材料科学
纤维素
复合材料
成形性
复合数
水分
涂层
过程(计算)
木质素
聚合物
原材料
造型(装饰)
纤维
可塑性
领域(数学分析)
耐久性
挤压
热液循环
工艺工程
成形工艺
韧性
纳米纤维
纤维素纤维
胶粘剂
纳米技术
图层(电子)
沥青
沉积(地质)
弹性体
基质(化学分析)
热塑性塑料
作者
Rui Yang,Linghui Qi,Xiaoli Wu,Zhipeng Liu,Huiyang Bian,Changlei Xia,Changtong Mei,Shuaicheng Jiang,Min Yao,Jianzhang Li
标识
DOI:10.1007/s40820-026-02121-y
摘要
The production of advanced 3D engineering materials relies on energy-intensive moldable materials such as metals and plastics, making it difficult to cope with the increasingly severe global energy crisis. Wood, as a sustainable material, can be molded through hydrothermal treatment, but the limited plasticity hinders its ability to manufacture precision devices. Herein, the process of hydrogen-bond domain reorganization is used in the manufacture of highly moldable wood to enhance the plasticity of wood and ensure the stability of the cellulose structure. The native hydrogen-bond network in the wood cell wall is disrupted and liberated the cellulose fibril matrix through delignification. Subsequent epoxidized soybean oil acrylate (AESO) plasticization enables significantly enhanced plasticity. Hydrogen-bond domains between fibers are reconstructed through moisture variation. Meanwhile, AESO forms a protective layer on the surface of the fibers, preventing excessive moisture from entering and causing the collapse of the fiber framework. This process allows the material to be shaped into complex 3D geometries, including origami cranes or honeycombs, through low-energy hydrothermal processing. This strategy addresses both dimensional stability challenges and environmental instability associated with wood composite materials and offers an eco-friendly alternative to functionalized structures in aviation and transportation.
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