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Novel composite films based on cellulose reinforced with chitosan and polyvinyl alcohol: Effect on mechanical properties and water vapour permeability

机译:基于壳聚糖和聚乙烯醇增强纤维素的新型复合薄膜:对机械性能和水蒸气渗透性的影响

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Novel composite films were prepared by dissolving microcrystalline cellulose (3-5% w/w) in NaOH/urea solution, followed by coagulation in acetic acid solution. The regenerated cellulose films were immersed in chitosan-polyvinyl alcohol solutions at concentrations of 0-1% w/w and 0-4% w/w, respectively. Tensile strength, percentage of elongation at break, Young's modulus and water vapour permeability were measured to assess the effect of each compound on the mechanical and barrier properties. Polynomial models were obtained to evaluate the effect of the formulation on the measured properties. The microstructure was analysed by scanning electron microscopy. Results showed tensile strength values in the range 27.75-78.48 MPa, similar to usual synthetic polymer films. Percentage of elongation at break ranged from 0.98 to 12.82%, increasing when polyvinyl alcohol and chitosan increased. Young's modulus ranged from 2727.04 to 4217.25 MPa, showing higher values than pure chitosan and polyvinyl alcohol films. The highest value was reached combining cellulose and polyvinyl alcohol without chitosan. The water vapour permeability (1.78.10(-11)-4.24.10(-11) g/m s Pa) showed 2 orders of magnitude higher than that of synthetic polymers, but lower than pure chitosan and polyvinyl alcohol films. Results showed that it is feasible to obtain cellulose-chitosan-polyvinyl alcohol composite films with improved mechanical properties and water vapour permeability.
机译:通过将微晶纤维素(3-5%w / w)溶解在NaOH /尿素溶液中,然后在乙酸溶液中凝结来制备新的复合膜。将再生纤维素膜浸入壳聚糖 - 聚乙烯醇溶液中,以0-1%w / w和0-4%w / w。测量突破,杨氏模量和水蒸气渗透率伸长率的伸长强度,以评估每种化合物对机械和屏障性质的影响。获得多项式模型以评估配方对测量性质的影响。通过扫描电子显微镜分析微观结构。结果表明,抗拉强度值在27.75-78.48MPa的范围内,类似于通常的合成聚合物薄膜。断裂伸长率的百分比范围为0.98至12.82%,当聚乙烯醇和壳聚糖增加时增加。杨氏模量从2727.04到4217.25MPa,显示比纯壳聚糖和聚乙烯醇薄膜更高的值。没有壳聚糖组合纤维素和聚乙烯醇的最高值。水蒸气渗透率(1.78.10(-11)-4.24.10(-11)g / m S pa)显示出比合成聚合物高2个数量级,但低于纯壳聚糖和聚乙烯醇薄膜。结果表明,获得具有改善的机械性能和水蒸气渗透性的纤维素 - 壳聚糖 - 聚乙烯醇复合膜是可行的。

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