Ouyang Shiqiang, Wang Feijie, Liu Yichi, Ma Shufeng, Li Mengdi, Wu Yiting, Hu Zihan, Zhang Shenzhuo, Wang Liqiang
Jiangsu Provincial Key Laboratory of Food Advanced Manufacturing Equipment Technology, School of Mechanical Engineering, Jiangnan University, Wuxi 214122, China.
School of Food Science and Technology, Jiangnan University, Wuxi 214122, China.
Int J Biol Macromol. 2024 Dec;282(Pt 6):137392. doi: 10.1016/j.ijbiomac.2024.137392. Epub 2024 Nov 12.
As environmental issues are hotly debated worldwide, finding suitable materials to replace petroleum-based materials as the next-generation packaging materials has become a research hotspot. Nanocellulose, as a biomass material widely available in nature, is favored for application in green packaging materials due to its environmentally friendly and bio-friendly characteristics. However, the unstable mechanical properties and strong hydrophilicity of nanocellulose limit its practical application in packaging materials. This paper starts with a discussion of nanocellulose-based packaging materials and focuses on methods to improve their mechanical and hydrophobic properties. The discussion on mechanical properties focuses on the contribution of carbon nanomaterials, which is then combined with hydrophobic modifications (including plant polyphenol modification, esterification, acetylation, in situ polymerization, etc.) to illustrate the impact on the performance of packaging materials in use. The relationship between the hydrophobic characteristics of packaging materials derived from nanocellulose and their comprehensive mechanical properties is meticulously elucidated. Furthermore, a theoretical framework is proposed, positing that enhancing the hydrophobicity of these materials can indirectly augment their mechanical attributes. This insight offers pivotal guidance for the advancement of next-generation, high-performance packaging materials based on nanocellulose.
随着环境问题在全球范围内受到激烈讨论,寻找合适的材料来替代石油基材料作为下一代包装材料已成为一个研究热点。纳米纤维素作为一种在自然界中广泛存在的生物质材料,因其环境友好和生物友好的特性而受到绿色包装材料应用的青睐。然而,纳米纤维素不稳定的机械性能和强亲水性限制了其在包装材料中的实际应用。本文从对纳米纤维素基包装材料的讨论入手,重点关注改善其机械性能和疏水性的方法。关于机械性能的讨论聚焦于碳纳米材料的贡献,然后结合疏水改性(包括植物多酚改性、酯化、乙酰化、原位聚合等)来说明对包装材料使用性能的影响。精心阐明了源自纳米纤维素的包装材料的疏水特性与其综合机械性能之间的关系。此外,还提出了一个理论框架,假定增强这些材料的疏水性可以间接增强其机械属性。这一见解为基于纳米纤维素的下一代高性能包装材料的发展提供了关键指导。