Alrebdi Tahani A, Ahmed Hoda A, Alkallas Fatemah H, Pashameah Rami Adel, Alrefaee Salhah H, Alsubhe Emaan, Mostafa Ayman M, Mwafy Eman A
Department of Physics, College of Science, Princess Nourah bint Abdulrahman University, P.O. Box 84428, Riyadh 11671, Saudi Arabia.
Department of Chemistry, Faculty of Science, Cairo University, Cairo 12613, Egypt.
Membranes (Basel). 2022 Jul 24;12(8):732. doi: 10.3390/membranes12080732.
Zinc oxide thin film (ZnO thin film) and a silver-doped zinc oxide nanocomposite thin film (Ag/ZnO thin film) were prepared by the technique of the pulsed laser deposition at 600 °C to be applicable as a portable catalytic material for the removal of 4-nitrophenol. The nanocomposite was prepared by making the deposition of the two targets (Zn and Ag), and it was analyzed by different techniques. According to the XRD pattern, the hexagonal wurtzite crystalline form of Ag-doped ZnO NPs suggested that the samples were polycrystalline. Additionally, the shifting of the diffraction peaks to the higher angles, which denotes that doping reduces the crystallite size, illustrated the typical effect of the dopant Ag nanostructure on the ZnO thin film, which has an ionic radius less than the host cation. From SEM images, Ag-doping drastically altered the morphological characteristics and reduced the aggregation. Additionally, its energy band gap decreased when Ag was incorporated. UV spectroscopy was then used to monitor the catalysis process, and Ag/ZnO thin films had a larger first-order rate constant of the catalytic reaction K than that of ZnO thin film. According to the catalytic experiment results, the Ag/ZnO thin film has remarkable potential for use in environmentally-favorable applications.
采用脉冲激光沉积技术在600℃制备了氧化锌薄膜(ZnO薄膜)和银掺杂氧化锌纳米复合薄膜(Ag/ZnO薄膜),用作去除4-硝基苯酚的便携式催化材料。通过沉积两个靶材(Zn和Ag)制备了该纳米复合材料,并用不同技术对其进行了分析。根据XRD图谱,银掺杂ZnO纳米颗粒的六方纤锌矿晶体结构表明样品为多晶。此外,衍射峰向高角度移动,这表明掺杂减小了微晶尺寸,说明了掺杂剂Ag纳米结构对ZnO薄膜的典型影响,其离子半径小于主体阳离子。从SEM图像可知,Ag掺杂极大地改变了形态特征并减少了团聚。此外,掺入Ag时其能带隙减小。然后用紫外光谱监测催化过程,Ag/ZnO薄膜的催化反应一级速率常数K比ZnO薄膜的大。根据催化实验结果,Ag/ZnO薄膜在环境友好型应用中具有显著的应用潜力。