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Highly Conductive Carbon Nanotube-Graphene Hybrid Yarn

机译:高导电碳纳米管-石墨烯杂化纱

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摘要

An efficient procedure for the fabrication of highly conductive carbon nanotube/ graphene hybrid yarns has been developed. To start, arrays of vertically aligned multi-walled carbon nanotubes (MWNT) are converted into indefinitely long MWNT sheets by drawing. Graphene flakes are then deposited onto the MWNT sheets by electrospinning to form a composite structure that is transformed into yarn filaments by twisting. The process is scalable for yarn fabrication on an industrial scale. Prepared materials are characterized by electron microscopy, electrical, mechanical, and electrochemical measurements. It is found that the electrical conductivity of the composite MWNT-graphene yarns is over 900 S/cm. This value is 400% and 1250% higher than electrical conductivity of pristine MWNT yams or graphene paper, respectively. The increase in conductivity is asssociated with the increase of the density of states near the Fermi level by a factor of 100 and a decrease in the hopping distance by an order of magnitude induced by grapene flakes. It is found also that the MWNT-graphene yarn has a strong electrochemical response with specific capacitance in excess of 111 Fg~(-1). This value is 425% higher than the capacitance of pristine MWNT yarn. Such substantial improvements of key properties of the hybrid material can be associated with the synergy of MWNT and graphene layers in the yarn structure. Prepared hybrid yarns can benefit such applications as high-performance super-capacitors, batteries, high current capable cables, and artificial muscles.
机译:已经开发出用于制造高导电性碳纳米管/石墨烯混合纱线的有效方法。首先,通过拉伸将垂直排列的多壁碳纳米管(MWNT)阵列转换为无限长的MWNT薄板。然后通过静电纺丝将石墨烯薄片沉积到MWNT片材上,以形成复合结构,该复合结构通过加捻转变为长丝。该方法可扩展用于工业规模的纱线制造。制备的材料通过电子显微镜,电,机械和电化学测量进行表征。发现复合MWNT-石墨烯纱线的电导率超过900S / cm。该值分别比原始MWNT纱线或石墨烯纸的电导率高400%和1250%。电导率的增加与费米能级附近的态密度增加了100倍有关,而跳变距离的减少则由葡萄薄片引起了一个数量级。还发现,MWNT-石墨烯纱线具有强的电化学响应,比电容超过111 Fg〜(-1)。该值比原始MWNT纱线的电容高425%。杂化材料的关键性能的这种实质性改善可与纱线结构中MWNT和石墨烯层的协同作用相关。制备的混合纱线可以使诸如高性能超级电容器,电池,高电流电缆和人造肌肉等应用受益。

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  • 来源
    《Advanced Functional Materials》 |2014年第37期|5859-5865|共7页
  • 作者单位

    ARC Centre of Excellence for Electromaterials Science University of Wollongong Wollongong, NSW, 2519, Australia;

    ARC Centre of Excellence for Electromaterials Science University of Wollongong Wollongong, NSW, 2519, Australia;

    ARC Centre of Excellence for Electromaterials Science University of Wollongong Wollongong, NSW, 2519, Australia;

    ARC Centre of Excellence for Electromaterials Science University of Wollongong Wollongong, NSW, 2519, Australia;

    ARC Centre of Excellence for Electromaterials Science University of Wollongong Wollongong, NSW, 2519, Australia;

    ARC Centre of Excellence for Electromaterials Science University of Wollongong Wollongong, NSW, 2519, Australia;

    Department of Physics Ferdowsi University of Mashhad Mashhad, Iran;

    Institute for Superconducting and Electronic Materials University of Wollongong Wollongong, NSW 2519, Australia;

    Alan G MacDiarmid NanoTech Institute University of Texas at Dallas Richardson, TX 75083, USA;

    Alan G MacDiarmid NanoTech Institute University of Texas at Dallas Richardson, TX 75083, USA;

    Alan G MacDiarmid NanoTech Institute University of Texas at Dallas Richardson, TX 75083, USA;

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