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Ethyl vanillin incorporated chitosan/poly(vinyl alcohol) active films for food packaging applications

机译:乙基香草蛋白掺入壳聚糖/聚(乙烯醇)食品包装应用的活性薄膜

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Ethyl vanillin (EV) incorporated chitosan (CS)/poly(vinyl alcohol)(PVA) blend films of various ratios (1:3, 1:1 and 3:1) were prepared by solvent casting technique. The effect of EV on the mechanical, structural, barrier, optical, food compatibility and antibacterial properties of the CS/PVA films were investigated. Mechanical properties showed that addition of EV increased tensile strength of CPEV-1, CPEV-2 and CPEV-3 films by 39 %, 45 % and 86 %, respectively compared to CS/PVA matrix. The FTIR results confirmed the formation of a Schiff base (C=N) and intermolecular hydrogen bonds between CS, PVA, and EV. Incorporation of EV into CS/PVA matrix (i.e. CPEV) showed the marked influence on the water vapor transmission rates (WVTRs) and oxygen transmission rates (OTRs) and exhibited excellent UV barrier capability. Surface morphology of CPEV blend films becomes smooth, homogeneous and dense as visualized through scanning electron microscopy. Contact angle measurements demonstrated the increased hydrophobicity of CPEV blend films with increasing CS content. Strong antibacterial activity was exhibited by CPEV-3 blend films against both E. coli (Escherichia coli) and S. aureus (Staphylococcus aureus) bacteria. The overall migration values of CPEV blend films were 10(3) times lower than acceptable limits of 10 mg/dm(2). Therefore, CPEV blends have good potential to be considered as sources of active films for food packaging applications.
机译:通过溶剂浇铸技术制备各种比率的乙基香草蛋白(EV)掺入的壳聚糖(Cs)/聚(乙烯醇)(PVA)共混膜(1:3,1:1和3:1)。研究了EV对CS / PVA薄膜的机械,结构,屏障,光学,食物相容性和抗菌性能的影响。与CS / PVA基质相比,机械性能显示CPEV-1,CPEV-2和CPEV-3膜的拉伸强度增加39%,45%和86%。 FTIR结果证实了CS,PVA和EV之间的席夫碱(C = N)和分子间氢键的形成。将EV掺入CS / PVA矩阵(即CPEV)显示对水蒸气传输速率(WVTRS)和氧传输速率(OTRS)的显着影响,并表现出优异的UV阻挡能力。 CPEV共混膜的表面形态变得光滑,均匀和致密,通过扫描电子显微镜观察。接触角测量显示CPEV共混膜的疏水性增加,随着CS含量的增加。 CPEV-3共混膜展示了强烈的抗菌活性,用于对大肠杆菌(大肠杆菌)和金黄色葡萄球菌(金黄色葡萄球菌)细菌。 CPEV共混膜的整体迁移值比10mg / dm(2)的可接受限度低10(3)倍。因此,CPEV共混物具有良好的潜力,可被视为用于食品包装应用的活性膜的来源。

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