High-Temperature Resistant Polyimide Aerogels With Extreme Condition Tolerance Constructed by In Situ Skeleton Encapsulation Growth

IF 19 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY Advanced Functional Materials Pub Date : 2025-02-25 DOI:10.1002/adfm.202500881
Chun Liu, Mingkang Wang, Xin Zhao, Changpeng Yang, Ran Wei, Wentao Zeng, Feng Ding, Sizhao Zhang, Yongjun Lei
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Abstract

Polyimide aerogel (PIA) can enable to withstand the extreme conditions in a great measure due to their exceptional thermal stability and excellent mechanical toughness properties derived from the rigid-ring structures, which are rather promising alternatives in terms of high-performance thermal protection materials for aerospace field. However, PIA usually suffers from poor dimensional stability at high-temperature atmosphere, accordingly leading into the degradation of macroscopic features, eventually restricting their extreme-ambient applications. Here, an in situ skeleton encapsulation growth strategy is proposed to modulate aerogel networking skeleton construction pattern, namely forming the binary organic–inorganic nature skeletons originated from PIA nanoscale structures encapsulated with polymethylsilsesquioxane. The resulting aerogel demonstrates superior dimensional stability (linear shrinkage down to 1.11% even experiencing at 300 °C for 3000 s) despite facing high-temperature heat flux shock, suggesting an excellent high-temperature resistant ability depending upon encapsulated Si-O-phase-layer networking skeletons formation and intrinsic strong chemical bonds of polyimide chains. Further, the aerogels own the exceptional extreme-condition tolerance when subjected to thermal shock cycling (−196 °C—300 °C), and fantastic flame retardancy at 1200 °C. This approach to developing PIA broadens the applicability of high-performance PIA and holds significant potential for aerospace thermal protection, particularly in extreme conditions.

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原位骨架包封生长构建耐极端条件的耐高温聚酰亚胺气凝胶
聚酰亚胺气凝胶(PIA)由于其优异的热稳定性和源于刚性环结构的优异机械韧性,可以在很大程度上承受极端条件,是航空航天领域高性能热防护材料的相当有前途的替代品。然而,PIA在高温气氛下的尺寸稳定性较差,导致宏观特性的退化,最终限制了其在极端环境下的应用。本文提出了一种原位骨架包封生长策略来调节气凝胶网络骨架构建模式,即由聚甲基硅氧烷包封的PIA纳米级结构形成二元有机-无机性质的骨架。结果表明,尽管面临高温热流冲击,气凝胶仍具有优异的尺寸稳定性(即使在300°C下持续3000 s,线性收缩率也降至1.11%),这表明其优异的耐高温能力取决于封装的si - o相层网络骨架的形成和聚酰亚胺链固有的强化学键。此外,气凝胶在经受热冲击循环(- 196°C - 300°C)时具有特殊的极端条件耐受性,并且在1200°C时具有出色的阻燃性。这种开发PIA的方法拓宽了高性能PIA的适用性,并在航空航天热防护方面具有重大潜力,特别是在极端条件下。
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来源期刊
Advanced Functional Materials
Advanced Functional Materials 工程技术-材料科学:综合
CiteScore
29.50
自引率
4.20%
发文量
2086
审稿时长
2.1 months
期刊介绍: Firmly established as a top-tier materials science journal, Advanced Functional Materials reports breakthrough research in all aspects of materials science, including nanotechnology, chemistry, physics, and biology every week. Advanced Functional Materials is known for its rapid and fair peer review, quality content, and high impact, making it the first choice of the international materials science community.
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