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Improvement in gas permeability of biaxially stretched PET films blended with high barrier polymers: The role of chemistry and processing conditions

机译:与高阻隔性聚合物共混的双轴拉伸PET膜的透气性改善:化学和加工条件的作用

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Improvement in oxygen gas barrier properties of polyester/polyamide blends used in packaging industry is the main objective of the present study. For this purpose poly(ethylene terephthalate) (PET)/poly(m-xylene adipamide) (nylon-MXD6) (95/5 w/w) and poly(ethylene terephthalate-co-isophthalate) copolymer (PETI)/MXD6 (95/5 w/w) blends have been prepared with a PET copolymer which consists of 5 wt.% sodium sulfonated isophthalate (PET-co-5SIPA) as compatibilizer and a carboxyl-terminated polybutadiene (CTPB) as filler by using a co-rotating intermeshing twin screw extruder. The effects of chemical architecture and morphology on oxygen gas permeability and processability were analyzed by using a range of characterization techniques including differential scanning calorimetry (DSC) scanning electron microscopy (SEM), oxygen gas permeability analyzer, and a special computer controlled uniaxial stretching system that provides real-time measurement of true stress, true strain and birefringence. The morphological analysis revealed that PETco-5SIPA was an effective compatibilizer for both PET/MXD6 and PETI/MXD6 blends. DSC analysis and spectral-birefringence technique were used to understand the thermal and stress-induced crystallization behavior of the blends. Morphological analysis of the films after biaxial stretching indicated that the spherical nylon phase was converted to 75 nm thick disks during stretching (aspect ratio L/W = 6) that creates a tortuous pathway for oxygen ingress. Stretching enhanced the barrier properties of PET/MXD6 and PETI/MXD6 blends.
机译:用于包装工业的聚酯/聚酰胺共混物的氧气阻隔性能的改善是本研究的主要目的。为此,聚对苯二甲酸乙二酯(PET)/聚对二甲苯己二酰胺(尼龙-MXD6)(95/5 w / w)和聚对苯二甲酸乙二酯-共间苯二甲酸乙二酯)共聚物(PETI)/ MXD6(95 / 5 w / w)的共混物已由PET共聚物制备,该共聚物由5 wt。%的磺化间苯二甲酸钠(PET-co-5SIPA)作为增容剂和羧基端基的聚丁二烯(CTPB)作为填充剂,使用同向旋转互相啮合的双螺杆挤出机。通过使用一系列表征技术,包括差示扫描量热法(DSC)扫描电子显微镜(SEM),氧气渗透率分析仪和特殊的计算机控制单轴拉伸系统,分析了化学结构和形态对氧气渗透率和可加工性的影响。提供真实应力,真实应变和双折射的实时测量。形态分析表明,PETco-5SIPA是PET / MXD6和PETI / MXD6共混物的有效增容剂。 DSC分析和光谱双折射技术用于了解共混物的热和应力诱导结晶行为。双轴拉伸后薄膜的形态学分析表明,球形尼龙相在拉伸过程中(长宽比L / W = 6)转变为75 nm厚的圆盘,从而形成了弯曲的氧气进入通道。拉伸增强了PET / MXD6和PETI / MXD6共混物的阻隔性能。

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