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CURE BEHAVIOR OF EPOXY/MWCNT NANOCOMPOSITES: THE EFFECT OF NANOTUBE SURFACE MODIFICATION

机译:环氧/ MWCNT纳米复合材料的固化行为:纳米管表面改性的影响

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The effect of carboxyl and fluorine modified multi-wall carbon nanotubes (MWCNTs) on the curing behavior of diglycidyl ether of bisphenol A (DGEBA) epoxy resin was studied using differential scanning calorimetry (DSC), rheology and infrared spectroscopy (IR). Activation energy (Ea) and rate constants (k) obtained from isothermal DSC were the same for the neat resin and fluorinated MWCNT system (47.7 and 47.5 kJ/mol respectively) whereas samples containing carboxylated MWCNTs exhibited a higher activation energy (61.7 kJ/mol) and lower rate constant. Comparison of the activation energies, rate constants, gelation behavior and vitrification times for all of the samples suggests that the cure mechanisms of the neat resin and fluorinated sample are similar but different from the carboxylated sample. This can be explained by the difference in how the fluorinated nanotubes react with the epoxy resin compared to the carboxylated nanotubes. Although the two systems have different reaction mechanisms, both systems have similar degrees of conversion as calculated from the infrared spectroscopic data, glass transition temperature (T_g), and predictions based on DSC data. This difference in reaction mechanism may be attributed to differences in nanotube dispersion; the fluorinated MWCNT system is more uniformly dispersed in the matrix whereas the more heterogeneously dispersed carboxylated MWCNTs can hinder mobility of the reactive species and disrupt the reaction stoichiometry on the local scale.
机译:使用差示扫描量热法(DSC),流变学和红外光谱(IR)研究了羧基和氟改性多壁碳纳米管(MWCNTs)对双酚A(DGEBA)环氧树脂的二甲醇A(DGEBA)环氧树脂的固化行为。从等温DSC获得的活化能(EA)和速率常数(K)对于纯树脂和氟化MWCNT系统(分别为47.7和47.5kJ / mol),而含有羧化MWCNT的样品表现出更高的活化能量(61.7kJ / mol )和较低的速率常数。所有样品的活化能量,速率常数,凝胶发生行为和玻璃化时间的比较表明,纯树脂和氟化样品的固化机制类似但与羧化样品不同。这可以通过氟化纳米管如何与环氧树脂相比如何与羧化纳米管反应的差异来解释。虽然两个系统具有不同的反应机制,但是由于从红外光谱数据,玻璃化转变温度(T_G)和基于DSC数据的预测计算,两个系统都具有类似的转换程度。反应机制的这种差异可归因于纳米管分散的差异;氟化MWCNT系统更均匀地分散在基质中,而更杂质地分散的羧化MWCNT可以妨碍反应性物质的迁移率并破坏局部等级上的反应化学计量。

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