Dang Shixuan, Guo Jingran, Deng Yuanpeng, Yu Hongxuan, Zhao Han, Wang Duola, Zhao Yingde, Song Chuanyun, Chen Jiali, Ma Minglei, Chen Wenshuai, Xu Xiang
Key Lab of Smart Prevention and Mitigation of Civil Engineering Disasters of the Ministry of Industry and Information Technology and Key Lab of Structures Dynamic Behavior and Control of the Ministry of Education, Harbin Institute of Technology, Harbin, 150090, P. R. China.
China Construction Eighth Engineering Division Co. Ltd, Shanghai, 200112, P. R. China.
Adv Mater. 2025 Jan;37(4):e2415159. doi: 10.1002/adma.202415159. Epub 2024 Dec 1.
Ceramic aerogels have exhibited many superior characteristics with promising applications. As an attractive material system for thermal insulation under extreme conditions, ceramic aerogels are required to withstand complex thermomechanical stress to retain their super-insulating properties but, they often suffer from severe fracture damage that can lead to catastrophic failure. Herein, inspired by the tendrils of Parthenocissus, we report a design and synthesis of ultra-stretchable ceramic aerogels constructed by highly buckled nanofibers. The buckling of nanofibers is formed by asymmetric deformation through two-component off-axial electrospinning method. The resulting aerogels feature an ultra-large stretchability with a tensile strain of up to 150% and high restorability with a tensile strain of up to 80%. They also display a near-zero Poisson's ratio (4.3 × 10) and a near-zero thermal expansion coefficient (2.6 × 10 per °C), resulting in excellent thermomechanical stability. Benefiting from this ultra-stretchability, the aerogels exhibit a unique tensile-insensitive thermal insulation performance with thermal conductivities remaining only ≈106.7 mW m K at 1000 °C. This work promotes the development of ceramic aerogels for robust thermal insulation under extreme conditions and establishes a set of fundamental considerations in structural design of stretchable aerogels for a wide spectrum of applications.
陶瓷气凝胶已展现出许多优异特性,具有广阔的应用前景。作为一种在极端条件下极具吸引力的隔热材料体系,陶瓷气凝胶需要承受复杂的热机械应力以保持其超级隔热性能,然而,它们常常遭受严重的断裂损伤,这可能导致灾难性失效。在此,受爬山虎卷须的启发,我们报道了一种由高度屈曲的纳米纤维构建的超可拉伸陶瓷气凝胶的设计与合成。纳米纤维的屈曲是通过双组分离轴静电纺丝法的不对称变形形成的。所得气凝胶具有超大的拉伸性,拉伸应变高达150%,以及高达80%拉伸应变的高恢复性。它们还表现出接近零的泊松比(4.3×10)和接近零的热膨胀系数(每摄氏度2.6×10),从而具有出色的热机械稳定性。得益于这种超拉伸性,气凝胶在1000°C时展现出独特的拉伸不敏感隔热性能,热导率仅约为106.7 mW m K。这项工作推动了用于极端条件下稳健隔热的陶瓷气凝胶的发展,并为广泛应用的可拉伸气凝胶结构设计建立了一系列基本考量。