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Fabrication of bio-nanocomposite films based on fish gelatin reinforced with chitosan nanoparticles

机译:基于壳聚糖纳米粒子增强的鱼明胶的生物纳米复合膜的制备

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The paper focuses on the synthesis of chitosan nanoparticles (CSNPs) by ionic gelation between chitosan (CS) and sodium tripolyphosphate (TPP) and subsequently its use as filler in a fish gelatin (FG) matrix to produce bio-nanocomposite films. The obtained particles exhibited a spherical shape with size range of 40-80 nm, and a positively charged surface with a zeta potential value of +10 mV. XRD results confirmed the cross-linking reaction between CS and TPP. SEM images showed that CSNPs could be well dispersed in FG polymer matrix at low content, while higher CSNPs loadings (8%, w/w) resulted in the aggregation of particles in the composites. FTIR spectroscopy results confirmed the interaction between CSNPs and FG through hydrogen bonding. The nucleating effect of the CSNPs was confirmed by DSC analysis. Results indicated that the addition of CSNPs caused remarkable increase in the tensile strength (TS) and elastic modulus (EM), which leading to stronger films as compared with individual FG films, but decreased the elongation at break (EAB). Furthermore, addition of CSNPs contributed to the significant decrease (p < 0.05) of water vapor permeability (WVP), leading to a 50% decline at 6% (w/w) filler. The light barrier measurements presented low values of transparency at 600 nm of the FG-based nanocomposite films, indicating that these films are very transparent (lower in transparency value) while they have excellent barrier properties against UV light. The results presented in this study show the feasibility of using bio-nanocomposite technology to improve the properties of biopolymer films based on FG. (C) 2014 Elsevier Ltd. All rights reserved.
机译:本文着重于通过壳聚糖(CS)和三聚磷酸钠(TPP)之间的离子凝胶化来合成壳聚糖纳米颗粒(CSNP),随后将其用作鱼明胶(FG)基质中的填料以生产生物纳米复合膜。所获得的颗粒呈现出球形,尺寸范围为40-80nm,并且带正电的表面的ζ电位值为+ 10mV。 XRD结果证实了CS和TPP之间的交联反应。 SEM图像表明CSNPs可以低含量很好地分散在FG聚合物基质中,而CSNPs的较高负载(8%,w / w)导致复合物中颗粒的聚集。 FTIR光谱结果证实了CSNP和FG之间通过氢键相互作用。通过DSC分析证实了CSNP的成核作用。结果表明,添加CSNPs会导致拉伸强度(TS)和弹性模量(EM)显着增加,与单个FG膜相比,膜强度更高,但断裂伸长率(EAB)降低。此外,添加CSNPs会导致水蒸气渗透率(WVP)显着降低(p <0.05),导致6%(w / w)填料含量下降50%。光栅测量结果表明,基于FG的纳米复合材料薄膜在600 nm处的透明度较低,这表明这些薄膜非常透明(透明度值较低),同时具有出色的抗紫外线性能。这项研究提出的结果表明,使用生物纳米复合技术改善基于FG的生物聚合物薄膜的性能是可行的。 (C)2014 Elsevier Ltd.保留所有权利。

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