An All-Ceramic, Anisotropic, and Flexible Aerogel Insulation Material

To exploit the high-temperature superinsulation potential of anisotropic thermal management materials, the incorporation of ceramic aerogel into the aligned structural networks is indispensable. However, the long-standing obstacle to exploring ultralight superinsulation ceramic aerogels is the inacc...

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Veröffentlicht in:Nano letters 2020-05, Vol.20 (5), p.3828-3835
Hauptverfasser: An, Lu, Wang, Jieyu, Petit, Donald, Armstrong, Jason N, Hanson, Karen, Hamilton, Jason, Souza, Mauricio, Zhao, Donghui, Li, Changning, Liu, Yuzi, Huang, Yulong, Hu, Yong, Li, Zheng, Shao, Zefan, Desjarlais, André Omer, Ren, Shenqiang
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Sprache:eng
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Zusammenfassung:To exploit the high-temperature superinsulation potential of anisotropic thermal management materials, the incorporation of ceramic aerogel into the aligned structural networks is indispensable. However, the long-standing obstacle to exploring ultralight superinsulation ceramic aerogels is the inaccessibility of its mechanical elasticity, stability, and anisotropic thermal insulation. In this study, we report a recoverable, flexible ceramic fiber-aerogel composite with anisotropic lamellar structure, where the interfacial cross-linking between ceramic fiber and aerogel is important in its superinsulation performance. The resulting ultralight aerogel composite exhibits a density of 0.05 g/cm3, large strain recovery (over 50%), and low thermal conductivity (0.0224 W m–1 K–1), while its hydrophobicity is achieved by in situ trichlorosilane coating with the water contact angle of 135°. The hygroscopic tests of such aerogel composites demonstrate a reversible thermal insulation. The mechanical elasticity and stability of the anisotropic composites, with its soundproof performance, shed light on the low-cost superelastic aerogel manufacturing with scalability for energy saving building applications.
ISSN:1530-6984
1530-6992
DOI:10.1021/acs.nanolett.0c00917