Yildiz Eda, Sumnu Gulum, Khwaldia Khaoula, Rathod Nikheel, Centobelli Piera, Kulawik Piotr, Kaddour Abderrahmane Ait, Dapcevic-Hadnadev Tamara, Ozogul Fatih
Department of Food Engineering, Middle East Technical University, Ankara, Turkey.
Laboratoire des Substances Naturelles, Institut National de Recherche et d'Analyse Physico-Chimique (INRAP), Sidi Thabet, Tunisia.
Compr Rev Food Sci Food Saf. 2025 Sep;24(5):e70280. doi: 10.1111/1541-4337.70280.
Microbial spoilage and oxidation are significant causes of food deterioration, contributing to food waste of up to 30%. To mitigate these losses, active food packaging is an effective solution. Considering the excellent properties of nanofibers produced by electrospinning, integrating active food packaging functionality with nanofiber technology offers an ideal approach enhancing preservation. This review provides a comprehensive overview of recent advancements in the field, covering nature of active ingredients, consumer-driven rationale for adopting active packaging, advantages and disadvantages of electrospinning compared to other packaging production methods, types of polymers suitable for use, potential areas of application, and relevant regulatory frameworks. Active packaging, particularly through electrospinning, offers unique benefits, such as a high surface-to-volume ratio, controlled release of active agents, and improved encapsulation efficiency compared to conventional packaging methods such as extrusion and dip-coating, which are examined in this study. Both natural and synthetic polymers, as well as their combinations, offer a wide range of applications, allowing for the incorporation of essential oils, phenolic compounds, and active nanoparticles to extend the shelf life of various food products. Following regulatory authorities, both EFSA and FDA have guidelines for the use of nanomaterials in food packaging. However, a major challenge to the industrial adoption of electrospinning is its low production capacity and the limited availability of commercially viable packaging solutions. Undoubtedly, electrospinning is expected to become the preferred method for producing food packaging in the future. Educating consumers and providing clear labeling can help overcome potential biases against active packaging. Most importantly, this transition could play a crucial role in reducing food waste.
微生物腐败和氧化是导致食品变质的重要原因,造成的食品浪费高达30%。为了减少这些损失,活性食品包装是一种有效的解决方案。考虑到静电纺丝生产的纳米纤维具有优异的性能,将活性食品包装功能与纳米纤维技术相结合为增强食品保鲜提供了一种理想的方法。本文综述了该领域的最新进展,涵盖活性成分的性质、采用活性包装的消费者驱动原理、与其他包装生产方法相比静电纺丝的优缺点、适用的聚合物类型、潜在的应用领域以及相关的监管框架。活性包装,特别是通过静电纺丝的活性包装,具有独特的优势,如高比表面积、活性剂的控释以及与挤出和浸涂等传统包装方法相比更高的封装效率,本研究对此进行了探讨。天然聚合物和合成聚合物及其组合都有广泛的应用,可加入精油、酚类化合物和活性纳米颗粒以延长各种食品的保质期。遵循监管机构的规定,欧洲食品安全局(EFSA)和美国食品药品监督管理局(FDA)都有关于纳米材料在食品包装中使用的指南。然而,静电纺丝在工业应用中的一个主要挑战是其低生产能力以及商业上可行的包装解决方案有限。毫无疑问,静电纺丝有望在未来成为生产食品包装的首选方法。对消费者进行教育并提供清晰的标签有助于克服对活性包装的潜在偏见。最重要的是,这种转变在减少食品浪费方面可能发挥关键作用。