芳纶
纳米纤维
材料科学
气凝胶
支化(高分子化学)
互连性
纳米尺度
纳米复合材料
纳米技术
多孔性
自愈水凝胶
复合材料
化学工程
高分子化学
纤维
计算机科学
工程类
人工智能
作者
Jian Zhu,Y. Ming,Ahmet Emre,Joong Hwan Bahng,Lizhi Xu,Jihyeon Yeom,Bongjun Yeom,Yoonseob Kim,Kyle J. Johnson,Peter F. Green,Nicholas A. Kotov
标识
DOI:10.1002/ange.201703766
摘要
Abstract Interconnectivity of components in three‐dimensional networks (3DNs) is essential for stress transfer in hydrogels, aerogels, and composites. Entanglement of nanoscale components in the network relies on weak short‐range intermolecular interactions. The intrinsic stiffness and rod‐like geometry of nanoscale components limit the cohesive energy of the physical crosslinks in 3DN materials. Nature realizes networked gels differently using components with extensive branching. Branched aramid nanofibers (BANFs) mimicking polymeric components of biological gels were synthesized to produce 3DNs with high efficiency stress transfer. Individual BANFs are flexible, with the number of branches controlled by base strength in the hydrolysis process. The extensive connectivity of the BANFs allows them to form hydro‐ and aerogel monoliths with an order of magnitude less solid content than rod‐like nanocomponents. Branching of nanofibers also leads to improved mechanics of gels and nanocomposites.
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