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Synergistic effect of functionalized graphene oxide and carbon nanotube hybrids on mechanical properties of epoxy composites

机译:官能化石墨烯氧化物和碳纳米管杂交物对环氧复合材料力学性能的协同作用

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摘要

Epoxy resin was grafted to graphene oxide (GO) via esterification reaction and 3D structure hybrids were prepared by combining 1D carbon nanotube (CNT) and 2D functionalized GO through pi-stacking interaction. Epoxy composites filled with 3D structure hybrids were fabricated. The results show that functionalized GO effectively improves the dispersibility of CNTs in epoxy matrix due to good compatibility. Excellent mechanical properties were achieved by epoxy composites filled with 3D structure hybrids. The fracture surface analysis indicated improved interfacial interaction between 3D structure hybrids and epoxy matrix, which may due to the covalent bonding formed between the epoxy molecular chain grafted on EGO and the hardener agent during the curing process. In the 3D structure filler network, the mechanisms of crack deflection/bifurcation induced by functionalized GO make the crack path tortuous, which causes the cracks to encounter more CNTs and then promote the mechanisms of CNT fracture and crack bridging, resulting in more energy dissipation. This is the key mechanism for its excellent reinforcing and toughening effects.
机译:环氧树脂通过酯化反应接枝到石墨烯氧化物(GO)中,通过将1d碳纳米管(CNT)和2D官能化通过PI堆叠相互作用来制备3D结构杂种。制造填充3D结构杂交物的环氧复合材料。结果表明,由于良好的相容性,官能化去有效改善了环氧基质中CNT的分散性。通过填充3D结构杂种的环氧复合材料实现优异的机械性能。断裂表面分析表明了3D结构杂交种和环氧基质之间的改善界面相互作用,这可能是由于在固化过程中接枝在EGO和硬化剂之间的环氧分子链之间形成的共价键合。在3D结构填充网络中,官能化的裂纹偏转/分叉机构使官能化致裂化使得裂纹道曲调曲折,这导致裂缝遇到更多的CNT,然后促进CNT断裂和裂纹桥接的机制,导致更能的能量耗散。这是其优异的增强和增韧效果的关键机制。

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  • 来源
    《RSC Advances》 |2018年第67期|共12页
  • 作者单位

    PLA Army Engn Univ Coll Field Engn Nanjing 210007 Jiangsu Peoples R China;

    PLA Army Engn Univ Coll Field Engn Nanjing 210007 Jiangsu Peoples R China;

    PLA Army Engn Univ State Key Lab Disaster Prevent &

    Mitigat Explos &

    Nanjing 210007 Jiangsu Peoples R China;

    PLA Army Engn Univ Coll Field Engn Nanjing 210007 Jiangsu Peoples R China;

    PLA Army Engn Univ Coll Field Engn Nanjing 210007 Jiangsu Peoples R China;

    PLA Army Engn Univ Coll Field Engn Nanjing 210007 Jiangsu Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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