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Preparing Silica Aerogel Monoliths via a Rapid Supercritical Extraction Method
Published on: February 28, 2014
High-Entropy Ceramic Aerogel with Ultrahigh Thermomechanical Properties
Duola Wang1,2, Chuanyun Song1,2, Shixuan Dang1,2
1Key Lab of Smart Prevention and Mitigation of Civil Engineering Disasters of the Ministry of Industry and Information Technology, Harbin Institute of Technology, Harbin 150090, PR China.
Abstract:
Materials for extreme-condition thermal insulation need to simultaneously withstand complex thermomechanical stresses while retaining their insulating properties at high temperatures. Ceramic aerogels are attractive candidates, but conventional low-entropy ceramics usually suffer from formidable grain growth with severe volume shrinkage and strength degradation, resulting in catastrophic failures. Herein, a high-entropy (La1/4Sm1/4Gd1/4Y1/4)2Zr2O7 (ZLSGY) aerogel is made through an element-phase design, realizing enhanced lattice distortion and sluggish diffusion effects to achieve fine-grain strengthening under extreme conditions. The resulting aerogel exhibits excellent mechanical flexibility, achieving compressive, tensile fracture, and bending strains of 98%, 52%, and 99%, respectively, as well as an ultralow thermal conductivity of 24.79 mW m-1 K-1 at 25 °C and 82.19 mW m-1 K-1 at 1000 °C. Moreover, the aerogel achieves exceptional thermomechanical stability with a working temperature of up to 1400 °C (less than 3% strength degradation after 105 high-temperature deformation cycles). This high-entropy ceramic aerogel presents a promising material system for thermal insulation in extreme environments.

