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Microstructure and phase transformation of zirconia-based ternary oxides for thermal barrier coating applications

机译:用于热障涂层的氧化锆基三元氧化物的微观结构和相变

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Five dopant oxides, Sc2O3, Yb2O3, CeO2, Ta2O5, and Nb2O5, were incorporated into 7YSZ to create ternary zirconia-based oxides with varying oxygen vacancies and substitutional defects. These ternary oxides were consolidated using a high-temperature sintering process. The resulting bulk oxides were subjected to microstructural study using scanning electron microscopy (SEM), X-ray diffraction (XRD), and differential scanning calorimetry (DSC). The results show that the microstructures of the ternary zirconia-based oxides are determined by the amount of oxygen vacancies in the system, the dopant cation radius, and atomic mass. Increasing the number of oxygen vacancies in the lattice by the addition of trivalent dopant as well as the use of larger cations promotes the stabilization of the high-temperature cubic phase. The tetravalent cation, on the other hand, has the effect of retaining tetragonal phase to room temperature without the influence of oxygen vacancy. The addition of pentavalent oxide leads to the formation of monoclinic phase upon cooling.
机译:将五种掺杂剂氧化物Sc2O3,Yb2O3,CeO2,Ta2O5和Nb2O5掺入7YSZ中,以创建具有不同氧空位和替代缺陷的三氧化锆基氧化物。这些三元氧化物使用高温烧结工艺固结。使用扫描电子显微镜(SEM),X射线衍射(XRD)和差示扫描量热法(DSC)对所得的本体氧化物进行微观结构研究。结果表明,三元氧化锆基氧化物的微观结构取决于体系中氧空位的数量,掺杂剂阳离子半径和原子质量。通过添加三价掺杂剂以及使用更大的阳离子来增加晶格中氧空位的数量,可以促进高温立方相的稳定。另一方面,四价阳离子具有将四方相保持在室温下的作用,而没有氧空位的影响。五价氧化物的添加导致冷却时形成单斜晶相。

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