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Designing tough and fracture resistant polypropylene/multi wall carbon nanotubes nanocomposites by controlling stereo-complexity and dispersion morphology

机译:通过控制立体复杂度和分散形态来设计韧性和抗断裂性的聚丙烯/多壁碳纳米管纳米复合材料

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摘要

A remarkable toughness enhancement (>330%) of multi wall carbon nanotubes (MWCNT) filled stereo-complex polypropylene (PP) matrix i.e. blend of isotactic-PP and syndiotactic-PP (70:30) with differences in stereo-regularity has been observed. The enhancement has been correlated to quantifiable morphological parameters such as free-space lengths concerning dispersion and relatively greater reduction in crystallite size/lamellar thickness. Systematic analysis of glass transition data and estimation of multi wall carbon nanotubes induced reduction in interfacial polymer chain immobilization reiterates susceptibility of polymer segments to ready-mobility. The extent of toughening has quantitatively been analyzed by fracture-energy partitioning, essential work of fracture (EWF), approach enabling the detection of a "semi-ductile-to-tough-to-quasi-brittle" transition in the MWCNT filled stereo-complex polypropylene. Real-time fracture kinetics analysis revealed toughening mechanism to be primarily blunting-assisted; an aspect also corroborated by extensive plastic flow without much energy dissipation in the inner fracture process zone. Thus the study establishes a new pathway of tacticity-defined matrix modification to toughen nanocomposites.
机译:观察到多壁碳纳米管(MWCNT)填充的立体复合聚丙烯(PP)基质具有显着的韧性增强(> 330%),即等规-PP和间规-PP的混合物(70:30)具有不同的立构规整度。这种增强与可量化的形态学参数相关,例如涉及分散的自由空间长度以及微晶尺寸/层状厚度的相对更大的减小。玻璃化转变数据的系统分析和多壁碳纳米管的估计引起的界面聚合物链固定化反应的减少,重申了聚合物链段对易迁移性的敏感性。增韧程度已通过断裂能分配,断裂必不可少的工作(EWF)进行了定量分析,该方法能够检测MWCNT填充的立体纤维中从“半韧性到韧性到准脆性”的转变。复合聚丙烯。实时断裂动力学分析表明,增韧机理主要是钝化辅助。一个方面也被大量的塑性流动所证实,在内部断裂过程区域中没有太多的能量耗散。因此,这项研究建立了一种新的由规整度确定的基体改性方法,以增韧纳米复合材料。

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