Department of Physics, School of Electrical and Electronics Engineering, SASTRA Deemed University, Thirumalaisamudhram, Thanjavur 613401, India.
ACS Appl Bio Mater. 2024 Jun 17;7(6):3854-3864. doi: 10.1021/acsabm.4c00225. Epub 2024 May 31.
Nanotechnology offers an innovative application as an eco-friendly food packaging film fabricated along with a degradable active mixture (AM). The AM is an assortment of alloyed metal oxide nanoparticles (Ag-ZnO), citron powder (AA), and Curcuma peel powder (CPP). Alloyed nanoparticles (NPs) were observed to exhibit a hexagonal structure from the experimental X-ray diffraction. Compositional and morphological study of the NPs (22.69 nm) and AM (32 nm) was done using energy-dispersive X-ray spectroscopy (EDX), scanning electron microscopy (SEM), Fourier transform infrared (FTIR) spectroscopy, and ζ- potential was observed to be -14.7 mV, indicating the stability of NPs. The prepared film was observed to be more effective with antibacterial analysis against , exhibiting 72% of inhibition and antioxidant activity with IC: 51.56% using the 2,2 diphenyl-1-picrylhydrazyl (DPPH) assay. Film 1, Film 2, Film 3, and Film 4 were fabricated with the AM and observed to be perfectly encapsulated by PVA using XRD. FESEM images of the film exhibit the aggregation of NPs with biocomposites in perfect distribution. The mechanical properties such as Young's modulus, elongation at break, tensile strength, and ultimate tensile strength (UTS- 5.37 MPa) were experimented for the films. The degradation rate was observed to be 6.12% for film 1 using the soil burial method. The study emphasizes that NPs along with biocomposite upgrade the sustainability of the packaging film with improved mechanical and physicochemical properties. The synthesized film with biomaterials could be used as a "green" food package to store fruits, vegetables, and sweets in the food industry.
纳米技术提供了一种创新的应用,可作为环保型食品包装薄膜,与可降解的活性混合物 (AM) 一起制造。AM 是合金金属氧化物纳米粒子 (Ag-ZnO)、柠檬酸粉 (AA) 和姜黄皮粉 (CPP) 的混合物。实验 X 射线衍射表明,合金纳米粒子 (NPs) 呈现出六方结构。使用能量色散 X 射线光谱 (EDX)、扫描电子显微镜 (SEM)、傅里叶变换红外 (FTIR) 光谱对 NPs(22.69nm) 和 AM(32nm) 的组成和形态进行了研究,ζ-电位为-14.7mV,表明 NPs 的稳定性。抗菌分析表明,制备的薄膜对 具有更好的效果,显示出 72%的抑制率和 51.56%的抗氧化活性,使用 2,2-二苯基-1-苦基肼基 (DPPH) 测定法。用 AM 制备了 Film 1、Film 2、Film 3 和 Film 4,并使用 XRD 观察到它们被 PVA 完全包裹。薄膜的 FESEM 图像显示了 NPs 与生物复合材料的完美分布的聚集。对薄膜进行了杨氏模量、断裂伸长率、拉伸强度和极限拉伸强度 (UTS-5.37MPa) 等力学性能的实验。使用土壤掩埋法观察到 Film 1 的降解速率为 6.12%。该研究强调,纳米粒子与生物复合材料一起可提高包装膜的可持续性,同时改善机械和物理化学性能。用生物材料合成的薄膜可用于食品工业作为“绿色”食品包装,储存水果、蔬菜和甜食。