Drug Delivery Systems Excellence Center, Faculty of Pharmaceutical Sciences, Prince of Songkla University, Hat Yai, 90112 Songkhla, Thailand.
Department of Chemistry, Faculty of Science, Chulalongkorn University, Bangkok 10330, Thailand.
Int J Biol Macromol. 2024 Jan;255:128073. doi: 10.1016/j.ijbiomac.2023.128073. Epub 2023 Nov 14.
This work focused on the construction of bioactive packaging films based on carboxymethyl chitosan and poly(vinyl alcohol) (CMP) as polymeric matrix and fortified with chitin nanowhiskers, Cotylelobium lanceolatum phenolic extract (CL) and in situ synthesized nano selenium. Extensive morphological, microstructural, physical and mechanical analysis revealed that the nanofillers were well-dispersed and integrated into CMP matrix. Incorporation of the extract and nano selenium produced excellent UV blocking properties without seriously compromising the transparency of the composite (CMP/CNW/CLNS1) film. Moreover, blending of CMP with the filler materials significantly elevated (p < 0.05) the surface hydrophobicity (WCA by 35.4°), water barrier (by 53.86 %), tensile strength (from 29.35 to 33.09 MPa), elongation at break (from 64.28 to 96.48 %), and thermal properties of the resultant CMP/CNW/CLNS1 film, with concomitant reduction in water solubility and swellability. Furthermore, the CMP/CNW/CLNS films exhibited remarkable improvement in antioxidant properties. When used for packaging of peeled fresh garlic cloves, the CMP/CNW/CLNS1 film pouch, not the plain CMP or CMP/CNW film pouches, inhibited weight loss, oxidative browning, and the emergence of black mold on the packaged cloves. The developed CMP/CNW/CLNS1 film demonstrated enhanced capacity to safeguard the quality of packaged food and improved shelf life. Therefore, the present study suggests that incorporation of CNW/CLNS into carboxymethyl chitosan/PVA films is a suitable and facile strategy for the fabrication of films with improved mechanical, physico-chemical and functional properties with great potential for application as a sustainable active packaging material in the food industry.
本工作聚焦于构建基于羧甲基壳聚糖和聚乙烯醇(CMP)的生物活性包装膜,将其作为聚合物基质,并加入甲壳素纳米纤维、Cotylelobium lanceolatum 酚提取物(CL)和原位合成的纳米硒。广泛的形态学、微观结构、物理和机械分析表明,纳米填料均匀分散并整合到 CMP 基质中。提取物和纳米硒的加入产生了优异的紫外光阻断性能,而不会严重影响复合材料(CMP/CNW/CLNS1)膜的透明度。此外,CMP 与填充材料的共混显著提高了(p<0.05)表面疏水性(水接触角增加 35.4°)、水阻隔性(增加 53.86%)、拉伸强度(从 29.35 增加到 33.09 MPa)、断裂伸长率(从 64.28 增加到 96.48%)和所得 CMP/CNW/CLNS1 膜的热性能,同时降低了水溶性和溶胀性。此外,CMP/CNW/CLNS 薄膜表现出显著的抗氧化性能改善。当用于包装去皮新鲜大蒜瓣时,CMP/CNW/CLNS1 薄膜袋,而不是普通的 CMP 或 CMP/CNW 薄膜袋,抑制了包装蒜瓣的失重、氧化褐变和黑霉菌的出现。开发的 CMP/CNW/CLNS1 薄膜表现出增强的能力,能够保护包装食品的质量并延长保质期。因此,本研究表明,将 CNW/CLNS 掺入羧甲基壳聚糖/PVA 薄膜中是一种合适且简单的策略,可制造具有改善的机械、物理化学和功能特性的薄膜,具有作为食品工业中可持续活性包装材料的巨大应用潜力。