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Polyurethane/functionalized-graphene nanocomposite films with enhanced weather resistance and gas barrier properties

机译:具有增强的耐候性和阻气性的聚氨酯/功能化石墨烯纳米复合薄膜

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摘要

This study explores the potential of graphene for improvement of weather resistance and helium gas barrier properties of thermoplastic polyurethane (PU) film. PU/functionalized-graphene nanocomposite (PGN) films were produced by solution master-batching and subsequent melt mixing, followed by compression molding, with varying concentrations (0-3 wt%) of graphene, which resulted in uniform dispersion and partial exfoliation of graphene-sheets in PU matrix. The helium gas barrier of nanocomposite films improved gradually with increasing graphene concentration, showing about 30% reduction in gas-permeability at 3 wt% graphene-loading. The tensile strength and stiffness of the nanocomposite films also increased significantly with increasing concentration of graphene. The prepared PGN films were exposed to accelerated artificial weathering conditions up to 300 h. Due to excellent UV absorption capability of graphene, the weather resistance of nanocomposite films improved significantly, resulting in lower photooxidative and carbonyl index. Best weather resistance in terms of retention in tensile and gas barrier properties was obtained with 2-3 wt% of graphene.
机译:这项研究探索了石墨烯改善热塑性聚氨酯(PU)薄膜的耐候性和氦气阻隔性能的潜力。 PU /功能化石墨烯纳米复合材料(PGN)膜是通过溶液母料和随后的熔融混合,然后压塑成型的,其中石墨烯的浓度不同(0-3 wt%),从而导致石墨烯的均匀分散和部分剥落-在PU矩阵中的表格。随着石墨烯浓度的增加,纳米复合膜的氦气阻隔性逐渐提高,在石墨烯负载量为3 wt%时,其气体渗透率降低了约30%。随着石墨烯浓度的增加,纳米复合膜的拉伸强度和刚度也显着增加。将制备的PGN薄膜暴露于加速的人工气候条件下长达300小时。由于石墨烯具有出色的紫外线吸收能力,纳米复合膜的耐候性显着提高,从而降低了光氧化和羰基指数。用2-3wt%的石墨烯获得了在拉伸和气体阻隔性能方面的最佳耐候性。

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