Cai Jie, Zhang Die, Zhou Rui, Zhu Ruyi, Fei Peng, Zhu Zhen-Zhou, Cheng Shui-Yuan, Ding Wen-Ping
National R&D Center for Se-rich Agricultural Products Processing, Hubei Engineering Research Center for Deep Processing of Green Se-rich Agricultural Products, School of Modern Industry for Selenium Science and Engineering, Wuhan Polytechnic University, Wuhan 430023, P. R. China.
Key Laboratory for Deep Processing of Major Grain and Oil, Ministry of Education, Hubei Key Laboratory for Processing and Transformation of Agricultural Products, School of Food Science and Engineering, Wuhan Polytechnic University, Wuhan 430023, P. R. China.
J Agric Food Chem. 2021 May 5;69(17):5067-5075. doi: 10.1021/acs.jafc.1c00230. Epub 2021 Apr 12.
Starch-derived edible food films have great potential as biodegradable food packaging materials because they reduce the overuse of traditional petroleum-based plastic. Herein, we demonstrate a direct method of mass producing a pure starch food packaging film that consisted of starch nanofibers by using a temperature-assisted electrospinning technique without addition of any nonstarch components. To overcome the major issue of ultralow hydrophobicity of starch nanofibrous film (SNF), we used a facile and low-cost solution immersion approach to create a fiber coating of stearic acid (STA) inspired by biological organisms with superhydrophobic properties, such as lotus leaves. Hierarchical flower-like micronanostructures were obtained on SNF by controlled assembly of STA onto the surface of starch nanofibers. Benefiting from the effective formation of STA self-assembled lamella, the multiscale microstructure surface features, low surface energy, and enhancing thermal stability of SNF were obtained and confirmed to result in the variety of its hydrophobicity, which can be also tailored by simple controlling of the solution concentration of STA. Importantly, the STA-self-assembled coated SNF enabled water to roll freely in all directions, which is a crucial factor for self-cleaning. Our novel strategy based on self-assembly can guide development of bioinspired hydrophobic interfaces for starch-based films for edible hydrophobic materials.
淀粉基可食用食品薄膜作为可生物降解的食品包装材料具有巨大潜力,因为它们减少了传统石油基塑料的过度使用。在此,我们展示了一种直接大规模生产由淀粉纳米纤维组成的纯淀粉食品包装薄膜的方法,该方法采用温度辅助静电纺丝技术,无需添加任何非淀粉成分。为了克服淀粉纳米纤维薄膜(SNF)超疏水性能极低的主要问题,我们采用了一种简便且低成本的溶液浸泡方法,受具有超疏水特性的生物有机体(如荷叶)启发,在SNF表面形成硬脂酸(STA)纤维涂层。通过将STA可控地组装到淀粉纳米纤维表面,在SNF上获得了分级花状微米纳米结构。得益于STA自组装片层的有效形成,获得了SNF的多尺度微观结构表面特征、低表面能并提高了其热稳定性,证实这些因素导致了其多种疏水性能,还可以通过简单控制STA溶液浓度来调整。重要的是,STA自组装涂层的SNF能使水在各个方向自由滚动,这是自清洁的关键因素。我们基于自组装的新策略可为用于可食用疏水材料的淀粉基薄膜的仿生疏水界面开发提供指导。