Guangxi Key Laboratory of Petrochemical Resource Processing and Process Intensification Technology, School of Chemistry and Chemical Engineering, Guangxi University, Nanning 530004, China.
State Key Laboratory of New Textile Materials and Advanced Processing Technologies, Wuhan Textile University, Wuhan 430200, China.
J Colloid Interface Sci. 2022 Mar;609:188-199. doi: 10.1016/j.jcis.2021.11.155. Epub 2021 Nov 28.
The industrial wastewater contaminants including dyes and bacteria have caused serious environmental pollutions. Herein, ternary Ag/AgO/ZnO heterostructure decorating cellulose-chitosan films were constructed via in situ synthesis. Cellulose and chitosan dissolved in alkali/urea solvent and regenerated in ethylene glycol to form cellulose/chitosan nanofiber network, which was an ideal supporter for ZnO and Ag nanoparticles and beneficial for recycle usage. The hydroxyl groups of cellulose and chitosan chains exposed and were utilized for the synthesis of Ag particles, as well as ZnO nanoparticles by biomineralization. The Ag/AgO/ZnO decorating cellulose/chitosan (AZ@CC) films exhibited excellent antibacterial activity against Staphylococcus aureus and Escherichia coli. The width of inhibition zones around AZ@CC films reached 10.0-19.6 mm and 12.4-15.0 mm for S. aureus and E. coli, respectively. Moreover, AZ@CC films exhibited good photocatalytic activity against methyl orange (MO), almost 97% degradation of methyl orange (MO) within 50 min was achieved with the assistance of AZ@CC film. Importantly, the nanocomposite films exhibited excellent tensile strength and thermal stability. This facile and eco-friendly approach provided a new route to utilize cellulose and chitosan advantages for constructing multifunctional materials.
工业废水中的污染物包括染料和细菌,已造成严重的环境污染。在此,通过原位合成,构建了三元 Ag/AgO/ZnO 异质结构修饰的纤维素-壳聚糖膜。纤维素和壳聚糖溶解在碱/尿素溶剂中,并在乙二醇中再生,形成纤维素/壳聚糖纳米纤维网络,这是 ZnO 和 Ag 纳米粒子的理想载体,有利于回收利用。纤维素和壳聚糖链上的羟基暴露出来,并用于通过生物矿化合成 Ag 颗粒和 ZnO 纳米颗粒。修饰纤维素/壳聚糖(AZ@CC)的 Ag/AgO/ZnO 薄膜对金黄色葡萄球菌和大肠杆菌表现出优异的抗菌活性。AZ@CC 薄膜对金黄色葡萄球菌和大肠杆菌的抑菌圈宽度分别达到 10.0-19.6mm 和 12.4-15.0mm。此外,AZ@CC 薄膜对甲基橙(MO)具有良好的光催化活性,在 AZ@CC 薄膜的辅助下,MO 在 50min 内几乎完全降解。重要的是,该纳米复合材料薄膜具有优异的拉伸强度和热稳定性。这种简单且环保的方法为利用纤维素和壳聚糖的优势构建多功能材料提供了新途径。