TY - JOUR
T1 - Microstructure, thermal and mechanical properties, and thermal cycling behavior of high-entropy (Y0.2Gd0.2Er0.2Yb0.2Lu0.2)2Zr2O7/YSZ thermal barrier coatings
AU - Li, Li
AU - Cao, Yupeng
AU - Wang, Quansheng
AU - Fan, Jiabin
AU - Sun, Zhenning
AU - Ning, Xianjin
N1 - Publisher Copyright:
© 2025
PY - 2025
Y1 - 2025
N2 - In this study, high-entropy rare-earth zirconate (HE-REZ) powder with the composition (Y0.2Gd0.2Er0.2Yb0.2Lu0.2)2Zr2O7 was synthesized via a solid-state reaction method. Subsequently, HE-REZ/YSZ double-ceramic-layer (DCL) thermal barrier coatings (TBC) were fabricated using atmospheric plasma spraying (APS). The phase composition and thermal conductivity of the coatings were characterized, along with the coefficient of thermal expansion (CTE) and mechanical properties of the corresponding bulk specimens. Thermal cycling performance was evaluated through both furnace cycling and burner rig thermal shock tests. The results indicate that both the HE-REZ powder and the resulting coatings exhibit a single-phase defect-fluorite structure. The HE-REZ coating achieved a thermal conductivity of 0.72 W m−1·K−1 at 1400 °C, corresponding to a reduction of over 60 % compared to that of YSZ. Although the CTE of the HE-REZ bulk is slightly lower than that of YSZ, thermal cycling tests revealed that coating failure is initiated by transverse cracks propagating through the HE-REZ layer, primarily due to its significantly lower fracture toughness—about 25 % of that of YSZ.
AB - In this study, high-entropy rare-earth zirconate (HE-REZ) powder with the composition (Y0.2Gd0.2Er0.2Yb0.2Lu0.2)2Zr2O7 was synthesized via a solid-state reaction method. Subsequently, HE-REZ/YSZ double-ceramic-layer (DCL) thermal barrier coatings (TBC) were fabricated using atmospheric plasma spraying (APS). The phase composition and thermal conductivity of the coatings were characterized, along with the coefficient of thermal expansion (CTE) and mechanical properties of the corresponding bulk specimens. Thermal cycling performance was evaluated through both furnace cycling and burner rig thermal shock tests. The results indicate that both the HE-REZ powder and the resulting coatings exhibit a single-phase defect-fluorite structure. The HE-REZ coating achieved a thermal conductivity of 0.72 W m−1·K−1 at 1400 °C, corresponding to a reduction of over 60 % compared to that of YSZ. Although the CTE of the HE-REZ bulk is slightly lower than that of YSZ, thermal cycling tests revealed that coating failure is initiated by transverse cracks propagating through the HE-REZ layer, primarily due to its significantly lower fracture toughness—about 25 % of that of YSZ.
KW - Atmospheric plasma spraying
KW - High-entropy ceramic
KW - Thermal barrier coatings
KW - Thermal cycling behavior
KW - Thermophysical properties
UR - http://www.scopus.com/pages/publications/105011671485
U2 - 10.1016/j.ceramint.2025.07.275
DO - 10.1016/j.ceramint.2025.07.275
M3 - Article
AN - SCOPUS:105011671485
SN - 0272-8842
JO - Ceramics International
JF - Ceramics International
ER -