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Composites of multi-walled carbon nanotubes with polypropylene and thermoplastic olefin blends prepared by melt compounding.

机译:多壁碳纳米管与聚丙烯和热塑性烯烃共混物的复合材料,可通过熔融混合制备。

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摘要

Composites of multi-walled carbon nanotubes (MWCNTs) with polypropylene (PP) and thermoplastic olefins (TPOs) were prepared by melt compounding. Two non-covalent functionalization methods were employed to improve nanotube dispersion and the resulting composite properties are reported.;The first functionalization approach involved partial coating of the surface of the nanotubes with a hyperbranched polyethylene (HBPE). MWCNT functionalization with HBPE was only moderately successful in breaking up the large aggregates that formed upon melt mixing with PP. In spite of the formation of large aggregates, the samples were conductive above a percolation threshold of 7.3 wt%. MWCNT functionalization did not disrupt the electrical conductivity of the nanotubes. The composite strength was improved with addition of nanotubes, but ductility was severely compromised because of the existence of aggregates.;The second method involved PP matrix functionalization with aromatic moieties capable of pi-pi interaction with MWCNT sidewalls. Various microscopy techniques revealed the addition of only 25 wt% of PP-g-pyridine (Py) to the neat PP was capable of drastically reducing nanotube aggregate size and amount. Raman spectroscopy confirmed improved polymer/nanotube interaction with the PP-g-Py matrix. Electrical percolation threshold was obtained at a MWCNT loading of approximately 1.2 wt%. Electrical conductivity on the order of 10 -2 S/m was achieved, suggesting possible use in semi-conducting applications. Composite strength was improved upon addition of MWCNTs. The matrix functionalization with Py resulted in a significant improvement in composite ductility when filled with MWCNTs in comparison to its maleic anhydride (MA) counterpart. Preliminary investigations suggest that the use of alternating current (AC) electric fields may be effective in aligning nanotubes in PP to reduce the filler loading required for electrical percolation.;Composites containing MWCNT within PP/ethylene-octene copolymer (EOC) blends were prepared. Microscopy revealed that MWCNTs localized preferentially in the EOC phase. This was explained by the tendency of the system to minimize interfacial energy when the MWCNTs reside in the thermodynamically preferential phase. A kinetic approach, which involved pre-mixing the MWCNTs with PP and adding the EOC phase subsequently was attempted to monitor the migration of MWCNTs. MWCNTs began to migrate after two minutes of melt mixing with the EOC. The PP-g-Py matrix functionalization appears to slightly delay the migration. A reduction in electrical percolation threshold to 0.5 wt% MWCNTs was achieved with a co-continuous blend morphology, consisting of a 50/50 by weight ratio of PP and EOC.
机译:通过熔融混合制备了多壁碳纳米管(MWCNT)与聚丙烯(PP)和热塑性烯烃(TPO)的复合材料。两种非共价官能化方法被用来改善纳米管的分散性,并报道了所得的复合性能。第一种官能化方法涉及用超支化聚乙烯(HBPE)部分涂覆纳米管的表面。用HBPE进行的MWCNT功能化仅能成功分解与PP熔融混合时形成的大聚集体。尽管形成了大的聚集体,但样品的导电率仍高于7.3 wt%的渗滤阈值。 MWCNT功能化没有破坏纳米管的电导率。添加纳米管可以提高复合材料的强度,但由于聚集体的存在,延展性受到严重损害。第二种方法是将PP基质官能化并带有能够与MWCNT侧壁进行pi-pi相互作用的芳香族部分。各种显微镜技术表明,仅向纯PP中添加25 wt%的PP-g-吡啶(Py)能够显着减小纳米管聚集体的尺寸和数量。拉曼光谱证实了聚合物/纳米管与PP-g-Py基质的相互作用得到改善。在大约1.2 wt%的MWCNT负载下获得电渗滤阈值。实现了大约10 -2 S / m的电导率,表明可能在半导体应用中使用。加入MWCNT后,复合强度得以提高。与马来酸酐(MA)对应物相比,当用MWCNT填充时,用Py进行的基质官能化可显着改善复合材料的延展性。初步研究表明,使用交流(AC)电场可能有效地使PP中的纳米管排列,以减少电渗滤所需的填料负载量。制备了聚丙烯/乙烯-辛烯共聚物(EOC)共混物中含有MWCNT的复合材料。显微镜显示,MWCNTs优先位于EOC相。当MWCNT停留在热力学优先相中时,系统趋于将界面能降至最低的趋势可以解释这一点。尝试采用动力学方法,包括将MWCNT与PP预混合,然后添加EOC相,以监测MWCNT的迁移。与EOC熔融混合两分钟后,MWCNT开始迁移。 PP-g-Py基质功能化似乎会稍微延迟迁移。通过共连续共混物形态(由PP和EOC的重量比为50/50组成),将电渗透阈值降低到0.5重量%MWCNT。

著录项

  • 作者

    Petrie, Kyle G.;

  • 作者单位

    Queen's University (Canada).;

  • 授予单位 Queen's University (Canada).;
  • 学科 Engineering Chemical.;Nanotechnology.
  • 学位 M.A.Sc.
  • 年度 2013
  • 页码 120 p.
  • 总页数 120
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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