Shengzi Li, Yu Ren, Xiaochen Chang, Jiamin Zhao, Zhengguo Wu, Yonghua Zheng
Ordinary nanocellulose films suffer from poor barrier properties, rendering them ineffective at preventing microbial invasion of food. Herein, double-embedded modified silica/copper nanoparticles/E2H preservative (NE) was obtained by in-situ immobilized copper nanoparticles (CuNPs) and simultaneously loading trans-2-hexenal (E2H) onto modified hollow mesoporous silica through imine bonds and pore channels. Subsequently, a high-barrier nanocellulose-based film (NE/CNF) capable of sustained release of copper active factors and E2H was developed by integrating the NE preservative with nanocellulose. The results demonstrate that modified silica exhibits controlled-release effects on both active factors: the cumulative release of E2H reached 77.98% within 7 days, while that of copper active factors reached 0.67% over 15 days. Benefiting from this controlled-release design, NE/CNF film has excellent antibacterial and antioxidant activities. Additionally, NE/CNF films possess excellent mechanical and barrier properties, especially showing a very low oxygen transmission rate (0.388 10-8 g/s·m2). Therefore, NE/CNF films demonstrate effective preservation performance on cherries, significantly extending their shelf life to 12 days at room temperature.