首页> 外文期刊>Journal of Applied Polymer Science >Phosphonium-Based Layered Silicate-Poly(ethylene terephthalate) Nanocomposites: Stability, Thermal and Mechanical Properties
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Phosphonium-Based Layered Silicate-Poly(ethylene terephthalate) Nanocomposites: Stability, Thermal and Mechanical Properties

机译:磷基层状硅酸酯-聚对苯二甲酸乙二醇酯纳米复合材料:稳定性,热学和机械性能

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PET-clay nanocomposites were prepared using alkyl quaternary ammonium and phosphonium modified clays by melt-mixing at 280 degrees C using a micro twin screw extruder. The latter clays were prepared by synthesizing phosphonium surfactants using a simple one-step method followed by a cation exchange reaction. The onset temperature of decomposition (T-onset) for phosphonium clays (>300 degrees C) was found to be significantly higher than that of ammonium clays (around 240 degrees C). The clay modified with a lower concentration (0.8 meq) of phosphonium surfactant showed a higher T-onset as compared to the clay modified with a higher concentration (1.5 meq) of surfactants. Nanocomposites prepared with octadecyltriphenyl phosphonium (C18P) modified clay showed a higher extent of polymer intercalation as compared with benzyltriphenylphosphonium (BTP) and dodecyltriphenyl-phosphonium (C12P) modified clays. The nanocomposites prepared with ammonium clays showed a significant decrease in the molecular weight of PET during processing due to thermal degradation of ammonium surfactants. This resulted in a substantial decrease in the mechanical properties. The molecular weight of PET was not considerably reduced during processing upon addition of phosphonium clay. The nanocomposites prepared using phosphonium clays showed an improvement in thermal properties as compared with ammonium clay-based nanocomposites. T-onset increased significantly in the phosphonium clay-based nanocomposites and was higher for nanocomposites which contained clay modified with lower amount of surfactant. The tensile strength decreased slightly; however, the modulus showed a significant improvement upon addition of phosphonium clays, as compared with PET. Elongation at break decreased sharply with clay.
机译:使用烷基季铵和phospho改性的粘土,通过使用微型双螺杆挤出机在280摄氏度下熔融混合,来制备PET粘土纳米复合材料。后者的粘土是通过使用简单的一步方法合成phospho表面活性剂,然后进行阳离子交换反应而制备的。发现phospho粘土的分解起始温度(T起始)(> 300摄氏度)明显高于铵粘土的分解起始温度(约240摄氏度)。与用较高浓度(1.5meq)的表面活性剂改性的粘土相比,用较低浓度(0.8meq)的surfactant表面活性剂改性的粘土显示出较高的T-起始。与十八烷基三苯基phosph(BTP)和十二烷基三苯基-(C12P)改性的粘土相比,用十八烷基三苯基phospho(C18P)改性的粘土制备的纳米复合材料表现出更高的聚合物插层度。由于铵表面活性剂的热降解,用铵粘土制备的纳米复合材料在加工过程中显示出PET分子量的显着降低。这导致机械性能的显着降低。在加入of粘土的过程中,PET的分子量没有显着降低。与基于铵粘土的纳米复合材料相比,使用phospho粘土制备的纳米复合材料显示出热性能的改善。在磷化clay粘土基纳米复合材料中,T起始值显着增加,而对于含有经表面活性剂含量较低的粘土改性的纳米复合材料,T起始值则更高。拉伸强度略有下降;然而,与PET相比,添加phospho粘土后的模量显示出显着的改善。粘土的断裂伸长率急剧下降。

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