Increasing the Efficiency of Multilayered Silicate Melt Incorporation into Starch-Based Polymeric Matrices

D. Dimonie, R. Grigorescu, B. Trică, C. Damian, Eugeniu Vasile, Roxana Trusca, Cristian-Andi Nicolae, Diana Constantinescu-Aruxandei, F. Oancea
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Abstract

This article compares two exfoliation options of multilayered silicate, one considering the action of shear stress and temperature during melt compounding and another takeing into account the action of the thermo-mechanical pretreatment of multilayered silicate in a plasticizer common to the starch and polyvinyl alcohol (PVOH), the two polymers from the compound. Increasing the action time of the shear stress and temperature during melt compounding proved to be an ineffective method for silicate exfoliation following the high degradability of starch and PVOH under thermo-mechanical conditions and the loss of hydration of the multilayered silicate under thermo-mechanical conditions. The obtained results prove that, by pretreating before embedding into the desired starch-PVOH matrix, it was possible to cancel the electrostatic attractions between the component lamellae of a multilayered silicate. During melt compounding with the two polymers, new attractions between the obtained lamellae and the polar groups of each polymer from the blend were settled, and so, without the usage of a liquid plasticizer, exfoliated intercalated nanocomposites were achieved. The improved properties and the practical importance of the new nanocomposites regards the obtaining of a non-degradable material that has a white color, better elastic properties and thermal stability, and a higher dissipation capacity of deformation energy.
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提高多层硅酸盐熔体融入淀粉基聚合物基质的效率
本文对多层硅酸盐的两种剥离方案进行了比较,一种方案考虑了熔融复合过程中剪切应力和温度的作用,另一种方案则考虑了多层硅酸盐在与淀粉和聚乙烯醇(PVOH)这两种聚合物共用的增塑剂中进行热机械预处理的作用。在热机械条件下,淀粉和聚乙烯醇(PVOH)具有很高的降解性,而在热机械条件下,多层硅酸盐会失去水合作用,因此在熔融复合过程中增加剪切应力的作用时间和温度被证明是一种无效的硅酸盐剥离方法。研究结果证明,在嵌入所需的淀粉-PVOH 基质之前进行预处理,可以消除多层硅酸盐各组分薄片之间的静电吸引力。在与两种聚合物进行熔融复合的过程中,所获得的薄片与混合物中每种聚合物的极性基团之间的新吸引力得到了解决,因此在不使用液体增塑剂的情况下,实现了剥离插层纳米复合材料。这种新型纳米复合材料的性能得到了改善,其实际意义在于获得了一种白色的不可降解材料、更好的弹性性能和热稳定性,以及更高的形变能量耗散能力。
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