材料科学
陶瓷
热辐射
热导率
保温
辐射传输
发射率
传热
热的
光电子学
氧化物
透明陶瓷
辐射
工作(物理)
辐射冷却
热透过率
热传导
透射率
红外线的
宽带
复合材料
核工程
热力学
工程物理
热桥
辐射能
结构材料
辐射硬化
热障涂层
热容
格子(音乐)
纳米技术
热能
热保护
作者
Enyu Xie,Shuqi Wang,Qiancheng Zhao,Zijian Peng,Jingran Guo,G. Chen,Yongchun Zou,Qingyuan Zhao,Zhiyun Ye,Jingchi Mu,Junteng Yao,Xiang Xu,Jiahu Ouyang,Dechang Jia,Yu Zhou,Yaming Wang
摘要
ABSTRACT The escalating energy crisis and the demand for thermal protection under extreme environments require materials that effectively suppress heat transport while maintaining long‐term thermal stability. However, thermal insulation ceramics inherently suffer from the dual challenge of simultaneously inhibiting lattice heat transfer and radiative heat transfer. Here, we establish a synergistic regulation of solid‐state and radiative heat transfer through rare‐earth site compositional screening and entropy engineering. This principle informs the development of a physics‐informed constrained random forest model for predicting wavelength‐dependent infrared radiation properties in the RE 3 TaO 7 system, facilitating efficient screening of candidate compositions. High‐throughput screening of 504 structural variants has led to the identification of 21 candidates with a representative high‐entropy ceramic of (Nd 0.2 Sm 0.2 Gd 0.2 Dy 0.2 Y 0.2 ) 3 TaO 7 that exhibits ultralow near‐infrared transmittance (< 1% over 0.78–2.5 µm), high broadband emissivity (> 0.9 over 2.5–14 µm) and low radiative thermal conductivity of 0.035 W m −1 K −1 at 1273 K. This work makes progress in high‐entropy thermal‐protective ceramics for extreme environments and establishes a general framework for advanced thermal insulation materials.
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