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高达2000°C的超强高隔热多孔高熵陶瓷

Ultrastrong and High Thermal Insulating Porous High-Entropy Ceramics up to 2000 °C.

作者信息

Wen Zihao, Tang Zhongyu, Liu Yiwen, Zhuang Lei, Yu Hulei, Chu Yanhui

机构信息

School of Materials Science and Engineering, South China University of Technology, Guangzhou, 510641, China.

出版信息

Adv Mater. 2024 Apr;36(14):e2311870. doi: 10.1002/adma.202311870. Epub 2024 Jan 6.

Abstract

High mechanical load-carrying capability and thermal insulating performance are crucial to thermal-insulation materials under extreme conditions. However, these features are often difficult to achieve simultaneously in conventional porous ceramics. Here, for the first time, it is reported a multiscale structure design and fast fabrication of 9-cation porous high-entropy diboride ceramics via an ultrafast high-temperature synthesis technique that can lead to exceptional mechanical load-bearing capability and high thermal insulation performance. With the construction of multiscale structures involving ultrafine pores at the microscale, high-quality interfaces between building blocks at the nanoscale, and severe lattice distortion at the atomic scale, the materials with an ≈50% porosity exhibit an ultrahigh compressive strength of up to ≈337 MPa at room temperature and a thermal conductivity as low as ≈0.76 W m K. More importantly, they demonstrate exceptional thermal stability, with merely ≈2.4% volume shrinkage after 2000 °C annealing. They also show an ultrahigh compressive strength of ≈690 MPa up to 2000 °C, displaying a ductile compressive behavior. The excellent mechanical and thermal insulating properties offer an attractive material for reliable thermal insulation under extreme conditions.

摘要

在极端条件下,高机械承载能力和隔热性能对隔热材料至关重要。然而,在传统多孔陶瓷中,这些特性往往难以同时实现。在此,首次报道了通过超快高温合成技术对九元多孔高熵硼化物陶瓷进行多尺度结构设计和快速制备,该技术可实现卓越的机械承载能力和高隔热性能。通过构建多尺度结构,包括微观尺度上的超细孔隙、纳米尺度上构建单元之间的高质量界面以及原子尺度上的严重晶格畸变,孔隙率约为50%的材料在室温下表现出高达约337MPa的超高抗压强度,热导率低至约0.76W/(m·K)。更重要的是,它们表现出卓越的热稳定性,在2000°C退火后体积收缩仅约2.4%。在高达2000°C的温度下,它们还表现出约690MPa的超高抗压强度,呈现出延性压缩行为。这些优异的机械和隔热性能为极端条件下可靠的隔热提供了一种有吸引力的材料。

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