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The effect of branched carbon nanotubes as reinforcing nano-filler in polymer nanocomposites

机译:支链碳纳米管作为增强纳米填料在聚合物纳米复合材料中的作用

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摘要

This work discusses the mechanical and dissipative properties of nanocomposite materials made of a highperformance thermoplastic polymer (polybutylene terephthalate, PBT) integrated with branched carbon nanotubes (bCNTs) as nanofiller. The storage and loss moduli as well as the loss factor/damping ratio of the nanocomposites are experimentally characterized for increasing bCNT weight fractions (wt bCNT) upon variations of the input cyclic strain amplitude and of the input frequency, respectively. The trends obtained for the nanocomposites mechanical properties indicate improvements both in storage and loss modulus by increasing the bCNT weight fraction from 0.5 to 2. The striking differences between the damping capacities exhibited by CNT/polymer and bCNT/polymer nanocomposites are discussed to shed light onto the different underlined mechanics of the nanocomposites. Due to the stick-slip relative sliding motion of the polymer chains with respect to the straight CNTs, CNT/PBT nanocomposites are known to exhibit a peak in the damping vs. strain amplitude curves, past which, the damping capacity shows a monotonically increasing trend due to the conjectured sliding of the polymer crystals. On the other hand, we show for the first time that bCNT/PBT nanocomposites do not exhibit a peak in the damping capacity but rather a plateau after an initial drop at low strains. This behavior is attributed to the much reduced mobility of the branched CNTs and the lack of formation of crystalline structures around the bCNTs.
机译:本文讨论了由高性能热塑性聚合物(聚对苯二甲酸丁二醇酯,PBT)与支链碳纳米管(bCNTs)作为纳米填料相结合的纳米复合材料的力学和耗散性能。实验表征了纳米复合材料的储能模量和损耗模量以及损耗因子/阻尼比,分别在输入循环应变幅值和输入频率变化时增加bCNT重量分数(wt% bCNT)。纳米复合材料力学性能的趋势表明,通过将bCNT重量分数从0.5%增加到2%,存储和损耗模量都有所改善。讨论了碳纳米管/聚合物和b碳纳米管/聚合物纳米复合材料所表现出的阻尼能力之间的显着差异,以阐明纳米复合材料的不同下划线力学。由于聚合物链相对于直CNTs的粘滑相对滑动运动,已知CNT/PBT纳米复合材料在阻尼-应变幅值曲线上表现出一个峰值,超过该峰值后,由于聚合物晶体的推测滑动,阻尼能力呈现单调增加趋势。另一方面,我们首次表明,bCNT/PBT纳米复合材料在低应变下初始下降后,在阻尼能力上没有达到峰值,而是表现出一个平台期。这种行为归因于支链碳纳米管的迁移率大大降低,并且bCNT周围没有形成晶体结构。

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