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Effect of Diisocyanates as Compatibilizer on the Properties of BF/PBAT Composites by In Situ Reactive Compatibilization Crosslinking and Chain Extension

机译:二异氰酸酯作为增容剂通过原位反应增容交联和扩链对BF / PBAT复合材料性能的影响

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摘要

Due to the hydrophobic nature of poly (butylene terephthalate) (PBAT), and the hydrophilic nature of bamboo flour (BF), a BF/PBAT (50/50) blend shows low mechanical properties, and especially shows poor impact strength. In order to increase the interfacial adhesion between BF and PBAT, diisocyanate was used as a reactive compatibilizer to modify bamboo powder. A series of BF/PBAT composites were prepared by the method of mixing and melting in an internal mixer. After adding reactive compatibilizer 4,4′-methylenebis(phenyl isocyanate) (MDI), BF/PBAT (50/50) composites with high mechanical properties were successfully prepared. The tensile strength, elongation at break, and impact strength of the BF/MDI-2/PBAT composite with 2 wt % MDI content were increased by 1.9, 6.8, and 4.3 times respectively over the BF/PBAT blend without the added MDI. The higher toughening effect of MDI in BF/PBAT composites can be mainly ascribed to the improved interface bonding between BF and PBAT. The isocyanate group of MDI can react with the hydroxyl group on the BF surface and in situ formation of the carbamate group on the BF surface. The residual isocyanate can then react with the hydroxyl group of PBAT and form carbamate groups. The rheological behaviors demonstrate that addition of appropriate amounts of MDI, 1 wt % and 2 wt %, can promote the flowability of the molten BF/PBAT composites due to the decrease in interparticle interaction between bamboo powder and the increase in the thermal motion of the molecules.
机译:由于聚对苯二甲酸丁二醇酯(PBAT)的疏水性和竹粉(BF)的亲水性,BF / PBAT(50/50)混合物的机械性能低,尤其是冲击强度差。为了增加BF与PBAT之间的界面粘合力,使用二异氰酸酯作为反应性增容剂来改性竹粉。通过在内部混合器中混合和熔融的方法制备了一系列BF / PBAT复合材料。加入反应性增容剂4,4'-亚甲基双(异氰酸苯基酯)(MDI)后,成功制备了具有高机械性能的BF / PBAT(50/50)复合材料。与不添加MDI的BF / PBAT混合物相比,MDI含量为2 wt%的BF / MDI-2 / PBAT复合材料的拉伸强度,断裂伸长率和冲击强度分别提高了1.9、6.8和4.3倍。 BF / PBAT复合材料中MDI较高的增韧作用主要归因于BF和PBAT之间的界面键合改善。 MDI的异氰酸酯基可与BF表面上的羟基反应,并在BF表面上原位形成氨基甲酸酯基。然后,残留的异氰酸酯可与PBAT的羟基反应并形成氨基甲酸酯基团。流变行为表明,由于竹粉之间颗粒间相互作用的减少和竹炭粉热运动的增加,加入适量的MDI(1 wt%和2 wt%)可以促进熔融BF / PBAT复合材料的流动性。分子。

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