Food Technology Department, Faculty of Engineering, Bina Nusantara University, Jakarta 11480, Indonesia.
Laboratory of Postharvest Science, Faculty of Agriculture, Kyushu University, W5-873,744, Motooka, Nishi-ku, Fukuoka-shi, Fukuoka 819-0395, Japan.
Int J Biol Macromol. 2024 Nov;280(Pt 2):135840. doi: 10.1016/j.ijbiomac.2024.135840. Epub 2024 Sep 20.
The potential alternative of exploring the development of nanocomposites through a single-molecule approach, such as combining chitosan nanoparticles (ChiNP) with chitosan (Chi), remains to be investigated. To maintain the insolubility of the ChiNP filler in the system, the protonation of weakly basic amino groups necessitates the pH of the coating solution above the pKa (6-6.5). This study aimed to evaluate the biofunctional properties improvements of Chi coatings incorporated with ChiNP as filler agents. The coating film forming solution comprised of 0.8 % Chi combined with varying concentrations (0 %, 0.1 %, 0.5 %, and 1 %) of ChiNP. The morphology of ChiNP was characterized via atomic force spectroscopy (AFM). Incorporating the ChiNP (1 %) significantly enhanced antifungal efficacy, i.e., an 88.28 % reduction in fungal activity compared with the control group, and a 65 % reduction compared with pure Chi against Botrytis cinerea. The incorporation of ChiNP improved the ultraviolet and visible light wavelengths, water vapor permeability, hydrophobicity, and thermal properties. Scanning electron microscopy and AFM were performed to assess the surface and internal microstructures of the coating. The findings of this study suggested that the nanocomposite coatings herein presented is potential for use in active packaging, especially in the context of preserving fresh fruit products.
通过单分子方法探索纳米复合材料的发展潜力,例如将壳聚糖纳米粒子(ChiNP)与壳聚糖(Chi)结合,这一方法仍有待研究。为了保持 ChiNP 填充剂在系统中的不溶性,需要将涂层溶液的 pH 值提高到 pKa(6-6.5)以上,以实现弱碱性氨基的质子化。本研究旨在评估 Chi 涂层中 ChiNP 作为填充剂的生物功能特性的改进。涂层成膜溶液由 0.8%Chi 与不同浓度(0%、0.1%、0.5%和 1%)的 ChiNP 组成。通过原子力光谱(AFM)对 ChiNP 的形态进行了表征。与对照组相比,添加 1%的 ChiNP 可显著提高抗真菌效果,即真菌活性降低 88.28%;与纯 Chi 相比,对灰葡萄孢的抑制率降低 65%。添加 ChiNP 提高了涂层对紫外线和可见光波长、水蒸气透过率、疏水性和热性能的阻隔性。通过扫描电子显微镜和 AFM 评估了涂层的表面和内部微观结构。本研究结果表明,本文所提出的纳米复合材料涂层具有用于活性包装的潜力,特别是在保护新鲜水果产品方面。