DICMaPI, Department of Chemical, Materials and Industrial Production Engineering, University of Naples Federico II, Naples, Italy; DiSt, Department of Structures for Engineering and Architecture, University of Naples Federico II, Naples, Italy.
Novel Materials and Nanotechnology Group, Institute of Agrochemistry and Food Technology (IATA), Spanish Council for Scientific Research (CSIC), Paterna, Spain.
Int J Biol Macromol. 2024 Apr;263(Pt 1):130210. doi: 10.1016/j.ijbiomac.2024.130210. Epub 2024 Feb 15.
Sustainable active food packaging is essential to reduce the use of plastics, preserve food quality and minimize the environmental impact. Humic substances (HS) are rich in redox-active compounds, such as quinones, phenols, carboxyl, and hydroxyl moieties, making them functional additives for biopolymeric matrices, such as poly(3-hydroxybutyrate-co-3-hydroxyvalerate) (PHBV). Herein, composites made by incorporating different amounts of HS into PHBV were developed using the electrospinning technology and converted into homogeneous and continuous films by a thermal post-treatment to obtain a bioactive and biodegradable layer which could be part of a multilayer food packaging solution. The morphology, thermal, optical, mechanical, antioxidant and barrier properties of the resulting PHBV-based films have been evaluated, as well as the antifungal activity against Aspergillus flavus and Candida albicans and the antimicrobial properties against both Gram (+) and Gram (-) bacterial strains. HS show great potential as natural additives for biopolymer matrices, since they confer antioxidant, antimicrobial, and antifungal properties to the resulting materials. In addition, barrier, optical and mechanical properties highlighted that the obtained films are suitable for sustainable active packaging. Therefore, the electrospinning methodology is a promising and sustainable approach to give biowaste a new life through the development of multifunctional materials suitable in the active bio-packaging.
可持续的活性食品包装对于减少塑料的使用、保持食品质量和最小化环境影响至关重要。腐殖质(HS)富含氧化还原活性化合物,如醌类、酚类、羧基和羟基,使其成为聚(3-羟基丁酸酯-共-3-羟基戊酸酯)(PHBV)等生物聚合物基质的功能添加剂。本文通过静电纺丝技术将不同量的 HS 掺入 PHBV 中,开发出复合材料,并通过热后处理将其转化为均匀连续的薄膜,从而获得具有生物活性和可生物降解的层,该层可成为多层食品包装解决方案的一部分。评估了所得 PHBV 基薄膜的形态、热学、光学、机械、抗氧化和阻隔性能,以及对黄曲霉和白色念珠菌的抗真菌活性以及对革兰氏阳性和革兰氏阴性细菌菌株的抗菌性能。HS 作为生物聚合物基质的天然添加剂具有很大的潜力,因为它们赋予了所得材料抗氧化、抗菌和抗真菌的特性。此外,阻隔、光学和机械性能表明,所获得的薄膜适合可持续的活性包装。因此,静电纺丝方法是一种有前途的可持续方法,通过开发适合活性生物包装的多功能材料,为生物废料赋予新的生命。