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Enhanced mechanical property, thermal and electrical conductivity of natural rubber/graphene nanosheets nanocomposites

机译:天然橡胶/石墨烯纳米烯纳米复合材料的增强的力学性能,热和导电性

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Graphene nanosheets (GNs) were prepared by supercritical solvent intercalation method and cyclic stripping method under high pressure and stress. This "non-chemical method" reduces impurities and avoids the destruction of graphene's intrinsic structure. In order to decrease the secondary stacking in processing, firstly GNs were dispersed in natural rubber (NR) latex to prepare NR/GNs concentrated master batch, and then combined with solid NR by mechanical blending. Since GNs have good dispersion in rubber matrix, a strong intermolecular force is formed between GNs and NR. Tensile strength, elongation at break, stress at 100% strain, stress at 300% strain, and tear strength of NR/GNs nanocomposites with 2 wt% GNs are enhanced 59.53%, 17.85%, 67.07%, 80.12% and19.20% respectively compared with NR. With more GNs, the NR/GNs nanocomposites exhibit lower T-g and better thermal stability. When the content of GNs in NR/GNs nanocomposites reaches 2 wt%, the T-g of nanocomposites drops about 2 degrees C, and the remaining carbon at 600 degrees C of nanocomposites increase by 3.07%. Moreover, It is demonstrated that the NR filled with 2 wt% GNs possess excellent thermal conductivity of 0.24 W m(-1) K-1?which is a 50% increment compared with pure NR. Meanwhile, the electrical conductivity of the composites increases by four orders of magnitude than that of pure NR. These results clearly indicate that GNs can be expected to be manufactured at large scale and utilized in heat-conducting and antistatic rubber.
机译:通过高压和应力在高压和应力下通过超临界溶剂插入方法和循环剥离方法制备石墨烯纳米片(GNS)。这种“非化学方法”减少了杂质,避免了石墨烯的内在结构的破坏。为了减少加工中的二次堆叠,首先将GNS分散在天然橡胶(NR)胶乳中以制备NR / GNS浓缩母料,然后通过机械混合与固体NR组合。由于GNS在橡胶基质中具有良好的分散,因此在GNS和NR之间形成强的分子间力。拉伸强度,断裂伸长,100%菌株的应力,300%应变,NR / GNS纳米复合材料的抗撕裂强度分别提高59.53%,17.85%,67.07%,80.12%和19.20%与NR相比。具有更多GNS,NR / GNS纳米复合材料表现出较低的T-G和更好的热稳定性。当NR / GNS纳米复合材料中的GNS含量达到2wt%时,纳米复合材料的T-G含量约为2℃,纳米复合材料600℃的剩余碳增加3.07%。此外,证明填充有2wt%GNS的NR具有0.24WM(-1)K-1的优异导热率?与纯NR相比,这是50%的增量。同时,复合材料的电导率比纯NR的电导率增加了四个数量级。这些结果清楚地表明GNS可以预期在大规模制造并用于导热和抗静电橡胶。

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