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Functionalized graphene nanoplatelets for enhanced mechanical and thermal properties of polyurethane nanocomposites

机译:功能化石墨烯纳米片增强聚氨酯纳米复合材料的机械和热性能

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In the evolution of high performance graphene-based polymer nanocomposites, homogeneous dispersion of graphene nanoplatelets in the polymer matrix and exact interface control are difficult to achieve due to the potent interlayer cohesive energy and surface inactiveness of the nanocomposites. Herein, we present an effective way to fabricate high performance polyurethane (PU) nanocomposites via the incorporation of functionalized graphene nanoplatelets (f-GNP) during in situ polymerization. The f-GNP/PU nanocomposites exhibited a significant improvement in terms of their mechanical, thermal, and shape recovery properties. The modulus of the f-GNP/PU nanocomposites at 2 wt% graphene nanoplatelets loading is ten times greater than that of the pure PU sample. The breaking stress and shape recovery showed a highly improving trend with increasing wt% of f-GNP. An unprecedented enhancement of thermal stability at 30 ℃ compared to the pure PU is also found at 2 wt% loading of f-GNP via in situ polymerization.
机译:在高性能石墨烯基聚合物纳米复合材料的发展过程中,由于纳米复合材料的强大的层间内聚能和表面惰性,难以实现石墨烯纳米片在聚合物基质中的均匀分散和精确的界面控制。在这里,我们提出了一种通过在原位聚合过程中引入功能化石墨烯纳米片(f-GNP)来制备高性能聚氨酯(PU)纳米复合材料的有效方法。 f-GNP / PU纳米复合材料在机械,热和形状恢复性能方面均表现出显着改善。 f-GNP / PU纳米复合材料在2 wt%石墨烯纳米片加载量下的模量比纯PU样品的模量大十倍。随着f-GNP的wt%增加,断裂应力和形状恢复显示出高度改善的趋势。通过原位聚合,在f-GNP的负载量为2 wt%时,与纯PU相比,在30℃时的热稳定性也得到了前所未有的提高。

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