Chemical Engineering Program, Texas A&M University at Qatar, 23874, Education City, Doha, Qatar.
Department of Nanoscience and Technology, University of Calicut, Malappuram, Kerala, 673635, India.
Environ Sci Pollut Res Int. 2020 Oct;27(29):37036-37043. doi: 10.1007/s11356-020-09433-5. Epub 2020 Jun 23.
A facile solution processing strategy has been developed for the formation of Ag-modified ZnO microneedles at various calcination temperatures such as 300, 500, and 700 °C (AZ3, AZ5, and AZ7 respectively). Due to the heavy doping of AgNO, Ag ions have been incorporated in to the crystal lattice of ZnO in all the Ag-ZnO samples, which facilitated the formation of Ag-ZnO microneedle morphology with minimized defect states, and obviously, the plasmon peaks were observed due to Ag modification. These Ag-ZnO microneedle structures have been evaluated for their photocatalytic performance using methylene blue as model target contaminant and their activity was compared with the commercially available titania P25 photocatalyst. The photoactivity of all the Ag-ZnO microneedle structures was significantly higher than that of the commercially available P25 photocatalyst with the most active Ag-ZnO material having a photocatalytic activity ~ 1.4 times greater than that of P25 titania.
已经开发出了一种简便的溶液处理策略,用于在不同的煅烧温度下(如 300、500 和 700°C,分别标记为 AZ3、AZ5 和 AZ7)形成 Ag 修饰的 ZnO 微米针。由于 AgNO3 的重掺杂,Ag 离子已经掺入到所有 Ag-ZnO 样品的 ZnO 晶格中,这促进了 Ag-ZnO 微米针形态的形成,同时缺陷态最小化,并且由于 Ag 修饰,明显观察到等离子体峰。已经使用亚甲基蓝作为模型目标污染物来评估这些 Ag-ZnO 微米针结构的光催化性能,并将其活性与市售的 TiO2 P25 光催化剂进行了比较。所有 Ag-ZnO 微米针结构的光活性都明显高于市售 P25 光催化剂,最活跃的 Ag-ZnO 材料的光催化活性比 P25 TiO2 高约 1.4 倍。