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Hierarchically Porous Mullite Ceramics Assembled from Ultrathin Nanosheets for High-Temperature Thermal Insulation
Zhongyan Wang1, Anran Guo1, Xueying Zhang1
1Key Laboratory of Advanced Ceramics and Machining Technology of Ministry of Education, School of Materials Science and Engineering, Tianjin University, Tianjin 300072, China.
Abstract:
Mullite porous ceramics show exceptional promise for high-temperature insulation applications. However, the mechanical strength and thermal insulation performance of porous ceramics typically cannot be optimized simultaneously. Herein, we proposed a novel method to overcome this limitation by synthesizing hierarchically porous mullite ceramics assembled from ultrathin two-dimensional nanosheets. A chemical blowing method first synthesized ultrathin mullite nanosheets approximately 2-3 nm thick, which were subsequently assembled into a rigid hierarchical network by gel casting and freeze-drying. The influence of solid content and sintering temperature on the phase composition, microstructure, mechanical properties, and high-temperature thermal stability of porous ceramics was systematically investigated. The results indicate that the 20 wt.% sample sintered at 1200 °C exhibited the best performance. This optimal sample achieved a porosity of 90.75%, a compressive strength of 0.38 MPa, and excellent thermal insulation properties, including a low apparent thermal conductivity of 0.0756 W/(m·K) at room temperature and a back surface temperature of 253.2 °C after exposure to a 1200 °C flame. Crucially, this porous ceramic maintained structural stability up to 1500 °C. This nanosheet assembly strategy successfully reinforced the structural skeleton while inhibiting heat transfer. This strategy has great promise for the fabrication of lightweight porous ceramics designed for extreme environments.
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