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首页> 外文期刊>RSC Advances >Influence of reduced graphene oxide on flow behaviour, glass transition temperature and secondary crystallinity of plasticized poly(vinyl chloride)
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Influence of reduced graphene oxide on flow behaviour, glass transition temperature and secondary crystallinity of plasticized poly(vinyl chloride)

机译:石墨烯氧化物对塑化聚(氯乙烯)的流动性,玻璃化转变温度和次级结晶度的影响

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Understanding the rheological behaviour of thermoplastic nanocomposites is important to obtain a concrete knowledge of their processability. The viscoelastic properties of nanocomposites are a reflection of their morphology. The study of flow and deformation of nanocomposites provides essential information related to prevalent interactions in the system as well as contribution from the dispersion of incorporated nanofillers. In the present study, plasticized polyvinyl chloride/reduced graphene oxide nanocomposites (PPVC/RGO) were fabricated using melt mixing technique with different filler concentration. Flow behaviour of the nanocomposites was analyzed using small amplitude oscillatory shear (SAOS) measurements and it indicated an enhancement in the storage modulus ( G ′), loss modulus ( G ′′) and complex viscosity ( η *) with RGO content. This can be attributed to very good dispersion and reinforcing effect of RGO in PPVC matrix as supported by TEM and FTIR results. Weak gel model is used to fit the rheological parameters and is found to be in excellent agreement with the SAOS experiments. Thermal history of the prepared nanocomposites was learned using differential scanning calorimetry. A shift in glass transition temperature ( T _(g) ) to higher temperature region could be seen, that manifest the effect of RGO in the amorphous portion of PPVC. An interesting property called secondary crystallinity was also found in these materials.
机译:理解热塑性纳米复合材料的流变行为对于获得其加工性的具体知识是重要的。纳米复合材料的粘弹性是它们的形态学的反映。纳米复合材料的流动和变形的研究提供了与系统中普遍的相互作用相关的基本信息以及从掺入的纳米填充物的分散的贡献。在本研究中,使用具有不同填充浓度的熔融混合技术制造塑化的聚氯乙烯/还原的石墨烯纳米复合材料(PPVC / RGO)。使用小幅度振荡剪切(SAOS)测量分析纳米复合材料的流动性能,并表示具有RGO含量的储存模量(G'),损耗模量(G')和复合粘度(η*)的增强。这可以归因于TEM和FTIR结果支持的PPVC矩阵中RGO的非常好的分散和增强效果。弱凝胶模型用于符合流变参数,发现与Saos实验非常一致。使用差示扫描量热法学中学到制备纳米复合材料的热历史。可以看到玻璃化转变温度(T _(g))的换档,以便在PPVC的无定形部分中表现出RGO的效果。在这些材料中也发现了一种称为次要结晶度的有趣性质。

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