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连续蒙脱土-石墨烯纤维的湿法纺丝制备及其在阻燃轻质导线上的应用。

Wet-spinning of continuous montmorillonite-graphene fibers for fire-resistant lightweight conductors.

机构信息

†MOE Key Laboratory of Macromolecular Synthesis and Functionalization, Department of Polymer Science and Engineering, Zhejiang University, 38 Zheda Road, Hangzhou 310027, People's Republic of China.

‡State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, Donghua University, Shanghai 201620, People's Republic of China.

出版信息

ACS Nano. 2015 May 26;9(5):5214-22. doi: 10.1021/acsnano.5b00616. Epub 2015 Apr 22.

Abstract

All-inorganic fibers composed of neat 2D crystals possessing fascinating performance (e.g., alternately stacking layers, high mechanical strength, favorable electrical conductivity, and fire-resistance) are discussed in detail. We developed a wet-spinning assmebly strategy to achieve continuous all-inorganic fibers of montmorillonite (MMT) nanoplatelets by incorporation of a graphene oxide (GO) liquid crystal (LC) template at a rate of 9 cm/s, and the templating role of GO LC is confirmed by in situ confocal laser scanning microscopy and polarized optical microscopy inspections. After protofibers underwent thermal reduction, the obtained binary complex fibers composed of neat 2D crystals integrate the outstanding fire-retardance of MMT nanoplatelets and the excellent conductivity of graphene nanosheets. High-resolution transmission electron microscopy and scanning electron microscope observations reveal the microstructures of fibers with compactly stacking layers. MMT-graphene fibers show increaing tensile strengths (88-270 MPa) and electrical conductivities (130-10500 S/m) with increasing graphene fraction. MMT-graphene (10/90) fibers are used as fire-resistant (bearing temperature in air: 600-700 °C), lightweight (ρ < 1.62 g/cm(3)) conductors (conductivity: up to 1.04 × 10(4) S/m) in view of their superior performance in high-temperature air beyond commercial T700 carbon fibers. We attribute the fire-resistance of MMT-graphene fibers to the armor-like protection of MMT layers, which could shield graphene layers from the action of oxidative etching. The composite fibers worked well as fire-resistant conductors when being heated to glowing red by an alcohol lamp. Our GO LC-templating wet-spinning strategy may also inspire the continuous assembly of other layered crystals into high-performance composite fibers.

摘要

本文详细讨论了由二维晶体规整排列组成的全无机纤维,其具有迷人的性能(如交替堆叠层、高机械强度、良好的导电性和耐燃性)。我们开发了一种湿纺组装策略,通过在 9 cm/s 的速率下将氧化石墨烯(GO)液晶模板掺入蒙脱土(MMT)纳米片,实现了连续的全无机 MMT 纳米片纤维的制备,通过原位共焦激光扫描显微镜和偏光显微镜观察证实了 GO LC 的模板作用。原纤维经历热还原后,所获得的由规整二维晶体组成的二元复合纤维结合了 MMT 纳米片的出色阻燃性和石墨烯纳米片的优异导电性。高分辨率透射电子显微镜和扫描电子显微镜观察揭示了具有紧密堆叠层的纤维的微观结构。随着石墨烯含量的增加,MMT-石墨烯纤维表现出逐渐增加的拉伸强度(88-270 MPa)和电导率(130-10500 S/m)。MMT-石墨烯(10/90)纤维用作阻燃(在空气中承受温度:600-700°C)、轻量级(ρ<1.62 g/cm(3))导体(导电性:高达 1.04×10(4) S/m),因为它们在商业 T700 碳纤维的高温空气中具有优异的性能。我们将 MMT-石墨烯纤维的阻燃性归因于 MMT 层的类似装甲的保护,这可以防止石墨烯层受到氧化刻蚀的作用。当用酒精灯加热至通红时,复合纤维可以作为阻燃导体发挥作用。我们的 GO LC 模板湿纺策略也可能激发其他层状晶体连续组装成高性能复合纤维。

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