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Thermal, Mechanical, and Electrical Properties of Graphene Nanoplatelet/Graphene Oxide/Polyurethane Hybrid Nanocomposite

机译:石墨烯纳米片/氧化石墨烯/聚氨酯杂化纳米复合材料的热,机械和电性能

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Hybrid nanocomposites of polyurethane (PU) were prepared by in-situ polymerization of 4,4'-diphenyl methane diisocyanate (MDI) with mixture of graphene oxide (GO) and graphene nanoplatelet (GNP) dispersed in a poly(tetramethylene ether glycol) (PTMEG). Effects of the fillers, GO and GNP, on the thermal, mechanical, and electrical properties of the nanocomposites of PU were investigated. Sonication of the hybrid of GNP and GO with PTMEG enabled effective dispersion of the fillers in the solution than the sonication of GNP alone. The addition of PTMEG in the solution prevented the GNPs from the restacking during the drying process. It was observed that the electrical conductivity and mechanical property of the nanocomposites based on the hybrid of GO and GNP were superior to the nanocomposite based on GNP alone at the same loading of the filler. At the loading of the 3 wt% hybrid filler in PU, we observed the improvement of Young's modulus similar to 200% and the surface resistivity of 10(9.5) ohm/sq without sacrificing the elongation at break.
机译:通过将4,4'-二苯基甲烷二异氰酸酯(MDI)与分散在聚四亚甲基醚二醇中的氧化石墨烯(GO)和石墨烯纳米片(GNP)的混合物进行原位聚合来制备聚氨酯(PU)杂化纳米复合材料( PTMEG)。研究了填充剂GO和GNP对PU纳米复合材料的热,机械和电性能的影响。 GNP和GO杂化物与PTMEG的超声处理比单独的GNP超声处理能使填料有效地分散在溶液中。在溶液中添加PTMEG可以防止GNP在干燥过程中重新堆积。观察到,在相同的填料填充量下,基于GO和GNP杂化的纳米复合材料的电导率和机械性能优于仅基于GNP的纳米复合材料。在PU中添加3 wt%的杂化填料时,我们观察到杨氏模量的改善与200%相似,并且表面电阻率达到10(9.5)ohm / sq,而不会破坏断裂伸长率。

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