材料科学
石墨烯
复合材料
热导率
热稳定性
导电体
分子动力学
聚合物
界面热阻
相间
热的
环氧树脂
纳米复合材料
分子工程
胶粘剂
热传导
碳纳米管
抗剪强度(土壤)
剪切(地质)
复合数
纳米尺度
石墨烯纳米带
弹性体
共价键
散热膏
作者
Xiangyang Feng,Weiwei Lou,Guandong Wu,Xin Ming,Bo Wang,Jiahao Lu,Lei He,Pengxiang Zhou,Lu Chen,Yingbo Yan,Chendong Ge,Shiqi Wu,Xueyin Chen,Peng Xu,Fei Xing,Ji Zhou,Zhen Xu,Zhanqin Yu,Wenfei Shen,Jianguo Tang
标识
DOI:10.1002/adfm.202522804
摘要
ABSTRACT Highly thermally conductive graphene fibers (GFs) hold exceptional promise for next‐generation high‐flux thermal management systems, yet their integration into advanced composites remains fundamentally limited by insufficient interfacial compatibility with polymer resin. This limitation severely restricts both thermal and mechanical transfer efficiency and compromises stability under extreme thermal cycling. Herein, a molecularly tailored conjugation interfaces engineering through strategically selected silane‐based molecular tethers grafted onto the wrinkled GF surfaces to establish covalent bridges into the epoxy network, effectively addressing the interfacial bonding dilemma between GFs and polymer resin is introduced. The resultant GF composites achieve a synergistic enhancement in interfacial shear strength increased by 61.6% (from 55.2 to 89.2 MPa) and a record‐level in‐plane thermal conductivity of 571.1 W m −1 K −1 . Critically, the thermal conductivity retention consistently exceeds 98% throughout 100 thermal shock cycles (25 to 125°C), confirming exceptional interfacial stability and thermal fatigue resistance. Furthermore, molecular dynamics (MD) simulations reveal that rigid benzene ring of molecular tethers interphase enables exceptional interfacial thermal conductance of 373.56 MW m −2 K −1 between graphene and epoxy, while flexible or mismatched molecular tethers agents induce disorder and weaken spectral coupling. This molecular conjugation interface engineering unlocks the interfacial design and chemistry for improving thermomechanical performances of GF composites, paving the way for robust and high‐flux thermal management.
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