材料科学
锆酸盐
热障涂层
热膨胀
陶瓷
断裂韧性
热导率
衍射
复合材料
扫描电子显微镜
热的
相(物质)
晶体结构
粒度
空位缺陷
韧性
晶界
格子(音乐)
晶格常数
最大相位
声子
X射线晶体学
透射电子显微镜
矿物学
作者
Xintian Li,Yuhang Wu,Dierui Hu,Wei Wen
摘要
ABSTRACT This study investigated non‐equimolar high‐entropy rare‐earth zirconate ceramics as candidates for next‐generation thermal barrier coatings (TBCs). Three compositions—(La 0.05 Eu 0.2 Ho 0.2 Y 0.2 Yb 0.35 ) 2 Zr 2 O 7 (La 0.05 ), (La 0.2 Eu 0.2 Ho 0.2 Y 0.2 Yb 0.2 ) 2 Zr 2 O 7 (La 0.20 ), and (La 0.35 Eu 0.2 Ho 0.2 Y 0.2 Yb 0.05 ) 2 Zr 2 O 7 (La 0.35 )—were synthesized to investigate the effects of non‐equimolar composition on structure and properties. X‐ray diffraction and scanning electron microscopy analyses reveal that non‐equimolar design induces phase evolution, grain refinement, and elemental segregation. La 0.05 exhibits the lowest thermal conductivity (1.19 W·m −1 ·K −1 at 800°C), attributed to enhanced phonon scattering, oxygen vacancy defects, and Yb 3+ ‐induced rattling effects. In contrast, La 0.35 shows the highest thermal expansion coefficient (11.44 × 10 −6 K −1 at 1200°C), hardness (13.07 ± 0.06 GPa), and fracture toughness (1.93 ± 0.05 MPa·m 1/2 ), benefiting from lattice distortion and dual‐phase interface toughening. These results demonstrate that non‐equimolar design enables coordinated tuning of entropy, structure, and microstructure, providing a practical strategy for optimizing TBC performance.
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