材料科学
复合材料
韧性
分层(地质)
热导率
流体学
极限抗拉强度
耐久性
导电体
微观结构
热稳定性
联锁
机械工程
生物
俯冲
构造学
航空航天工程
工程类
古生物学
物理
量子力学
作者
Tianzhu Zhou,Can Cao,Shixing Yuan,Zhe Wang,Qi Zhu,Hao Zhang,Jia Yan,Fan Liu,Ting Xiong,Qunfeng Cheng,Lei Wei
标识
DOI:10.1002/adma.202305807
摘要
High-performance MXene fibers are always of significant interest for flexible textile-based devices. However, achieving high mechanical property and electrical conductivity remains challenging due to the uncontrolled loose microstructures of MXene (Ti3 C2 Tx and Ti3 CNTx ) nanosheets. Herein, high-performance MXene fibers directly obtained through fluidics-assisted thermal drawing are demonstrated. Tablet interlocks are formed at the interface layer between the outer cyclic olefin copolymer and inner MXene nanosheets due to the thermal drawing induced stresses, resulting in thousands of meters long macroscopic compact MXene fibers with ultra-high tensile strength, toughness, and outstanding electrical conductivity. Further, large-scale woven textiles constructed by these fibers offer exceptional electromagnetic interference shielding performance with excellent durability and stability. Such an effective and sustainable approach can be applied to produce functional fibers for applications in both daily life and aerospace.
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