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具有纳米纤维-颗粒二元协同结构的全陶瓷和弹性气凝胶用于高效热绝缘

All-Ceramic and Elastic Aerogels with Nanofibrous-Granular Binary Synergistic Structure for Thermal Superinsulation.

作者信息

Zhang Xinxin, Cheng Xiaota, Si Yang, Yu Jianyong, Ding Bin

机构信息

Innovation Center for Textile Science and Technology, College of Textiles, Donghua University, Shanghai 200051, China.

出版信息

ACS Nano. 2022 Apr 26;16(4):5487-5495. doi: 10.1021/acsnano.1c09668. Epub 2022 Mar 15.

Abstract

High-performance thermally insulating ceramic materials with robust mechanical properties, high-temperature resistance, and excellent thermal insulation characteristics are highly desirable for thermal management systems under extreme conditions. However, the large-scale application of traditional ceramic granular aerogels is still limited by their brittleness and stiff nature, while ceramic fibrous aerogels often display high thermal conductivity. To meet the above requirements, in this study, ceramic nanofibrous-granular composite aerogels with lamellar multiarch cellular structure and leaf-like fibrous-granular binary networks are designed and fabricated. The resulting composite aerogels possess ultralow weight, superelasticity with recoverable compression strain up to 80%, and large mechanical strength. Furthermore, excellent fatigue resistance with 1.2% plastic deformation after 1000 cyclic compressions, temperature-invariant dynamic mechanical stability from -100 to 500 °C, and an operational temperature range from -196 to 1100 °C are successfully achieved in the proposed composites. The nanosized silica granular aerogels are assembled into a leaf-like shape and wrapped around the fibrous cell walls, endowing low thermal conductivity (0.024 W m K) as well as favorable high-temperature thermal superinsulation properties. Benefiting from the favorable compatibility, the present strategy for nanofiber-granular composite ceramic aerogels provides a dominant route to produce thermally insulated and mechanically robust composite cellular materials for use in harsh environments.

摘要

具有强大机械性能、耐高温性和优异隔热特性的高性能隔热陶瓷材料对于极端条件下的热管理系统非常理想。然而,传统陶瓷颗粒气凝胶的大规模应用仍受其脆性和刚性本质的限制,而陶瓷纤维气凝胶通常显示出高导热率。为满足上述要求,本研究设计并制备了具有层状多拱蜂窝结构和叶状纤维-颗粒二元网络的陶瓷纳米纤维-颗粒复合气凝胶。所得复合气凝胶具有超轻重量、高达80%的可恢复压缩应变的超弹性以及大机械强度。此外,在所提出的复合材料中成功实现了1000次循环压缩后1.2%塑性变形的优异抗疲劳性、-100至500°C的温度不变动态机械稳定性以及-196至1100°C的工作温度范围。纳米尺寸的二氧化硅颗粒气凝胶组装成叶状并包裹在纤维细胞壁周围,赋予其低导热率(0.024 W m K)以及良好的高温热超绝缘性能。得益于良好的相容性,目前制备纳米纤维-颗粒复合陶瓷气凝胶的策略为生产用于恶劣环境的隔热且机械坚固的复合蜂窝材料提供了一条主要途径。

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