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通过3D纳米纤维网络界面设计同时增强和增韧全天然结构材料

Simultaneously Strengthening and Toughening All-Natural Structural Materials via 3D Nanofiber Network Interfacial Design.

作者信息

Yang Huai-Bin, Zhao Xiang, Wang Quan, Ruan Yu-Hong, Liu Zhao-Xiang, Yue Xin, Zhu Yin Bo, Wu Heng An, Guan Qing-Fang, Yu Shu-Hong

机构信息

Department of Chemistry, New Cornerstone Science Laboratory, Institute of Biomimetic Materials & Chemistry, Anhui Engineering Laboratory of Biomimetic Materials, Division of Nanomaterials & Chemistry, Hefei National Research Center for, Physical Sciences at the Microscale.

University of Science and Technology of China, Hefei, 230026, China.

出版信息

Angew Chem Int Ed Engl. 2024 Nov 25;63(48):e202408458. doi: 10.1002/anie.202408458. Epub 2024 Jul 31.

Abstract

Constructing structural materials from sustainable raw materials is considered an efficient way to reduce the potential threat posed by plastics. Nevertheless, challenges remain regarding combining excellent mechanical and thermal properties, especially the balance of strength and toughness. Here, we report a 3D nanofiber network interfacial design strategy to strengthen and toughen all-natural structural materials simultaneously. The introduced protonated chitosan at the interface between the surface oxidized 3D nanonetwork of bacterial cellulose forms the interfacial interlocking structure of nanonetworks, achieving a robust physical connection and providing enough physical contact sites for chemical crosslinking. The obtained sustainable structural material successfully integrates excellent mechanical and thermal properties on the nanoscale of cellulose nanofibers, such as light weight, high strength, and superior thermal expansion coefficient. The relationship between structural design and comprehensive mechanical property improvement is analyzed in detail, providing a universal perspective to design sustainable high-performance structural materials from nanoscale building blocks.

摘要

用可持续原材料构建结构材料被认为是减少塑料带来潜在威胁的有效途径。然而,在结合优异的机械性能和热性能方面,尤其是强度和韧性的平衡方面,仍然存在挑战。在此,我们报告一种3D纳米纤维网络界面设计策略,以同时增强和增韧全天然结构材料。在细菌纤维素的表面氧化3D纳米网络界面处引入的质子化壳聚糖形成了纳米网络的界面互锁结构,实现了牢固的物理连接,并为化学交联提供了足够的物理接触位点。所获得的可持续结构材料成功地在纤维素纳米纤维的纳米尺度上整合了优异的机械性能和热性能,如重量轻、强度高和优异的热膨胀系数。详细分析了结构设计与综合机械性能提升之间的关系,为从纳米级构建块设计可持续高性能结构材料提供了一个通用视角。

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