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首页> 外文期刊>New Journal of Chemistry >nnnEffects of thermal shrinkage temperatures and comonomers on thermal shrinkage of uniaxially-stretched PET copolymer films: a molecular dynamics simulation approach
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nnnEffects of thermal shrinkage temperatures and comonomers on thermal shrinkage of uniaxially-stretched PET copolymer films: a molecular dynamics simulation approach

机译:高轴拉伸宠物共聚物薄膜热收缩温度和共聚单体的鼻子切除型:分子动力学模拟方法

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摘要

A molecular dynamics simulation method was employed to investigate the effects of thermal shrinkage temperatures and comonomers on the thermal shrinkage of a uniaxially stretched PET copolymer model. Our investigation draws three primary conclusions. First, the thermal shrinkage ratio of the PET copolymer would strongly depend on the thermal shrinkage temperature, showing that the thermal shrinkage ratio is proportional to the thermal shrinkage temperature. It is inferred that the thermal shrinkage temperature provides kinetic energy to overcome the activation energy barrier for the molecular relaxation of the stretched polymer chains. Second, the introduction of a bulky comonomer limits the conformational rearrangement of the PET copolymer chain during the uniaxial stretching process owing to the limited chain flexibility. Therefore, it is confirmed that the thermal shrinkage can be tuned as a function of process conditions and comonomer type. Third, our analysis on the PET copolymer film at molecular levels further verifies that the trans-gauche transformation in the polymer backbone is the main factor for the thermal shrinkage of uniaxially stretched PET copolymer systems.
机译:采用分子动力学模拟方法来研究热收缩温度和共聚单体对单轴拉伸宠物共聚物模型的热收缩的影响。我们的调查提出了三个主要结论。首先,PET共聚物的热收缩比率将强烈取决于热收缩温度,表明热收缩率与热收缩温度成比例。推断热收缩温度提供动能,以克服拉伸聚合物链的分子弛豫的激活能量屏障。其次,庞大的共聚单体的引入限制了由于链柔性有限的扩链柔韧性期间PET共聚物链的构象重新排列。因此,证实可以作为工艺条件和共聚单体类型的函数调谐热收缩。第三,我们对分子水平的宠物共聚物膜的分析进一步验证了聚合物骨架中的反式 - Gauche转化是单轴拉伸宠物共聚物系统热收缩的主要因素。

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  • 来源
    《New Journal of Chemistry》 |2018年第7期|共7页
  • 作者

    Kim Ki Chul; Jang Seung Soon;

  • 作者单位

    Georgia Inst Technol Sch Mat Sci &

    Engn Computat NanoBio Technol Lab 771 Ferst Dr NW Atlanta GA 30332 USA;

    Georgia Inst Technol Sch Mat Sci &

    Engn Computat NanoBio Technol Lab 771 Ferst Dr NW Atlanta GA 30332 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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