Jang Sung-Hwan, Li Long-Yuan
Civil and Environmental Engineering, School of Engineering, Hanyang University ERICA, Ansan, Gyeonggi-do 15588, South Korea.
Civil and Coastal Engineering, School of Engineering, University of Plymouth, Plymouth, Devon PL7 8AA, UK.
Materials (Basel). 2020 Jan 7;13(2):259. doi: 10.3390/ma13020259.
This paper reported the effect of high temperature on the electro-mechanical behavior of carbon nanotube (CNT) reinforced epoxy composites. CNT/epoxy composites were fabricated by dispersing CNTs in the epoxy matrix using a solution casting method. Electrical conductivity measurements obtained for the CNT/epoxy composites indicated a steadily increasing directly proportional relationship with CNT concentration with a percolation threshold at 0.25 wt %, reaching a maximum of up to 0.01 S/m at 2.00 wt % CNTs. The electro-mechanical behavior of CNT/epoxy composites were investigated at a room temperature under the static and cyclic compressive loadings, resulting that the change in resistance of CNT/epoxy composites was reduced as increasing CNT concentration with good repeatability. This is due to well-networked CNTs conducting pathways created within the solid epoxy matrix observed by scanning electron microscopy. Temperature significantly affects the electro-mechanical behavior of CNT/epoxy composites. In particular, the electro-mechanical behavior of CNT/epoxy composites below the glass transition temperature showed the similar trend with those at room temperature, whereas the electro-mechanical behavior of CNT/epoxy composites above the glass transition temperature showed an opposite change in resistance with poor repeatability due to unstable CNT network in epoxy matrix.
本文报道了高温对碳纳米管(CNT)增强环氧复合材料机电性能的影响。采用溶液浇铸法将碳纳米管分散在环氧基体中制备了碳纳米管/环氧复合材料。对碳纳米管/环氧复合材料进行的电导率测量表明,其与碳纳米管浓度呈稳定增加的正比关系,渗流阈值为0.25 wt%,在碳纳米管含量为2.00 wt%时,电导率最高可达0.01 S/m。在室温下对碳纳米管/环氧复合材料在静态和循环压缩载荷下的机电性能进行了研究,结果表明,随着碳纳米管浓度的增加,碳纳米管/环氧复合材料的电阻变化减小,且具有良好的重复性。这是由于通过扫描电子显微镜观察到在固体环氧基体内形成了良好网络化的碳纳米管导电通路。温度显著影响碳纳米管/环氧复合材料的机电性能。特别是,低于玻璃化转变温度时,碳纳米管/环氧复合材料的机电性能与室温下的表现出相似趋势,而高于玻璃化转变温度时,由于环氧基体内碳纳米管网络不稳定,碳纳米管/环氧复合材料的电阻变化呈现相反趋势,且重复性较差。