首页> 外文期刊>Journal of Applied Polymer Science >Barrier properties of poly(lactic acid)/cloisite 30B composites and their relation between oxygen permeability and relative humidity
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Barrier properties of poly(lactic acid)/cloisite 30B composites and their relation between oxygen permeability and relative humidity

机译:聚乳酸/景泰珐石30B复合材料的阻隔性能及其透氧性与相对湿度的关系

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摘要

Poly(lactic acid) based nanocomposite films were prepared by melt compounding and subsequent flat film extrusion. After characterizing the nanocomposites with the help of transmission electron microscopy and wide angle X-ray diffraction to estimate the nanoclay distribution in the matrix material, the oxygen and water vapor permeability of untreated and annealed nanocomposite films were analyzed. A reduction to 34 of both permeability values could be realized by the addition of 6 wt Cloisite 30B and subsequent annealing to realize maximum crystallinity. Experimental permeability as a function of nanoclay concentration was successfully described by the Tortuous Path Model. In addition, the correlation between oxygen permeability and relative humidity was analyzed for pure PLA and PLA based nanocomposite films. For both untreated films oxygen permeability decreased almost linearly between 0 and 96 RH to approximately 70 of the respective value for the dry sample. Annealed PLA films, on the other hand, showed a similar behavior up to 70 RH but an increase in oxygen permeation for higher moisture content. This is explained by the observed reduction in crystallinity generating more free volume, bringing the system closer to the amorphous case where permeability is generally higher. (C) 2016 Wiley Periodicals, Inc.
机译:通过熔融复合和随后的平膜挤出制备了聚乳酸基纳米复合薄膜。在透射电子显微镜和广角X射线衍射的帮助下对纳米复合材料进行表征,估计了基体材料中纳米粘土的分布,分析了未经处理和退火的纳米复合材料薄膜的氧和水蒸气渗透性。通过添加 6 wt % Cloisite 30B 并随后退火以实现最大结晶度,可以将两个磁导率值降低到 34%。通过曲折路径模型成功地描述了实验渗透率作为纳米粘土浓度的函数。此外,还分析了纯PLA和PLA基纳米复合薄膜的透氧率与相对湿度的相关性。对于两种未经处理的薄膜,透氧率在0%至96%RH之间几乎线性下降到干样品相应值的约70%。另一方面,退火后的PLA薄膜在高达70%RH时表现出类似的行为,但氧气渗透性增加,水分含量更高。这可以通过观察到的结晶度降低产生更多的自由体积来解释,使系统更接近磁导率通常较高的非晶态情况。(C) 2016 Wiley Periodicals, Inc.

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