengthened Steels
title_short Nano-Structured Materials under Irradiation: Oxide Dispersion-Strengthened Steels
title_sort nano-structured materials under irradiation: oxide dispersion-strengthened steels
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8538775/
https://www.ncbi.nlm.nih.gov/pubmed/34685031
http://dx.doi.org/10.3390/nano11102590
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