TY - JOUR
T1 - A high-entropy β-type disilicate for advanced thermal protective coatings
T2 - Integrating low infrared emissivity, low thermal conductivity, and high CMAS corrosion resistance
AU - Wang, Xu
AU - Xu, Feihan
AU - Liu, Ling
AU - Ma, Zhuang
N1 - Publisher Copyright:
© 2026 Published by Elsevier Ltd.
PY - 2026
Y1 - 2026
N2 - The development of high-performance infrared radiation ceramic materials with low emissivity, while also featuring low thermal conductivity and excellent corrosion resistance, is an urgent need for emerging industrial and aerospace applications. This study develops a novel high-entropy rare-earth disilicate, (Lu1/6Yb1/6Sc1/6Er1/6Y1/6Ho1/6)2Si2O7 ((6RE1/6)2Si2O7). The phase-pure (6RE1/6)2Si2O7 ceramic exhibits exhibits a low infrared emissivity of 0.415 (3-5 μm) at room temperature, a phenomenon attributed to oxygen vacancy-enhanced conduction. It achieves a low thermal conductivity of 1.85 W m−1 K−1 at 1073 K, and is primarily due to severe lattice distortion from cationic heterogeneity. When exposed to CMAS at 1300 °C, it develops a thin, continuous barrier layer of a multicomponent cyclosilicate (Ca3RE2(Si3O9)2), that reaches a thickness of only 25 μm after 48 h and effectively inhibits infiltration. The high-entropy design successfully integrates low emissivity, suppressed thermal transport, and superior corrosion resistance in a single-phase material.
AB - The development of high-performance infrared radiation ceramic materials with low emissivity, while also featuring low thermal conductivity and excellent corrosion resistance, is an urgent need for emerging industrial and aerospace applications. This study develops a novel high-entropy rare-earth disilicate, (Lu1/6Yb1/6Sc1/6Er1/6Y1/6Ho1/6)2Si2O7 ((6RE1/6)2Si2O7). The phase-pure (6RE1/6)2Si2O7 ceramic exhibits exhibits a low infrared emissivity of 0.415 (3-5 μm) at room temperature, a phenomenon attributed to oxygen vacancy-enhanced conduction. It achieves a low thermal conductivity of 1.85 W m−1 K−1 at 1073 K, and is primarily due to severe lattice distortion from cationic heterogeneity. When exposed to CMAS at 1300 °C, it develops a thin, continuous barrier layer of a multicomponent cyclosilicate (Ca3RE2(Si3O9)2), that reaches a thickness of only 25 μm after 48 h and effectively inhibits infiltration. The high-entropy design successfully integrates low emissivity, suppressed thermal transport, and superior corrosion resistance in a single-phase material.
KW - CMAS corrosion
KW - High entropy rare earth disilicate
KW - High-temperature thermal properties
KW - Low emissivity
UR - https://www.scopus.com/pages/publications/105045330428
U2 - 10.1016/j.ceramint.2026.07.359
DO - 10.1016/j.ceramint.2026.07.359
M3 - Article
AN - SCOPUS:105045330428
SN - 0272-8842
JO - Ceramics International
JF - Ceramics International
ER -