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High-Throughput Screening of the Thermoelastic Properties of Ultrahigh-Temperature Ceramics

[Image: see text] Ultrahigh-temperature ceramics (UHTCs) are a group of materials with high technological interest because of their applications in extreme environments. However, their characterization at high temperatures represents the main obstacle for their fast development. Obstacles are found...

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Autores principales: Nath, Pinku, Plata, Jose J., Santana-Andreo, Julia, Blancas, Ernesto J., Márquez, Antonio M., Fernández Sanz, Javier
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8509953/
https://www.ncbi.nlm.nih.gov/pubmed/34133122
http://dx.doi.org/10.1021/acsami.1c08832
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author Nath, Pinku
Plata, Jose J.
Santana-Andreo, Julia
Blancas, Ernesto J.
Márquez, Antonio M.
Fernández Sanz, Javier
author_facet Nath, Pinku
Plata, Jose J.
Santana-Andreo, Julia
Blancas, Ernesto J.
Márquez, Antonio M.
Fernández Sanz, Javier
author_sort Nath, Pinku
collection PubMed
description [Image: see text] Ultrahigh-temperature ceramics (UHTCs) are a group of materials with high technological interest because of their applications in extreme environments. However, their characterization at high temperatures represents the main obstacle for their fast development. Obstacles are found from an experimental point of view, where only few laboratories around the world have the resources to test these materials under extreme conditions, and also from a theoretical point of view, where actual methods are expensive and difficult to apply to large sets of materials. Here, a new theoretical high-throughput framework for the prediction of the thermoelastic properties of materials is introduced. This approach can be systematically applied to any kind of crystalline material, drastically reducing the computational cost of previous methodologies up to 80% approximately. This new approach combines Taylor expansion and density functional theory calculations to predict the vibrational free energy of any arbitrary strained configuration, which represents the bottleneck in other methods. Using this framework, elastic constants for UHTCs have been calculated in a wide range of temperatures with excellent agreement with experimental values, when available. Using the elastic constants as the starting point, other mechanical properties such a bulk modulus, shear modulus, or Poisson ratio have been also explored, including upper and lower limits for polycrystalline materials. Finally, this work goes beyond the isotropic mechanical properties and represents one of the most comprehensive and exhaustive studies of some of the most important UHTCs, charting their anisotropy and thermal and thermodynamical properties.
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spelling pubmed-85099532021-10-13 High-Throughput Screening of the Thermoelastic Properties of Ultrahigh-Temperature Ceramics Nath, Pinku Plata, Jose J. Santana-Andreo, Julia Blancas, Ernesto J. Márquez, Antonio M. Fernández Sanz, Javier ACS Appl Mater Interfaces [Image: see text] Ultrahigh-temperature ceramics (UHTCs) are a group of materials with high technological interest because of their applications in extreme environments. However, their characterization at high temperatures represents the main obstacle for their fast development. Obstacles are found from an experimental point of view, where only few laboratories around the world have the resources to test these materials under extreme conditions, and also from a theoretical point of view, where actual methods are expensive and difficult to apply to large sets of materials. Here, a new theoretical high-throughput framework for the prediction of the thermoelastic properties of materials is introduced. This approach can be systematically applied to any kind of crystalline material, drastically reducing the computational cost of previous methodologies up to 80% approximately. This new approach combines Taylor expansion and density functional theory calculations to predict the vibrational free energy of any arbitrary strained configuration, which represents the bottleneck in other methods. Using this framework, elastic constants for UHTCs have been calculated in a wide range of temperatures with excellent agreement with experimental values, when available. Using the elastic constants as the starting point, other mechanical properties such a bulk modulus, shear modulus, or Poisson ratio have been also explored, including upper and lower limits for polycrystalline materials. Finally, this work goes beyond the isotropic mechanical properties and represents one of the most comprehensive and exhaustive studies of some of the most important UHTCs, charting their anisotropy and thermal and thermodynamical properties. American Chemical Society 2021-06-16 2021-06-30 /pmc/articles/PMC8509953/ /pubmed/34133122 http://dx.doi.org/10.1021/acsami.1c08832 Text en © 2021 American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Nath, Pinku
Plata, Jose J.
Santana-Andreo, Julia
Blancas, Ernesto J.
Márquez, Antonio M.
Fernández Sanz, Javier
High-Throughput Screening of the Thermoelastic Properties of Ultrahigh-Temperature Ceramics
title High-Throughput Screening of the Thermoelastic Properties of Ultrahigh-Temperature Ceramics
title_full High-Throughput Screening of the Thermoelastic Properties of Ultrahigh-Temperature Ceramics
title_fullStr High-Throughput Screening of the Thermoelastic Properties of Ultrahigh-Temperature Ceramics
title_full_unstemmed High-Throughput Screening of the Thermoelastic Properties of Ultrahigh-Temperature Ceramics
title_short High-Throughput Screening of the Thermoelastic Properties of Ultrahigh-Temperature Ceramics
title_sort high-throughput screening of the thermoelastic properties of ultrahigh-temperature ceramics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8509953/
https://www.ncbi.nlm.nih.gov/pubmed/34133122
http://dx.doi.org/10.1021/acsami.1c08832
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