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纤维素纳米纤维制成的空气屏障可实现通过烘干制备闭孔泡沫。

Cellulose nanofiber-created air barrier enabling closed-cell foams prepared via oven-drying.

作者信息

Wang Li, Tian Yichen, Chang Yuqing, Chen Lei, Zhang Qiang

机构信息

Shanghai Key Laboratory of Regulatory Biology, School of Life Sciences, East China Normal University, Shanghai 200241, PR China; Department of Biomedical Engineering, Guangdong Provincial Key Laboratory of Advanced Biomaterials, Institute of Innovative Materials, Southern University of Science and Technology, Shenzhen 518055, PR China.

Shanghai Key Laboratory of Regulatory Biology, School of Life Sciences, East China Normal University, Shanghai 200241, PR China.

出版信息

Carbohydr Polym. 2025 Mar 1;351:123096. doi: 10.1016/j.carbpol.2024.123096. Epub 2024 Dec 2.

Abstract

Cellulose foams are renewable and biodegradable materials that are promising substitutes for plastic foams. However, the scale-up fabrication of cellulose foams is severely hindered by technological complexity and cost- and time-consuming drying processes. Here, we developed a facile and robust method to fabricate cellulose foams via oven-drying following surfactant-assisted mechanical foaming of cellulose nanofibers (CNFs). CNFs in the air-water interface reduced the surface tension to stabilize bubbles in the wet foams, and generated densely arranged crystal barriers to seal air in the bubbles while oven-drying to prevent bubbles from collapsing. The optimal CNF foam has an ultra-low density of 12.10 mg/cm, an ultra-high porosity of 99.14 %, and a low thermal conductivity of 34.87 mW/m/K, allowing it to act as an excellent thermal insulation material. Moreover, CNF foams can be easily integrated with diverse advanced properties such as flame retardancy, ultra-high mechanical strength, hydrophobicity, and magnetic responsiveness by incorporating functional components. The study paves the way for CNF foams to move toward practical applications.

摘要

纤维素泡沫是可再生且可生物降解的材料,有望成为塑料泡沫的替代品。然而,纤维素泡沫的规模化制造受到技术复杂性以及耗时且成本高昂的干燥过程的严重阻碍。在此,我们开发了一种简便且稳健的方法,通过在纤维素纳米纤维(CNFs)的表面活性剂辅助机械发泡后进行烘箱干燥来制造纤维素泡沫。空气 - 水界面中的CNFs降低了表面张力,以稳定湿泡沫中的气泡,并在烘箱干燥时生成密集排列的晶体屏障以密封气泡中的空气,防止气泡坍塌。最优的CNF泡沫具有12.10毫克/立方厘米的超低密度、99.14%的超高孔隙率以及34.87毫瓦/米/开尔文的低导热率,使其能够作为一种优异的隔热材料。此外,通过加入功能组分,CNF泡沫能够轻松地集成多种先进特性,如阻燃性、超高机械强度、疏水性和磁响应性。该研究为CNF泡沫迈向实际应用铺平了道路。

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