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An Atomistic-Scale Study for Thermal Conductivity and Thermochemical Compatibility in (DyY)Zr2O7 Combining an Experimental Approach with Theoretical Calculation

Qu, Liu; Choy, Kwang-Leong; Wheatley, Richard

An Atomistic-Scale Study for Thermal Conductivity and Thermochemical Compatibility in (DyY)Zr2O7 Combining an Experimental Approach with Theoretical Calculation Thumbnail


Authors

Liu Qu

Kwang-Leong Choy

Profile image of RICHARD WHEATLEY

Dr RICHARD WHEATLEY RICHARD.WHEATLEY@NOTTINGHAM.AC.UK
ASSOCIATE PROFESSOR & READER IN THEORETICAL CHEMISTRY



Abstract

Ceramic oxides that have high-temperature capabilities can be deposited on the superalloy components in aero engines and diesel engines to advance engine efficiency and reduce fuel consumption. This paper aims to study doping effects of Dy3+ and Y3+on the thermodynamic properties of ZrO2 synthesized via a sol-gel route for a better control of the stoichiometry, combined with molecular dynamics (MD) simulation for the calculation of theoretical properties. The thermal conductivity is investigated by the MD simulation and Clarke’s model. This can improve the understanding of the microstructure and thermodynamic properties of (DyY)Zr2O7 (DYZ) at the atomistic level. The phonon-defect scattering and phonon-phonon scattering processes are investigated via the theoretical calculation, which provides an effective way to study thermal transport properties of ionic oxides. The measured and predicted thermal conductivity of DYZ is lower than that of 4 mol % Y2O3 stabilized ZrO2 (4YSZ). It is discovered that DYZ is thermochemically compatible with Al2O3 at 1300 °C, whereas at 1350 °C DYZ reacts with Al2O3 forming a small amount of new phases.

Citation

Qu, L., Choy, K.-L., & Wheatley, R. (2016). An Atomistic-Scale Study for Thermal Conductivity and Thermochemical Compatibility in (DyY)Zr2O7 Combining an Experimental Approach with Theoretical Calculation. Scientific Reports, 6, Article 21232. https://doi.org/10.1038/srep21232

Journal Article Type Article
Acceptance Date Oct 21, 2015
Online Publication Date Feb 18, 2016
Publication Date Feb 18, 2016
Deposit Date Dec 12, 2017
Publicly Available Date Oct 31, 2019
Journal Scientific Reports
Print ISSN 2045-2322
Electronic ISSN 2045-2322
Publisher Nature Publishing Group
Peer Reviewed Peer Reviewed
Volume 6
Article Number 21232
DOI https://doi.org/10.1038/srep21232
Public URL https://nottingham-repository.worktribe.com/output/1112308
Publisher URL https://www.nature.com/articles/srep21232
PMID 00037036

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