School of Materials and Chemical Engineering, Zhongyuan University of Technology, Zhengzhou, 450007, People's Republic of China.
Green Catalysis Center, College of Chemistry, Zhengzhou University, Zhengzhou, 450001, People's Republic of China.
Environ Sci Pollut Res Int. 2021 Sep;28(36):49880-49888. doi: 10.1007/s11356-021-14199-5. Epub 2021 May 4.
A new strategy for the wastewater treatment was proposed by combining polyvinylpyrrolidone-functionalized silver nanoparticles with reduced graphene oxide (AgNPs-PVP@rGO) as a visible light-triggered photoactive nanocomposite. The nanocomposite with enhanced photocatalytic degradation and photothermal antibacterial activity can simultaneously decrease the content of organic pollutants and bacteria in the wastewater under visible light irradiation. The efficiency of photocatalytic degradation can be significantly improved by the conjugation of AgNPs onto the rGO surface. The water solubility and dispersion of nanocomposite can be increased via PVP functionalization, without stirring during the photocatalytic process. Under the optimal synthesis condition, AgNPs-PVP@rGO has a photocatalytic degradation efficiency of 90.1% for rhodamine B, which is 6.9 and 1.8 times higher than that of polyvinylpyrrolidone-functionalized silver nanoparticles and rGO alone, respectively. More importantly, the degradation efficiency of optimal AgNPs-PVP@rGO sol on rhodamine B is significantly higher than that of its block suspension in the same amount, indicating that the sol with more specific surface area is conducive to the photocatalytic reaction. Meanwhile, the AgNPs-PVP@rGO with excellent photothermal activity can effectively inhibit the bacterial growth. This functional modification of graphene provides a new strategy for simultaneous treatment of multiple pollutants in wastewater. The AgNPs-PVP@rGO nanocomposites for simultaneous enhanced photocatalytic degradation and photothermal antibacterial activity by visible light.
一种新的废水处理策略是通过将聚乙烯基吡咯烷酮功能化的银纳米粒子与还原氧化石墨烯(AgNPs-PVP@rGO)结合作为可见光触发的光活性纳米复合材料来提出的。这种具有增强的光催化降解和光热抗菌活性的纳米复合材料可以在可见光照射下同时降低废水中有机污染物和细菌的含量。通过将 AgNPs 接枝到 rGO 表面,可以显著提高光催化降解的效率。通过 PVP 功能化可以增加纳米复合材料的水溶性和分散性,在光催化过程中无需搅拌。在最佳合成条件下,AgNPs-PVP@rGO 对罗丹明 B 的光催化降解效率达到 90.1%,分别是聚乙烯基吡咯烷酮功能化银纳米粒子和 rGO 单独使用的 6.9 倍和 1.8 倍。更重要的是,最佳 AgNPs-PVP@rGO 溶胶对罗丹明 B 的降解效率明显高于等量的其块状悬浮液,表明具有更大比表面积的溶胶有利于光催化反应。同时,AgNPs-PVP@rGO 具有优异的光热活性,可有效抑制细菌生长。这种对石墨烯的功能修饰为同时处理废水中的多种污染物提供了一种新策略。AgNPs-PVP@rGO 纳米复合材料可通过可见光同时增强光催化降解和光热抗菌活性。