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具有优异隔热和吸声性能的高度可压缩且各向异性的层状陶瓷海绵。

Highly compressible and anisotropic lamellar ceramic sponges with superior thermal insulation and acoustic absorption performances.

作者信息

Jia Chao, Li Lei, Liu Ying, Fang Ben, Ding He, Song Jianan, Liu Yibo, Xiang Kejia, Lin Sen, Li Ziwei, Si Wenjie, Li Bo, Sheng Xing, Wang Dongze, Wei Xiaoding, Wu Hui

机构信息

State Key Laboratory of New Ceramics and Fine Processing, School of Materials Science and Engineering, Tsinghua University, Beijing, 100084, China.

State Key Laboratory for Turbulence and Complex System, Department of Mechanics and Engineering Science, College of Engineering, Peking University, Beijing, 100871, China.

出版信息

Nat Commun. 2020 Jul 24;11(1):3732. doi: 10.1038/s41467-020-17533-6.

Abstract

Advanced ceramic sponge materials with temperature-invariant high compressibility are urgently needed as thermal insulators, energy absorbers, catalyst carriers, and high temperature air filters. However, the application of ceramic sponge materials is severely limited due to their complex preparation process. Here, we present a facile method for large-scale fabrication of highly compressible, temperature resistant SiO-AlO composite ceramic sponges by blow spinning and subsequent calcination. We successfully produce anisotropic lamellar ceramic sponges with numerous stacked microfiber layers and density as low as 10 mg cm. The anisotropic lamellar ceramic sponges exhibit high compression fatigue resistance, strain-independent zero Poisson's ratio, robust fire resistance, temperature-invariant compression resilience from -196 to 1000 °C, and excellent thermal insulation with a thermal conductivity as low as 0.034 W m K. In addition, the lamellar structure also endows the ceramic sponges with excellent sound absorption properties, representing a promising alternative to existing thermal insulation and acoustic absorption materials.

摘要

作为热绝缘体、能量吸收器、催化剂载体和高温空气过滤器,迫切需要具有温度不变的高压缩性的先进陶瓷海绵材料。然而,由于陶瓷海绵材料复杂的制备工艺,其应用受到严重限制。在此,我们提出一种通过吹纺和后续煅烧大规模制备高压缩性、耐高温的SiO-AlO复合陶瓷海绵的简便方法。我们成功制备出具有大量堆叠微纤维层且密度低至10 mg cm的各向异性层状陶瓷海绵。这种各向异性层状陶瓷海绵表现出高压缩疲劳抗性、与应变无关的零泊松比、强大的耐火性、在-196至1000°C范围内温度不变的压缩回弹性,以及低至0.034 W m K的热导率的优异隔热性能。此外,层状结构还赋予陶瓷海绵优异的吸声性能,是现有隔热和吸声材料的有前途的替代品。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/06b4/7382455/265399762c9f/41467_2020_17533_Fig1_HTML.jpg

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