College of Food Science and Technology, Nanjing Agricultural University, Nanjing 210095, China.
College of Food Science and Technology, Nanjing Agricultural University, Nanjing 210095, China.
Food Chem. 2024 Aug 1;448:139126. doi: 10.1016/j.foodchem.2024.139126. Epub 2024 Mar 28.
Uncontrolled antibacterial, insufficient barrier and low strength are the bottlenecks of food packaging applications. Herein, TaCT nanosheet as a template was used to prepare TaCT immobilized silver nanoparticles (TaCT-AgNPs), which was compounded with nanocellulose to obtain high-strength and high barrier controllable bactericidal nanocellulose-based bioplastic packaging (CTa-Ag). The results indicated that due to the hydrogen bonding between nanocellulose and TaCT, the bridging effect of QCS (quaternized chitosan) and the filling of TaCT-AgNPs, the CTa-Ag had tightly stacked microstructure, which endowed them with excellent mechanical properties (4.0 GPa), ultra-low oxygen permeability (0.009 cm/m·d·atm) and stable photothermal conversion efficiency. Importantly, the packaging exhibits the ability to control the release of antibacterial active ingredients. Moreover, the synergistic effects of controllable release of nano active factors, photothermal and photocatalysis in CTa-Ag gave it long-lasting antibacterial properties. This study brings new insights into the design and manufacture of multifunctional, controllable and long-lasting antibacterial bioplastic food packaging.
不受控制的抗菌性、不足的阻隔性和低强度是食品包装应用的瓶颈。在此,我们使用 TaCT 纳米片作为模板来制备 TaCT 固定化银纳米颗粒(TaCT-AgNPs),并将其与纳米纤维素复合,得到高强度和高阻隔可控杀菌纳米纤维素基生物塑料包装(CTa-Ag)。结果表明,由于纳米纤维素与 TaCT 之间的氢键、QCS(季铵化壳聚糖)的桥接作用以及 TaCT-AgNPs 的填充,CTa-Ag 具有紧密堆积的微观结构,赋予其优异的机械性能(4.0 GPa)、超低的氧气透过率(0.009 cm/m·d·atm)和稳定的光热转换效率。重要的是,该包装具有控制抗菌活性成分释放的能力。此外,CTa-Ag 中纳米活性因子的可控释放、光热和光催化的协同作用赋予其持久的抗菌性能。本研究为多功能、可控和持久抗菌生物塑料食品包装的设计和制造带来了新的思路。