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Thermodynamics of monoclinic and tetragonal hafnium dioxide (HfO2) at ambient pressure

机译:环境压力下单岩和四边形二氧化铪(HFO2)的热力学

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摘要

Accurate and precise thermodynamic models of oxide compounds and their phases are important for calculating the phase stability of oxide materials. We develop and use a coupled quantum mechanical and molecular dynamics approach to create thermodynamic models of hafnia (HfO2) polymorphs from 0 K to 3000 K at ambient pressure. The approach is based on the quasi-harmonic approximation below the Debye temperature and on ab-initio molecular dynamics calculations above the Debye temperature to predict constant pressure heat capacities (C-p). A Bayesian model provides interpolated values between these regimes. As a case study, we develop thermodynamic models of monoclinic and tetragonal HfO2 polymorphs. The predicted heat capacities are in excellent agreement with experiment, and the predicted temperature of the monoclinic to tetragonal phase transition (2173 K) is in good agreement with the experimental value (2078K). These results provide a comprehensive and accurate thermodynamic model of the monoclinic and tetragonal phases of hafnia on a broad range of temperatures and can serve as input to CALPHAD assessment of multi-component hafnia-based phase diagrams.
机译:氧化物及其相的精确热力学模型对于计算氧化物材料的相稳定性非常重要。我们开发并使用耦合的量子力学和分子动力学方法来创建环境压力下0 K到3000 K的HfNiA(HfO2)多晶型的热力学模型。该方法基于德拜温度以下的准调和近似和德拜温度以上的从头算分子动力学计算来预测恒压热容(C-p)。贝叶斯模型提供了这些区域之间的插值。作为一个案例研究,我们开发了单斜和四方HfO2多晶型的热力学模型。预测的热容与实验值吻合良好,单斜向四方相变(2173K)的预测温度与实验值(2078K)吻合良好。这些结果提供了广泛温度范围内铪的单斜相和四方相的全面而准确的热力学模型,并可作为基于铪的多组分相图的CALPHAD评估的输入。

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