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Bundling dynamics regulates the active mechanics and transport in carbon nanotube networks and their nanocomposites

机译:捆绑动态调节活动力学和碳纳米管网络和运输他们的纳米复合材料

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摘要

High-density carbon nanotube networks (CNNs) continue to attract interest as active elements in nanoelectronic devices, nanoelectromechanical systems (NEMS) and multifunctional nanocomposites. The interplay between the network nanostructure and its properties is crucial, yet current understanding remains limited to the passive response. Here, we employ a novel superstructure consisting of millimeter-long vertically aligned single walled carbon nanotubes (SWCNTs) sandwiched between polydimethylsiloxane (PDMS) layers to quantify the effect of two classes of mechanical stimuli, film densification and stretching, on the electronic and thermal transport across the network. The network deforms easily with an increase in the electrical and thermal conductivities, suggestive of a floppy yet highly reconfigurable network. Insight from atomistically informed coarse-grained simulations uncover an interplay between the extent of lateral assembly of the bundles, modulated by surface zipping/unzipping, and the elastic energy associated with the bent conformations of the nanotubes/bundles. During densification, the network becomes highly interconnected yet we observe a modest increase in bundling primarily due to the reduced spacing between the SWCNTs. The stretching, on the other hand, is characterized by an initial debundling regime as the strain accommodation occurs via unzipping of the branched interconnects, followed by rapid rebundling as the strain transfers to the increasingly aligned bundles. In both cases, the increase in the electrical and thermal conductivity is primarily due to the increase in bundle size; the changes in network connectivity have a minor effect on the transport. Our results have broad implications for filamentous networks of inorganic nanoassemblies composed of interacting tubes, wires and ribbons/belts.
机译:高密度碳纳米管网络(cnn)继续吸引兴趣作为活跃的元素在纳米电子设备,nanoelectromechanical系统(NEMS)和多功能纳米复合材料。纳米结构及其属性是至关重要的当前的理解仍然有限被动反应。上层建筑组成的毫米长的垂直对齐的单壁碳纳米管(SWCNTs)夹在聚二甲硅氧烷(PDMS)层量化两个的效果类的机械刺激,薄膜致密化和拉伸,电子和热在网络上传输。容易增加电气和热导率,暗示了软盘然而,高度可重构网络。atomistically通知粗粒度的模拟揭示的程度之间的相互作用束的横向组装,调制表面压缩/解压缩、弹性能量与弯曲的构象碳纳米管/包。网络变得高度相互关联,然而我们观察适度增加捆绑为主由于降低了SWCNTs的间距。伸展运动,另一方面,是特点是一个初始debundling政权通过测定的应变发生住宿支互联,其次是快速的随着压力转移到重新打包越来越多的包保持一致。增加电气和热电导率的增加主要是由于包大小;有一个小对交通的影响。对丝状网络有广泛的影响吗无机nanoassemblies组成的互动管,电线和丝带/腰带。

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