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Atomistic and experimental study on thermal conductivity of bulk and porous cerium dioxide

机译:散装和多孔二氧化铈导热系数的原子学和实验研究

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摘要

Cerium dioxide (CeO2) is a surrogate material for traditional nuclear fuels and an essential material for a wide variety of industrial applications both in its bulk and nanometer length scale. Despite this fact, the underlying physics of thermal conductivity (kL), a crucial design parameter in industrial applications, has not received enough attention. In this article, a systematic investigation of the phonon transport properties was performed using ab initio calculations unified with the Boltzmann transport equation. An extensive examination of the phonon mode contribution, available three-phonon scattering phase space, mode Grüneisen parameter and mean free path (MFP) distributions were also conducted. To further augment theoretical predictions of the kL, measurements were made on specimens prepared by spark plasma sintering using the laser flash technique. Since the sample porosity plays a vital role in the value of measured kL, the effect of porosity on kL by molecular dynamics (MD) simulations were investigated. Finally, we also determined the nanostructuring effect on the thermal properties of CeO2. Since CeO2 films find application in various industries, the dependence of thickness on the in-plane and cross-plane kL for an infinite CeO2 thin film was also reported.
机译:二氧化铈(CeO2)是传统核燃料的替代材料,无论是体积还是纳米长度尺度,都是多种工业应用的必需材料。尽管如此,热导率(kL)的基本物理原理(工业应用中的关键设计参数)仍未引起足够的重视。在本文中,使用与玻耳兹曼输运方程统一的从头算式对声子输运性质进行了系统研究。还对声子模式贡献,可用的三声子散射相空间,模式Grüneisen参数和平均自由程(MFP)分布进行了广泛的研究。为了进一步增强对kL的理论预测,对使用激光闪光技术通过火花等离子体烧结制备的样品进行了测量。由于样品的孔隙度在测量的kL值中起着至关重要的作用,因此通过分子动力学(MD)模拟研究了孔隙度对kL的影响。最后,我们还确定了纳米结构对CeO2热性能的影响。由于CeO2薄膜在各个行业都有广泛的应用,因此也报道了厚度对无限量CeO2薄膜的面内和横截面kL的依赖性。

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