| Literature DB >> 30765563 |
Xiang Xu1,2, Qiangqiang Zhang3, Menglong Hao4,5, Yuan Hu6, Zhaoyang Lin1, Lele Peng1, Tao Wang1, Xuexin Ren4, Chen Wang7, Zipeng Zhao7, Chengzhang Wan1, Huilong Fei1, Lei Wang8, Jian Zhu8, Hongtao Sun1,9, Wenli Chen2, Tao Du2, Biwei Deng10, Gary J Cheng10, Imran Shakir11, Chris Dames4,12, Timothy S Fisher6, Xiang Zhang4, Hui Li13, Yu Huang14, Xiangfeng Duan15.
Abstract
Ceramic aerogels are attractive for thermal insulation but plagued by poor mechanical stability and degradation under thermal shock. In this study, we designed and synthesized hyperbolic architectured ceramic aerogels with nanolayered double-pane walls with a negative Poisson's ratio (-0.25) and a negative linear thermal expansion coefficient (-1.8 × 10-6 per °C). Our aerogels display robust mechanical and thermal stability and feature ultralow densities down to ~0.1 milligram per cubic centimeter, superelasticity up to 95%, and near-zero strength loss after sharp thermal shocks (275°C per second) or intense thermal stress at 1400°C, as well as ultralow thermal conductivity in vacuum [~2.4 milliwatts per meter-kelvin (mW/m·K)] and in air (~20 mW/m·K). This robust material system is ideal for thermal superinsulation under extreme conditions, such as those encountered by spacecraft.Year: 2019 PMID: 30765563 DOI: 10.1126/science.aav7304
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728