Hanan Althikrallah, Ghayah M. Alsulaim, S. Alsharif, Kholoud M. Alnahdi
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引用次数: 0
摘要
光催化被认为是消除废水中有害有机污染物的简单、绿色和最佳策略。本文采用共沉淀法制备了基于纯铜和掺杂Sm的CuO/ZnO/CuMn2O4三元复合材料的新型广谱光催化剂。X 射线衍射结果证明了复合结构的形成。透射电子显微镜(TEM)图像显示,大多数颗粒呈球形,平均尺寸在 26-29 nm 之间。两种样品的光学特性表明,Sm 离子的加入大大提高了 CuO/ZnO/CuMn2O4 三元复合材料对可见光光谱的捕获能力。光催化研究证实,在掺杂 Sm 的 CuO/ZnO/CuMn2O4 催化剂存在下,50 分钟和 40 分钟后,分别有 97% 的诺氟沙星和 96% 的甲基绿污染物被光降解。总有机碳分析表明,掺杂 Sm 的 CuO/ZnO/CuMn2O4 催化剂将诺氟沙星和甲基绿转化为二氧化碳和水分子的矿化效率很高。在三个循环过程中,这种催化剂对诺氟沙星和甲基绿污染物的去除率很高。作为一种电介质储能材料,与纯 CuO/ZnO/CuMn2O4 复合材料相比,掺杂 Sm 的 CuO/ZnO/CuMn2O4 三元复合材料具有较大的介电常数值(主要在低频)和较低的介电损耗。
Preparation of New Sm-Doped CuO/ZnO/CuMn2O4 Tri-Composite for Photoremoval of Dissolved Organic Waste and Dielectric-Energy Storage
Photocatalysis is considered as simple, green, and the best strategy for elimination of hazardous organic contaminants from wastewater. Herein, new broad spectrum photocatalysts based on pure and Sm-doped CuO/ZnO/CuMn2O4 ternary composites were simply prepared by co-precipitation approach. The X-ray diffraction results proved the formation of a composite structure. The transmission electron microscope (TEM) images displayed that most particles have a spherical shape with average mean sizes within 26–29 nm. The optical properties of both samples signified that the addition of Sm ions significantly improves the harvesting of the visible light spectrum of CuO/ZnO/CuMn2O4 ternary composites. The photocatalytic study confirmed that 97% of norfloxacin and 96% of methyl green pollutants were photo-degraded in the presence of the Sm-doped CuO/ZnO/CuMn2O4 catalyst after 50 and 40 min, respectively. The total organic carbon analysis revealed the high mineralization efficiency of the Sm-doped CuO/ZnO/CuMn2O4 catalyst to convert the norfloxacin and methyl green to carbon dioxide and water molecules. During three cycles, this catalyst presented a high removal efficiency for norfloxacin and methyl green contaminants. As a dielectric energy storage material, the Sm-doped CuO/ZnO/CuMn2O4 ternary composite has large dielectric constant values, mainly at low frequencies, with low dielectric loss compared to a pure CuO/ZnO/CuMn2O4 composite.