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首页> 外文期刊>Journal of Applied Polymer Science >Nano-engineering of high-performance PA6.6 nanocomposites by the integration of CVD-grown carbon fiber on graphene as a bicomponent reinforcement by melt-compounding
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Nano-engineering of high-performance PA6.6 nanocomposites by the integration of CVD-grown carbon fiber on graphene as a bicomponent reinforcement by melt-compounding

机译:高效PA6.6纳米复合材料的纳米工程通过CVD-生长的碳纤维整合石墨烯作为熔融复合的双组分加固

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摘要

In this study, long carbon nanofibers (CNFs) were grown on graphene nanoplatelets (GNPs) by chemical vapor deposition (CVD) technique to develop three-dimensional (3D) bicomponent nanostructures. The structure and properties of graphene before and after CVD process were investigated in details. X-ray photoelectron analysis depicted the formation of Fe-C bonds by the deposition of carbon atoms on the catalyst surface of Fe2O3. This hybrid additive was firstly used as a reinforcing agent in melt compounding to fabricate PA6.6-based nanocomposites with enhanced mechanical and thermal properties. Both GNP and CNF-GNP have enough surface oxygen functional groups to improve the interfacial interactions with polyamide matrix and thus provide good wettability. Also, both neat GNP and its bicomponent additive with CNF also acted as a nucleating agent and allowed the crystal growth in nanocomposite structure. Homogeneous dispersion of nanoparticles was achieved by using thermokinetic mixer during compounding by applying high shear rates. Mechanical results showed that 23 and 34% improvement in flexural and tensile modulus values, respectively, was attained by the addition of 0.5 wt % CNF-GNP hybrid additive. The heat distortion temperature and Vicat softening temperature of the resulting PA6.6 nanocomposites were improved compared to neat PA6.6 material indicating performance enhancement at higher service temperature conditions. CNF was successfully grown on Fe-loaded GNP by CVD method and this hybrid additive was compounded with PA6.6 by melt-mixing process. Mechanical results showed that 34% improvement in tensile modulus value was attained by the addition of 0.5 wt % CNF-GNP hybrid additive because it acted as a nucleating agent and allowed the crystal growth in the nanocomposite structure. (c) 2019 Wiley Periodicals, Inc. J. Appl. Polym. Sci. 2019, 136, 48347.
机译:在该研究中,通过化学气相沉积(CVD)技术在石墨烯纳米纳薄(GNPS)上生长长碳纳米纤维(CNF),以开发三维(3D)双组分纳米结构。详细研究了CVD工艺前后石墨烯的结构和性质。 X射线光电子能量分析描绘了Fe 2 O 3催化剂表面上的碳原子沉积Fe-C键的形成。该杂化添加剂首先用作熔融配合的增强剂,以制造基于PA6.6的纳米复合材料,具有增强的机械和热性能。 GNP和CNF-GNP都具有足够的表面氧官能团以改善与聚酰胺基质的界面相互作用,从而提供良好的润湿性。此外,齐颗GNP及其具有CNF的双组分添加剂也用作成核剂并允许纳米复合材料结构中的晶体生长。通过施加高剪切速率在复合过程中使用热酮液混合器实现纳米颗粒的均匀分散体。机械结果表明,通过加入0.5wt%CNF-GNP杂化添加剂,分别获得了弯曲和拉伸模量值的改善23和34%。与纯净的PA6.6材料相比,改善了所得PA6.6纳米复合材料的热变形温度和VICAT软化温度。在较高的服务温度条件下表明性能增强。 CNF通过CVD方法成功地生长在Fe加载的GNP上,通过熔融混合方法将该杂化添加剂与PA6.6配混。机械结果表明,通过加入0.5wt%CNF-GNP杂化添加剂,获得了拉伸模量值的提高34%,因为它用作成核剂并允许纳米复合材料结构中的晶体生长。 (c)2019 Wiley期刊,Inc.J.Phill。聚合物。 SCI。 2019,136,48347。

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