DeFENS, Department of Food, Environmental and Nutritional Sciences, Packaging Division, University of Milan , Via Celoria 2, I - 20133 Milan, Italy.
ACS Appl Mater Interfaces. 2012 Jul 25;4(7):3692-700. doi: 10.1021/am300784n. Epub 2012 Jul 13.
A new antifog coating made of pullulan is described in this work. The antifog properties are discussed in terms of wettability, surface chemistry/morphology, and by quantitative assessment of the optical properties (haze and transparency) before and after fog formation. The work also presents the results of antifog tests simulating the typical storage conditions of fresh foods. In these tests, the antifog efficiency of the pullulan coating was compared with that of two commercial antifog films, whereas an untreated low-density polyethylene (LDPE) film was used as a reference. The obtained results revealed that the pullulan coating behaved as a "wetting enhancer", mainly due to the low water contact angle (∼24°), which in turn can be ascribed to the inherent hydrophilic nature of this polysaccharide, as also suggested by the X-ray photoelectron spectroscopy experiments. Unlike the case of untreated LDPE and commercial antifog samples, no discrete water formations (i.e., droplets or stains) were observed on the antifog pullulan coating on refrigeration during testing. Rather, an invisible, continuous and thin layer of water occurred on the biopolymer surface, which was the reason for the unaltered haze and increased transparency, with the layer of water possibly behaving as an antireflection layer. As confirmed by atomic force microscopy analysis, the even deposition of the coating on the plastic substrate compared to the patchy surfacing of the antifog additives in the commercial films is another important factor dictating the best performance of the antifog pullulan coating.
本工作介绍了一种由普鲁兰制成的新型防雾涂层。从润湿性、表面化学/形貌以及雾形成前后光学性能(浊度和透明度)的定量评估方面讨论了防雾性能。该工作还介绍了模拟新鲜食品典型储存条件的防雾测试结果。在这些测试中,将普鲁兰涂层的防雾效率与两种商业防雾膜进行了比较,而未处理的低密度聚乙烯(LDPE)膜则用作参考。结果表明,普鲁兰涂层表现出“润湿增强剂”的行为,这主要归因于低水接触角(约 24°),这反过来又可以归因于这种多糖固有的亲水性,X 射线光电子能谱实验也证实了这一点。与未处理的 LDPE 和商业防雾样品的情况不同,在测试冷藏过程中,在防雾普鲁兰涂层上没有观察到离散的水形成(即水滴或污渍)。相反,在生物聚合物表面上发生了看不见的、连续的薄水层,这是浊度不变和透明度增加的原因,该水层可能起到抗反射层的作用。原子力显微镜分析证实,与商业膜中防雾添加剂的块状表面相比,涂层在塑料基底上的均匀沉积是决定防雾普鲁兰涂层最佳性能的另一个重要因素。