材料科学
刚度
超分子化学
模数
聚合物
拓扑(电路)
缩放比例
指数
工作(物理)
软质材料
弹性模量
路径(计算)
聚合物网络
纳米技术
延伸率
超分子聚合物
复合材料
杨氏模量
标度律
智能材料
动态力学分析
作者
Bohang Wu,Junting Huang,Chengyu Zeng,Mingxin Zhong,Qin Ding,Du Wang,Jingzhou Wang,Zixiang Zhou,Tong Wu,X Wang,Hui Li,Dan Xing,Jianhao Lin,Yiheng Wu,Yuwei Gu,Shixian Lv,Yuchong Yang,Jie Yang,Guanglu Wu,Jasper van der Gucht
摘要
Polymer networks possess numerous elastically defective and isolated loops, which do not contribute to mechanical stiffness. In this report, we introduce a strategy of supramolecular topological linking to access stiffer-yet-ductile polymeric materials through incorporation of supramolecular tetravalent crosslinkers. Dynamic dissociation/re-association between these high-functionality crosslinks enables the formation of topologically-linked loops that serve as elastic springs to stiffen the networks. An exceptional scaling exponent of 2.05 for Young's modulus versus crosslinker concentration is obtained, exceeding most reported randomly-crosslinked polymeric systems. Compared to conventional analogs, the mechanical properties of the resultant materials are enhanced: Young's modulus (2-fold), elongation at break (8-fold), and work of fracture (100-fold). Uplifting modulus scalings through supramolecular topological linking paves a new path to the design of stiffness-reinforced soft materials, holding substantial promise in load-bearing application scenarios such as tissue implants, bioelectronic interfaces, and soft robotics.
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