Department of Food Technology and Nutrition, Lovely Professional University, Phagwara 144411, Punjab, India.
Department of Food Technology, Karpagam Academy of Higher Education (Deemed to be University), Coimbatore 641021, India.
Int J Biol Macromol. 2023 Jul 1;242(Pt 2):124805. doi: 10.1016/j.ijbiomac.2023.124805. Epub 2023 May 12.
Packaging is a potential way of keeping food products safe from various environmental pollutants, and biological, chemical, & physical deterioration. Hence, the demand for an effective antimicrobial active packaging material is increasing tremendously to improve the shelf-life of food products. Thus, we extracted nanocellulose from corn husks and developed a eugenol-incorporated biodegradable antimicrobial active packaging film. The extracted nanocellulose showed a particle size of 149.67 ± 3.56 nm and an overall surface charge of -20.2 mV ± 0.76 V. The film casting method is one of the promising methods to fabricate biodegradable films using plant-based biopolymers. Therefore, different concentrations of eugenol (0.5-5 % v/v) were incorporated to formulate the functional film (FF0.5-FF5) by employing the casting process. FF exhibited comparable tensile strength as compared to the control film (CF), however, FF5 showed the least tensile strength (85 MPa). Based on the mechanical characterization, the FF3 film sample was further selected for characterization. The morphological evaluation revealed that the surface of the film was smooth and non-porous with reduced moisture content and density. The film exhibited high thermal stability as the degradation occurred above 400 °C, indicating the strong hydrogen bonding between the hydroxyl groups of the film. The Fourier transform infrared spectroscopy analysis revealed the existence of -COOH vibration and COC stretching groups of cellulose and eugenol. The antimicrobial studies showed high efficacy against Staphylococcus aureus followed by Salmonella typhmurium, Pseudomonas aeruginosa, and Klebsiella pneumoniae bacteria. Overall, eugenol-incorporated nanocellulose-based biodegradable packaging film could be an excellent candidate as an alternative to active packaging material and provide an opportunity for the efficient utilization of corn husk.
包装是一种保持食品产品免受各种环境污染物、生物、化学和物理变质的潜在方法。因此,对有效抗菌活性包装材料的需求正在大幅增加,以延长食品产品的保质期。因此,我们从玉米皮中提取纳米纤维素,并开发了一种含有丁香酚的可生物降解抗菌活性包装膜。提取的纳米纤维素的粒径为 149.67±3.56nm,总表面电荷为-20.2mV±0.76V。膜铸造方法是使用植物基生物聚合物制造可生物降解薄膜的有前途的方法之一。因此,通过铸造工艺,将不同浓度的丁香酚(0.5-5%v/v)掺入到配方中,以制备功能膜(FF0.5-FF5)。FF 表现出与对照膜(CF)相当的拉伸强度,但 FF5 表现出最低的拉伸强度(85MPa)。基于力学特性,进一步选择 FF3 薄膜样品进行表征。形态评估表明,薄膜表面光滑,无孔,水分含量和密度降低。该薄膜表现出较高的热稳定性,因为在 400°C 以上降解,表明薄膜中羟基之间存在强氢键。傅里叶变换红外光谱分析表明存在纤维素和丁香酚的-COOH 振动和 COC 伸缩基团。抗菌研究表明,对金黄色葡萄球菌的抑菌效果最好,其次是伤寒沙门氏菌、铜绿假单胞菌和肺炎克雷伯氏菌。总的来说,含有丁香酚的纳米纤维素基可生物降解包装膜可以作为活性包装材料的替代品,为玉米皮的有效利用提供机会。