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Novel Unsaturated Polyester Nanocomposites via Hybrid 3D POSS-Modified Graphene Oxide Reinforcement: Electro-Technical Application Perspective

机译:通过混合3D POSS改性的氧化石墨烯增强的新型不饱和聚酯纳米复合材料:电动技术的应用前景

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摘要

The latest trends in technologies has shifted the focus to developing innovative methods for comprehensive property enhancement of the polymer composites with facile and undemanding experimental techniques. This work reports an elementary technique to fabricate high-performance unsaturated polyester-based nanocomposites. It focuses on the interactive effect of polyhedral oligomeric silsesquioxanes (POSS)-functionalized graphene oxide (GO) within the unsaturated polymermatrix. The hybrid framework of POSS-functionalized graphene oxide has been configured via peptide bonding between the aminopropyl isobutyl POSS and graphene oxide. The synergistic effect of POSS and graphene oxide paved the way for a mechanism to inculcate a hybrid framework within the unsaturated polyester (UP) via in situ polymerization to develop UP/GO-POSS nanocomposites. The surface-appended POSS within the graphene oxide boosted its dispersion in the UP matrix, furnishing an enhancement in tensile strength of the UP/GO-POSS composites by 61.9%, thermal decomposition temperature (10% mass loss) by 69.8 °C and electrical conductivity by 10 S/m, in contrast to pure UP. In particular, the homogenous influence of the POSS-modified GO could be vindicated in the surging of the limiting oxygen index (%) in the as-prepared nanocomposites. The inclusive property amelioration vindicates the use of fabricated nanocomposites as high-performance nanomaterials in electrotechnical applications.
机译:技术的最新趋势已将重点转移到开发新颖的方法,以通过简便而又不需要的实验技术来全面增强聚合物复合材料的性能。这项工作报告了一种基本技术,以制造高性能的不饱和聚酯基纳米复合材料。它着重于不饱和聚合物基体中多面体低聚倍半硅氧烷(POSS)功能化的氧化石墨烯(GO)的相互作用。 POSS官能化氧化石墨烯的杂化骨架已通过氨基丙基异丁基POSS与氧化石墨烯之间的肽键键合进行配置。 POSS和氧化石墨烯的协同作用为通过原位聚合在不饱和聚酯(UP)中注入杂化骨架以开发UP / GO-POSS纳米复合材料的机制铺平了道路。氧化石墨烯中表面附加的POSS增强了其在UP基质中的分散性,使UP / GO-POSS复合材料的拉伸强度提高了61.9%,热分解温度(质量损失为10%)提高了69.8°C,并且电与纯UP相比,电导率降低了10 S / m。特别地,在所制备的纳米复合材料中极限氧指数(%)的上升中,可以证明POSS改性的GO的均匀影响。包容性的改善证明了制造的纳米复合材料在电工技术应用中作为高性能纳米材料的使用。

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