材料科学
纳米复合材料
聚合物
联锁
聚合物纳米复合材料
制作
复合材料
纳米颗粒
纳米技术
图层(电子)
机械强度
分层(地质)
轮烷
纳米-
纳米尺度
延伸率
接口(物质)
抗弯强度
超分子化学
网络结构
超分子聚合物
作者
Wei You,Tinghao Yun,J S Liu,Xinjie Yang,Lei Wu,Wei Chen,Liang Wu,Yi Ding,Zhaoming Zhang,Xuzhou Yan,Wei Yu
标识
DOI:10.1038/s41467-026-72632-0
摘要
PNC), has shown remarkable performance enhancements of 25.3-fold in strength and 431.3-fold in toughness. This exceptional mechanical enhancement is due to a highly crosslinked, rigid yet dynamically mobile interfacial architecture, that extends beyond conventional rotaxane sliding or hidden chain release mechanisms. On the one hand, mechanically interlocked [2]rotaxane-grafted nanoparticles act as high-density macro-crosslinks, effectively suppressing crack propagation with superior efficacy in releasing network tension near the crack front by rotaxane sliding dissipation. On the other hand, rotaxane-sliding-facilitated nanoparticle redistribution drives adaptive network reconfiguration, weakening the network disruption under large deformation. The incorporation of mechanical interlocking interfaces into polymer nanocomposites can unlock simultaneous high strength, toughness, and elongation at break. This strategy, which simultaneously leverages the dynamic supramolecular mobility and the reinforcement effect of rigid nanoparticles, establishes a versatile platform for designing ultra-tough, high-strength nanocomposites.
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