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用于制备智能食品包装用活性聚乙烯醇/壳聚糖/酚类薄膜的木质纤维素和海洋资源生物炼制

Biorefinery of Lignocellulosic and Marine Resources for Obtaining Active PVA/Chitosan/Phenol Films for Application in Intelligent Food Packaging.

作者信息

Lopretti Correa Mary Isabel, Batista-Menezes Diego, Rezende Stephany Cunha de, Santamaria-Echart Arantzazu, Barreiro Maria-Filomena, Vega-Baudrit Jose Roberto

机构信息

Laboratory of Nuclear Techniques Applied to Biochemistry and Biotechnology, Nuclear Research Center, Faculty of Sciences, Universidad de la República, Mataojo 2055, Montevideo 11400, Uruguay.

National Nanotechnology Laboratory, National Center for High Technology, Pavas, San José 10109, Costa Rica.

出版信息

Polymers (Basel). 2024 Dec 31;17(1):82. doi: 10.3390/polym17010082.

Abstract

This study focuses on the extraction of phenolic compounds from the fermentation of and . The main goal was to synthesize phenol/chitosan microspheres and PVA films and characterized using FTIR, TGA, DSC, SEM, and mechanical tests to evaluate their physical, chemical, and mechanical properties for antimicrobial packaging applications. Homogeneous chitosan microspheres loaded with lignin-derived phenols were obtained, showing controlled release of antimicrobial compounds. The incorporation of phenolic microspheres into PVA/chitosan films resulted in significant improvements in mechanical properties: the films exhibited an elastic modulus of 36.14 ± 3.73 MPa, tensile strength of 12.01 ± 1.14 MPa, and elongation at break of 65.19 ± 5.96%. Thermal tests revealed that chitosan-containing films had enhanced thermal stability, with decomposition temperatures (T10) reaching 116.77 °C, compared to 89.28 °C for pure PVA. In terms of antimicrobial activity, PVA/chitosan/phenol films effectively reduced growth and milk acidity, maintaining quality for up to 96 h at room temperature, outperforming controls with acetic acid and HO. The films also inhibit yeast growth for one week. In conclusion, phenols can be effective antimicrobial agents in dairy, but their use should be monitored. Additionally, PVA/chitosan-phenol films offer biodegradability, antimicrobial properties, and sustainability for diverse applications.

摘要

本研究聚焦于从[具体物质1]和[具体物质2]的发酵过程中提取酚类化合物。主要目标是合成苯酚/壳聚糖微球和聚乙烯醇(PVA)薄膜,并通过傅里叶变换红外光谱(FTIR)、热重分析(TGA)、差示扫描量热法(DSC)、扫描电子显微镜(SEM)和力学测试对其进行表征,以评估它们在抗菌包装应用中的物理、化学和力学性能。获得了负载木质素衍生酚类的均匀壳聚糖微球,显示出抗菌化合物的控释效果。将酚类微球掺入PVA/壳聚糖薄膜中显著改善了力学性能:薄膜的弹性模量为36.14±3.73兆帕,拉伸强度为12.01±1.14兆帕,断裂伸长率为65.19±5.96%。热测试表明,含壳聚糖的薄膜具有更高的热稳定性,分解温度(T10)达到116.77℃,而纯PVA为89.28℃。在抗菌活性方面,PVA/壳聚糖/酚薄膜有效降低了[具体微生物]的生长和牛奶酸度,在室温下可将品质维持长达96小时,优于用乙酸和过氧化氢的对照物。这些薄膜还能抑制酵母生长达一周。总之,酚类在乳制品中可以是有效的抗菌剂,但应监测其使用情况。此外,PVA/壳聚糖-酚薄膜具有生物降解性、抗菌性能和可持续性,适用于多种应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c6aa/11723199/6a6c22c83cfc/polymers-17-00082-g001.jpg

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