材料科学
纳米纤维
陶瓷
复合材料
热膨胀
脆性
热导率
抗压强度
氧化钇稳定氧化锆
保温
纺纱
静电纺丝
多孔性
海绵
热的
晶界
纳米材料
弹性(物理)
纳米尺度
极限抗拉强度
热阻
作者
Lei Wen,Yingchun Zhou,Yushun Zhao,Zifu Zang,Chenxi Zhao,Junjiao Li,Shaodong Sun,Renjie Ding,Chao Wang,Xiaodong He,Chao Sui
出处
期刊:Small
[Wiley]
日期:2025-10-30
卷期号:22 (4): e09204-e09204
被引量:3
标识
DOI:10.1002/smll.202509204
摘要
Abstract Advanced ceramic sponge materials that combine sufficient elasticity with splendid high‐temperature resistance are urgently needed as thermal insulators in harsh environments. However, the development of ceramics in ultralight and elastic material systems is severely constrained by their brittleness and defect sensitivity. Here, this study reports an elasto‐flexible, heat‐resisting, and lamellar‐structured ceramic sponge based on yttria‐stabilized ZrO 2 (YSZ) nanofibers through a scalable solution blow spinning process. The YSZ nanofibers exhibit small grain sizes (≈50 nm at 1300 °C), providing crucial support for the mechanical and thermal properties. The porous 3D sponges formed by in situ deposition of YSZ nanofibers possess ultralight density (≥ 5 mg cm −3 ), 80% reversible compressive strains, high fatigue resistance (less than 1.59% permanent degradation after 1000 cycles at 50% strain), and can fully recover from large deformations with near‐zero Poisson's ratios. In addition, the YSZ nanofiber sponges exhibit temperature‐invariant superelasticity range from −196 to 1300 °C, exceptional bendability, low thermal expansion coefficient (9.26 × 10 −6 °C −1 at 1300 °C), and excellent thermal insulation with a thermal conductivity as low as 0.028 W m −1 K −1 . Such rarely integrated properties sharply contrast with those of polymer/carbon materials and traditional ceramic aerogels, making ceramic sponges ideal for many high‐end applications.
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