Processing and Properties of Polyhydroxyalkanoate/ZnO Nanocomposites: A Review of Their Potential as Sustainable Packaging Materials.

IF 4.7 3区 工程技术 Q1 POLYMER SCIENCE
Polymers Pub Date : 2024-10-30 DOI:10.3390/polym16213061
Mieke Buntinx, Chris Vanheusden, Dries Hermans
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引用次数: 0

Abstract

The escalating environmental concerns associated with conventional plastic packaging have accelerated the development of sustainable alternatives, making food packaging a focus area for innovation. Bioplastics, particularly polyhydroxyalkanoates (PHAs), have emerged as potential candidates due to their biobased origin, biodegradability, and biocompatibility. PHAs stand out for their good mechanical and medium gas permeability properties, making them promising materials for food packaging applications. In parallel, zinc oxide (ZnO) nanoparticles (NPs) have gained attention for their antimicrobial properties and ability to enhance the mechanical and barrier properties of (bio)polymers. This review aims to provide a comprehensive introduction to the research on PHA/ZnO nanocomposites. It starts with the importance and current challenges of food packaging, followed by a discussion on the opportunities of bioplastics and PHAs. Next, the synthesis, properties, and application areas of ZnO NPs are discussed to introduce their potential use in (bio)plastic food packaging. Early research on PHA/ZnO nanocomposites has focused on solvent-assisted production methods, whereas novel technologies can offer additional possibilities with regard to industrial upscaling, safer or cheaper processing, or more specific incorporation of ZnO NPs in the matrix or on the surface of PHA films or fibers. Here, the use of solvent casting, melt processing, electrospinning, centrifugal fiber spinning, miniemulsion encapsulation, and ultrasonic spray coating to produce PHA/ZnO nanocomposites is explained. Finally, an overview is given of the reported effects of ZnO NP incorporation on thermal, mechanical, gas barrier, UV barrier, and antimicrobial properties in ZnO nanocomposites based on poly(3-hydroxybutyrate), poly(3-hydroxybutyrate-co-3-hydroxyvalerate), and poly(3-hydroxybutyrate-co-3-hydroxyhexanoate). We conclude that the functionality of PHA materials can be improved by optimizing the ZnO incorporation process and the complex interplay between intrinsic ZnO NP properties, dispersion quality, matrix-filler interactions, and crystallinity. Further research regarding the antimicrobial efficiency and potential migration of ZnO NPs in food (simulants) and the End-of-Life will determine the market potential of PHA/ZnO nanocomposites as active packaging material.

聚羟基烷酸/氧化锌纳米复合材料的加工与性能:评述其作为可持续包装材料的潜力。
与传统塑料包装相关的环境问题不断升级,加速了可持续替代品的开发,使食品包装成为创新的重点领域。生物塑料,尤其是聚羟基烷酸酯(PHAs),因其生物来源、生物降解性和生物相容性而成为潜在的候选材料。聚羟基烷酸酯因其良好的机械性能和中等气体渗透性而脱颖而出,成为食品包装应用的理想材料。与此同时,氧化锌(ZnO)纳米粒子(NPs)也因其抗菌特性以及增强(生物)聚合物机械和阻隔特性的能力而备受关注。本综述旨在全面介绍有关 PHA/ZnO 纳米复合材料的研究。首先介绍食品包装的重要性和当前面临的挑战,然后讨论生物塑料和 PHA 的机遇。接下来讨论了氧化锌纳米粒子的合成、特性和应用领域,介绍了它们在(生物)塑料食品包装中的潜在用途。有关 PHA/ZnO 纳米复合材料的早期研究主要集中在溶剂辅助生产方法上,而新技术可以在工业升级、更安全或更廉价的加工、或在 PHA 薄膜或纤维的基体或表面更有针对性地加入 ZnO NPs 等方面提供更多可能性。在此,将解释如何使用溶剂浇铸、熔融加工、电纺丝、离心纤维纺丝、微型乳液封装和超声波喷涂来生产 PHA/ZnO 纳米复合材料。最后,综述了基于聚(3-羟基丁酸酯)、聚(3-羟基丁酸酯-co-3-羟基戊酸酯)和聚(3-羟基丁酸酯-co-3-羟基己酸酯)的 ZnO 纳米复合材料中 ZnO NP 的加入对热性能、机械性能、气体阻隔性、紫外线阻隔性和抗菌性能的影响。我们的结论是,可以通过优化氧化锌的掺入工艺以及氧化锌 NP 的固有特性、分散质量、基质-填料相互作用和结晶度之间复杂的相互作用来提高 PHA 材料的功能性。有关 ZnO NP 在食品(模拟物)和生命末期的抗菌效率和潜在迁移的进一步研究将决定 PHA/ZnO 纳米复合材料作为活性包装材料的市场潜力。
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来源期刊
Polymers
Polymers POLYMER SCIENCE-
CiteScore
8.00
自引率
16.00%
发文量
4697
审稿时长
1.3 months
期刊介绍: Polymers (ISSN 2073-4360) is an international, open access journal of polymer science. It publishes research papers, short communications and review papers. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. Polymers provides an interdisciplinary forum for publishing papers which advance the fields of (i) polymerization methods, (ii) theory, simulation, and modeling, (iii) understanding of new physical phenomena, (iv) advances in characterization techniques, and (v) harnessing of self-assembly and biological strategies for producing complex multifunctional structures.
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