材料科学
复合数
航空航天
复合材料
消散
电子设备和系统的热管理
纳米复合材料
稳健性(进化)
热导率
热的
联轴节(管道)
可扩展性
剪切(地质)
材料设计
多尺度建模
工作(物理)
纳米尺度
纳米技术
电阻率和电导率
机械能
剪应力
热稳定性
纳米
科技与社会
数码产品
损伤容限
高能
先进复合材料
聚合物
热膨胀
原位
压力(语言学)
机械工程
微尺度化学
作者
Jingyu Kang,Xiaokang Ma,Xiaoyu Hao,Wei Fan,Zhaozhu Zhang,Chuang Zhu,Shixiong Li,Xuqing Liu
标识
DOI:10.1002/adfm.202530354
摘要
ABSTRACT Managing energy dissipation and multifunctional coupling in structural materials remains a central challenge for advanced aerospace and intelligent systems. Here, we present a design strategy that transforms a traditional aramid/polytetrafluoroethylene (AF/PTFE) composite into a multifunctional platform integrating thermal management, electrical conductivity, and mechanical reinforcement. Through in situ growth and reduction of a silver–organic framework on tannic‐acid‐activated fibers, a continuous silver–amorphous‐carbon (Ag‐C) network is constructed, forming hierarchical interphases that couple phonon‐electron transport with interfacial stress dissipation. The resulting composite exhibits an ≈82% increase in through‐thickness thermal conductivity, a ≈28% enhancement in interlaminar shear strength, and an electrical conductivity of 1.86 S cm− 1 , while maintaining stable performance under high thermal‐mechanical loads. The Ag‐C hybrid framework acts as a heat‐transfer highway and mechanical–electrical bridge, demonstrating how multiscale interfacial design can synchronize mechanical robustness with thermal–electrical regulation. This work advances beyond lubrication‐centered composites by establishing a universal strategy for constructing multifunctional, energy‐coupled materials. The concept provides a scalable route toward next‐generation functional composites capable of adaptive performance in extreme environments.
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