Yang Yushan, Dang Baokang, Wang Chao, Chen Yipeng, Chen Kaicong, Chen Xinjie, Li Yingying, Sun Qingfeng
College of Chemistry and Materials Engineering, Zhejiang A&F University, Hangzhou 311300, PR China.
College of Chemistry and Materials Engineering, Zhejiang A&F University, Hangzhou 311300, PR China; Guangxi Fenglin Wood Industry Group Co., Ltd., Nanning 530000, PR China.
Carbohydr Polym. 2024 Jan 1;323:121392. doi: 10.1016/j.carbpol.2023.121392. Epub 2023 Sep 14.
Ultra-lightweight porous aerogels based on nanocellulose (NC) have promising applications in various fields such as building insulation, sewage treatment, energy storage, and aerospace. One of the key advantages of these aerogels is their exceptionally low thermal conductivity. Nevertheless, the thermal insulation of NC aerogel (NCA) can deteriorate with changes in temperature and humidity conditions, making it crucial to develop a bulk aerogel that can maintain exceptional thermal insulating properties in harsh environmental conditions. A sustainable and user-friendly approach to synthesizing cellulose/poly(vinyl alcohol) aerogel (CellPA) materials has been developed, which are lightweight, possess good insulating properties, and demonstrate robust superhydrophobicity even in harsh environmental conditions. The CellPA are both exceptionally lightweight and robust, boasting outstanding resistance to combustion while also displaying a thermal conductivity of 36.1 mW m K, suggesting they hold great promise for insulation applications. Furthermore, CellPA also exhibits robust superhydrophobicity even under harsh conditions, confirming the homogenous superhydrophobic modification of the biodegradable PVA through chemical methods. The manufacturing of bio-based composite materials with enhanced mechanical and thermal insulation features has gained immense popularity in a broad spectrum of contemporary engineering applications. These composite materials are particularly valuable as a robust, energy-efficient, lightweight, waterproof and flameproof for construction materials.
基于纳米纤维素(NC)的超轻多孔气凝胶在建筑隔热、污水处理、储能和航空航天等各个领域都有广阔的应用前景。这些气凝胶的关键优势之一是其极低的热导率。然而,NC气凝胶(NCA)的隔热性能会随温度和湿度条件的变化而恶化,因此开发一种能在恶劣环境条件下保持优异隔热性能的块状气凝胶至关重要。已开发出一种可持续且用户友好的合成纤维素/聚乙烯醇气凝胶(CellPA)材料的方法,该材料重量轻,具有良好的隔热性能,即使在恶劣环境条件下也表现出强大的超疏水性。CellPA既异常轻便又坚固,具有出色的阻燃性,同时热导率为36.1 mW m K,这表明它们在隔热应用方面具有巨大潜力。此外,CellPA即使在恶劣条件下也表现出强大的超疏水性,证实了通过化学方法对可生物降解的PVA进行了均匀的超疏水改性。具有增强机械和隔热特性的生物基复合材料的制造在广泛的当代工程应用中广受欢迎。这些复合材料作为坚固、节能、轻质、防水和防火的建筑材料尤为有价值。