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Effect of Preparation Methods on the Tensile, Morphology and Solar Energy Conversion Efficiency of RGO/PMMA Nanocomposites

机译:制备方法对RGO / PMMA纳米复合材料的拉伸,形态和太阳能转化效率的影响

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In this study, reduced graphene oxide (RGO)/polymethyl methacrylate (PMMA) nanocomposites were prepared by employing in situ polymerization and solution blending methods. In terms of mechanical properties, RGO loading increased the Young’s modulus but decreased the elongation at break for RGO/PMMA nanocomposites. Tensile strength for solution blended RGO/PMMA nanocomposites increased after adding 0.5 wt % RGO, which was attributed to the good dispersion of RGO in the nanocomposites as evidenced from SEM and TEM. Solar energy conversion efficiency measurement results showed that the optimum concentration of RGO in the RGO/PMMA nanocomposites was found to be 1.0 wt % in order to achieve the maximum solar energy conversion efficiency of 25%. In the present study, the solution blended nanocomposites exhibited better overall properties than in situ polymerized nanocomposites owing to the better dispersion of RGO in solution blending. These findings would contribute to future work in search of higher conversion efficiency using nanocomposites.
机译:在该研究中,通过使用原位聚合和溶液混合方法制备还原石墨烯(RGO)/聚甲基甲基丙烯酸甲酯(PMMA)纳米复合材料。就机械性能而言,RGO负载增加了杨氏模量,但是降低了RGO / PMMA纳米复合材料的断裂处的伸长率。用于溶液混合的RGO / PMMA纳米复合材料加入0.5wt%RGO后的拉伸强度增加,归因于纳米复合材料中Rgo的良好分散,如SEM和TEM所证明。太阳能转换效率测量结果表明,RGO / PMMA纳米复合材料中RGO的最佳浓度为1.0wt%,以实现25%的最大太阳能转换效率。在本研究中,由于RGO在溶液混合中,溶液混合纳米复合材料表现出比原位聚合的纳米复合材料更好的整体性质。这些发现将有助于使用纳米复合材料寻找更高转换效率的未来工作。

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