Paredes Patricio, Rauwel Erwan, Wragg David S, Rapenne Laetitia, Estephan Elias, Volobujeva Olga, Rauwel Protima
Institute of Forestry and Engineering Sciences, Estonian University of Life Sciences, Kreutzwaldi 56/1, 51014 Tartu, Estonia.
Department of Chemistry and SMN, University of Oslo, 0315 Oslo, Norway.
Nanomaterials (Basel). 2023 Apr 8;13(8):1311. doi: 10.3390/nano13081311.
Sunlight-driven photocatalytic degradation is an effective and eco-friendly technology for the removal of organic pollutants from contaminated water. Herein, we describe the one-step synthesis of Cu-CuO-CuN nanoparticle mixtures using a novel non-aqueous, sol-gel route and their application in the solar-driven photocatalytic degradation of methylene blue. The crystalline structure and morphology were investigated with XRD, SEM and TEM. The optical properties of the as-prepared photocatalysts were investigated with Raman, FTIR, UV-Vis and photoluminescence spectroscopies. The influence of the phase proportions of Cu, CuO and CuN in the nanoparticle mixtures on the photocatalytic activity was also investigated. Overall, the sample containing the highest quantity of CuN exhibits the highest photocatalytic degradation efficiency (95%). This enhancement is attributed to factors such as absorption range broadening, increased specific surface of the photocatalysts and the downward band bending in the p-type semiconductors, i.e., CuN and CuO. Two different catalytic dosages were studied, i.e., 5 mg and 10 mg. The higher catalytic dosage exhibited lower photocatalytic degradation efficiency owing to the increase in the turbidity of the solution.
阳光驱动的光催化降解是一种从受污染水中去除有机污染物的有效且环保的技术。在此,我们描述了使用新型非水溶胶 - 凝胶路线一步合成Cu - CuO - CuN纳米颗粒混合物及其在太阳能驱动的亚甲基蓝光催化降解中的应用。通过XRD、SEM和TEM研究了其晶体结构和形态。用拉曼光谱、傅里叶变换红外光谱、紫外 - 可见光谱和光致发光光谱研究了所制备光催化剂的光学性质。还研究了纳米颗粒混合物中Cu、CuO和CuN的相比例对光催化活性的影响。总体而言,含CuN量最高的样品表现出最高的光催化降解效率(95%)。这种增强归因于诸如吸收范围拓宽、光催化剂比表面积增加以及p型半导体(即CuN和CuO)中能带向下弯曲等因素。研究了两种不同的催化剂量,即5毫克和10毫克。由于溶液浊度增加,较高的催化剂量表现出较低的光催化降解效率。