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Calculation of Thermal Expansion Coefficient of Rare Earth Zirconate System at High Temperature by First Principles

Compounds of rare earth zirconates with pyrochlore structure are candidates for the application of thermal barrier coatings of next generation. In order to modify the mechanic properties and maintain the low thermal conductivity, other trivalent rare-earth element substitution is commonly used. Pres...

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Autores principales: Wang, Xingqi, Bai, Xue, Xiao, Wei, Liu, Yuyang, Li, Xiaoning, Wang, Jianwei, Peng, Cheng, Wang, Lijun, Wang, Xingming
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8955235/
https://www.ncbi.nlm.nih.gov/pubmed/35329716
http://dx.doi.org/10.3390/ma15062264
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author Wang, Xingqi
Bai, Xue
Xiao, Wei
Liu, Yuyang
Li, Xiaoning
Wang, Jianwei
Peng, Cheng
Wang, Lijun
Wang, Xingming
author_facet Wang, Xingqi
Bai, Xue
Xiao, Wei
Liu, Yuyang
Li, Xiaoning
Wang, Jianwei
Peng, Cheng
Wang, Lijun
Wang, Xingming
author_sort Wang, Xingqi
collection PubMed
description Compounds of rare earth zirconates with pyrochlore structure are candidates for the application of thermal barrier coatings of next generation. In order to modify the mechanic properties and maintain the low thermal conductivity, other trivalent rare-earth element substitution is commonly used. Presently, investigation on the evaluation of the property of thermal expansion is attracting more attention. In this paper, a feature parameter of thermal expansion coefficient at high temperature (α(∞)) was proposed by combining Grüneisen’s equation and the Debye heat capacity model. Using α(∞) model, the thermal expansion property of different compounds can be easily figured out by first principles. Firstly, α(∞) of ZrO(2), HfO(2), were calculated, and results are in good agreement with the experimental data from the literature. Moreover, α(∞) of La(2)Zr(2)O(7), Pr(2)Zr(2)O(7), Gd(2)Zr(2)O(7), and Dy(2)Zr(2)O(7) were calculated, and results demonstrated that the model of α(∞) is a useful tool to predict the thermal expansion coefficient at high temperature. Finally, Gd(2)Zr(2)O(7) with 4 different Yb dopant concentrations (Gd(1)(-x)Yb(x))(2)Zr(2)O(7) (x = 0, 0.125, 0.3125, 0.5) were calculated. Comparing with the experimental data from the literature, the calculation results showed the same tendency with the increasing of Yb concentration.
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spelling pubmed-89552352022-03-26 Calculation of Thermal Expansion Coefficient of Rare Earth Zirconate System at High Temperature by First Principles Wang, Xingqi Bai, Xue Xiao, Wei Liu, Yuyang Li, Xiaoning Wang, Jianwei Peng, Cheng Wang, Lijun Wang, Xingming Materials (Basel) Article Compounds of rare earth zirconates with pyrochlore structure are candidates for the application of thermal barrier coatings of next generation. In order to modify the mechanic properties and maintain the low thermal conductivity, other trivalent rare-earth element substitution is commonly used. Presently, investigation on the evaluation of the property of thermal expansion is attracting more attention. In this paper, a feature parameter of thermal expansion coefficient at high temperature (α(∞)) was proposed by combining Grüneisen’s equation and the Debye heat capacity model. Using α(∞) model, the thermal expansion property of different compounds can be easily figured out by first principles. Firstly, α(∞) of ZrO(2), HfO(2), were calculated, and results are in good agreement with the experimental data from the literature. Moreover, α(∞) of La(2)Zr(2)O(7), Pr(2)Zr(2)O(7), Gd(2)Zr(2)O(7), and Dy(2)Zr(2)O(7) were calculated, and results demonstrated that the model of α(∞) is a useful tool to predict the thermal expansion coefficient at high temperature. Finally, Gd(2)Zr(2)O(7) with 4 different Yb dopant concentrations (Gd(1)(-x)Yb(x))(2)Zr(2)O(7) (x = 0, 0.125, 0.3125, 0.5) were calculated. Comparing with the experimental data from the literature, the calculation results showed the same tendency with the increasing of Yb concentration. MDPI 2022-03-18 /pmc/articles/PMC8955235/ /pubmed/35329716 http://dx.doi.org/10.3390/ma15062264 Text en © 2022 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
Wang, Xingqi
Bai, Xue
Xiao, Wei
Liu, Yuyang
Li, Xiaoning
Wang, Jianwei
Peng, Cheng
Wang, Lijun
Wang, Xingming
Calculation of Thermal Expansion Coefficient of Rare Earth Zirconate System at High Temperature by First Principles
title Calculation of Thermal Expansion Coefficient of Rare Earth Zirconate System at High Temperature by First Principles
title_full Calculation of Thermal Expansion Coefficient of Rare Earth Zirconate System at High Temperature by First Principles
title_fullStr Calculation of Thermal Expansion Coefficient of Rare Earth Zirconate System at High Temperature by First Principles
title_full_unstemmed Calculation of Thermal Expansion Coefficient of Rare Earth Zirconate System at High Temperature by First Principles
title_short Calculation of Thermal Expansion Coefficient of Rare Earth Zirconate System at High Temperature by First Principles
title_sort calculation of thermal expansion coefficient of rare earth zirconate system at high temperature by first principles
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8955235/
https://www.ncbi.nlm.nih.gov/pubmed/35329716
http://dx.doi.org/10.3390/ma15062264
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