Ren Bo, Liu Jingjing, Rong Yedong, Wang Lu, Lu Yuju, Xi Xiaoqing, Yang Jinlong
State Key Laboratory of New Ceramics and Fine Processing, School of Materials Science and Engineering , Tsinghua University , Beijing 100084 , People's Republic of China.
ACS Nano. 2019 Oct 22;13(10):11603-11612. doi: 10.1021/acsnano.9b05406. Epub 2019 Sep 17.
Nanofibrous aerogels constructed solely by ceramic components with temperature-invariant hyperelasticity could have broad technological implications in extreme environments. However, creating such materials has proven to be extremely challenging. Despite the results from laboratory, those aerogels are, unfortunately, still plagued with issues that would retard their further application: inferior structural integrity, failure at large compressive deformation, high production cost, and inability to withstand rigorous working conditions. To tackle these challenges, we report a facile strategy combining the chemical vapor deposition process and layer-by-layer self-assembly to construct hyperelastic SiC nanofibrous aerogels with three-dimensional porous architecture and improved structural integrity. The resultant aerogels outperform their natural counterparts and most state-of-the-art ceramic nanofibrous aerogels in their capability to quickly recover from large compressive deformation (50% strain), function in a wide range of temperatures, from -196 °C to 1100 °C in air, maintain high particle matter removal efficiency of >99.96%, and rapidly absorb various organic solvents and oils with high capacity and robust recoverability. Nanofibrous aerogels constructed by such a versatile method could provide fresh insights into the exploration of multifunctional nanofibrous aerogels for a variety of applications in extreme environments.
仅由具有温度不变超弹性的陶瓷组件构建的纳米纤维气凝胶在极端环境中可能具有广泛的技术应用前景。然而,事实证明制造这种材料极具挑战性。尽管实验室取得了一些成果,但不幸的是,这些气凝胶仍然存在一些问题,这些问题会阻碍它们的进一步应用:结构完整性较差、在大压缩变形下失效、生产成本高以及无法承受严苛的工作条件。为应对这些挑战,我们报告了一种简便的策略,即将化学气相沉积工艺与逐层自组装相结合,以构建具有三维多孔结构和改进结构完整性的超弹性碳化硅纳米纤维气凝胶。所得气凝胶在从大压缩变形(50%应变)中快速恢复的能力、在-196°C至1100°C的空气中的宽温度范围内发挥作用、保持>99.96%的高颗粒物去除效率以及以高容量和强大的可恢复性快速吸收各种有机溶剂和油类方面优于天然气凝胶和大多数最先进的陶瓷纳米纤维气凝胶。通过这种通用方法构建的纳米纤维气凝胶可为探索用于极端环境中各种应用的多功能纳米纤维气凝胶提供新的见解。