首页> 外文期刊>Applied clay science >Silane functionalization of sodium montmorillonite nanoclay and its effect on rheological and mechanical properties of HDPE/clay nanocomposites
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Silane functionalization of sodium montmorillonite nanoclay and its effect on rheological and mechanical properties of HDPE/clay nanocomposites

机译:蒙脱土钠纳米粘土的硅烷官能化及其对HDPE /粘土纳米复合材料流变和力学性能的影响

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The present research reveals novel results about the silane functionalization of sodium montmorillonite (Na-Mt) by comparing the interlayer space and thermal stability of the nanofiller at different initial silane concentrations. XRD and TGA results indicate an increased d(001) and a high thermal stability for the silane-modified Na-Mt, which makes it a promising nanofiller for polymer nanocomposites. The amounts of intercalation and chemical grafting are estimated from TGA results using equations developed in this work; the silane intercalation is found to be the highest (0.504 mmol/g clay) for 9 mmol/g clay initial silane concentration, which is consistent with the d(001)-value (22.6 angstrom). Intercalation increases with increase in initial silane concentration up to 9 mmol (intercalated amount approximate to 0.504 mmol/g clay), then decreases at higher concentrations, e.g., 15 mmol silane have an intercalated amount of 0.405 mmol/g clay. However, the chemical grafting value for 15 mmol silane is greater (0.18 mmol/g clay) relative to that of the 9 mmol silane initial concentration (0.15 mmol/g clay). This can be explained by the occurrence of the side reactions at the edges for 15 mmol silane, which reduces the intercalation amount. The rheological and tensile properties of HDPE/silane functionalized clay suggest that the storage modulus, damping factor and mechanical behavior of the composites depend on the clay nanofiller, as well as the nanocomposite preparation procedure (i.e. masterbatch technique). The tensile modulus showed similar to 15% enhancement for 85%HDPE/15%PEMA/2% modified clay over the pure polymer. TEM images revealed a well-dispersed clay structure for the HDPE/2 wt% modified-clay/PEMA nanocomposite that is prepared through the masterbatch technique.
机译:本研究通过比较纳米填料在不同初始硅烷浓度下的层间空间和热稳定性,揭示了蒙脱土钠(Na-Mt)硅烷功能化的新结果。 XRD和TGA结果表明,硅烷改性的Na-Mt具有更高的d(001)和较高的热稳定性,这使其成为用于聚合物纳米复合材料的有希望的纳米填料。使用这项工作开发的方程,从TGA结果估计插层和化学接枝的数量。对于9 m​​mol / g的粘土初始硅烷浓度,发现硅烷插层最高(0.504 mmol / g粘土),这与d(001)值(22.6埃)一致。插层随着初始硅烷浓度的增加而增加,最高可达9 mmol(插层量约为0.504 mmol / g粘土),然后在较高浓度下降低,例如15 mmol硅烷的插层量为0.405 mmol / g粘土。但是,相对于9 m​​mol硅烷初始浓度(0.15 mmol / g粘土),15 mmol硅烷的化学接枝值更大(0.18 mmol / g粘土)。对于15 mmol硅烷,在边缘处会发生副反应,这可以减少插层量,这可以解释。 HDPE /硅烷官能化粘土的流变和拉伸性能表明,复合材料的储能模量,阻尼系数和机械性能取决于粘土纳米填料以及纳米复合材料的制备程序(即母料技术)。与纯聚合物相比,85%HDPE / 15%PEMA / 2%改性粘土的拉伸模量显示出类似于15%的增强。 TEM图像显示,通过母料技术制备的HDPE / 2 wt%改性粘土/ PEMA纳米复合材料具有良好分散的粘土结构。

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