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Functional Properties of Poly(Trimethylene Terephthalate)-Block-Poly(Caprolactone) Based Nanocomposites Containing Graphene Oxide (GO) and Reduced Graphene Oxide (rGO)

机译:聚(三甲基对苯二甲酸乙二醇酯) - 甲基聚(己内酯)基纳米复合材料的功能性质含有石墨烯(GO)和氧化石墨烯(RGO)

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摘要

This work reports a study on the influence of graphene oxide (GO) and reduced graphene oxide (rGO) on the functional properties of poly(trimethylene terephthalate)-block-poly(caprolactone) (PTT-block-PCL-T) (75/25 wt.%/wt.%) copolymer, obtained from dimethyl terephthalate (DMT), 1,3-biopropanediol and polycaprolactone diol (PCL) via in situ polymerization. The article presents, if and how the reduction of graphene oxide, in comparison to the non-reduced one, can affect morphological, thermal, electrical and mechanical properties. SEM examination confirms/reveals the homogeneous distribution of GO/rGO nanoplatelets in the PTT-block-PCL-T copolymer matrix. More than threefold increase in the value of the tensile modulus is achieved by the addition of 1.0 wt.% of GO and rGO. Moreover, the thermal conductivity and thermal stability of the GO and rGO-based nanocomposites are also improved. The differential scanning calorimetry (DSC) measurement indicates that the incorporation of GO and rGO has a remarkable impact on the crystallinity of the nanocomposites (an increase of crystallization temperature up to 58 °C for nanocomposite containing 1.0 wt.% of GO is observed). Therefore, the high performances of the PTT-block-PCL-T-based nanocomposites are mainly attributed to the uniform dispersion of nanoplatelets in the polymer matrix and strong interfacial interactions between components.
机译:该工作报告了石墨烯(GO)和石墨烯(RGO)对聚(三甲基对苯二甲酸三苯二甲酸三苯二甲酸甲酯)的功能性质的影响的研究--block-poly(己内酯)(Ptt-block-pcl-t)(75 / 25重量%/重量%)共聚物,通过原位聚合由二甲醇酯(DMT),1,3-生物丙二醇和聚己内酯二醇(PCL)获得。本文呈现,如果和如何与非减少的氧化物的减少,可以影响形态,热,电气和机械性能。 SEM检查证实/揭示了PTT-BCL-T共聚物基质中GO / RGO纳米孔的均匀分布。通过添加1.0重量%的拉伸模量来实现抗拉模量值的三倍以上。百分比和rgo%。此外,还改善了Go和Rgo基纳米复合材料的导热性和热稳定性。差分扫描量热法(DSC)测量表明,Go和Rgo的掺入对纳米复合材料的结晶度(结晶温度的增加高达58℃的纳米复合材料的增加,观察到的纳米复合材料的增加)具有显着的影响。因此,PTT-Block-T基纳米复合材料的高性能主要归因于纳米孔中的均匀分散在聚合物基质中的均匀分散和组分之间的强界面相互作用。

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