Kumar A Naveen, Balakrishna M, Desai Usha, Rakshith R, Ambika K M, Soumya P, Ravikumar C R, Vadivu S Senthil, Naik Nithesh
Department of Physics, S.E.A College of Engineering and Technology, Bengaluru, Karnataka, 560049, India.
Department of Mathematics, S.E.A College of Engineering and Technology, Bengaluru, Karnataka, 560049, India.
Sci Rep. 2025 Jan 2;15(1):338. doi: 10.1038/s41598-024-82764-2.
ZnO-doped CuO nanocomposites (CuO-ZnO NPs) of 1, 3, and 5 mol% were prepared by the solution combustion method using ODH as a fuel (Oxlyl-hydrazide) at 500 °C and calcining at 1000 °C for two hours and the Structural, photocatalytic, and electrochemical properties were investigated by experimental and theoretical methods. X-ray diffraction (XRD) patterns revealed a crystallite size (D) range of 25 to 31 nm for pure CuO and 1, 3, and 5 mol% CuO-ZnO NPs. According to calculations, the optical energy band gap (Eg) of the NPs is between 2.1 and 2.5 eV. Under UV light irradiation, the photocatalytic degradation of CuO + 3%ZnO NPs on Congo Red (CR) and Methylene Blue (MB) dye was assessed under the influence of UV light. The degradation efficiency increased with the catalyst dosage (10 - 60 mg L). At a concentration of the catalyst of 60 mg, the degradation efficiency can even reached 70% after 120 min. The electrochemical properties of the prepared NPs were studied using cyclic voltammetry and electrochemical impedance spectroscopy (EIS). Solutions of glucose and ascorbic acid were effectively sensed using modified carbon paste electrodes. These innovative results can be considered for the expansion of novel resources to scale for dual applications in the areas of photocatalysis and sensors.
采用溶液燃烧法,以ODH(草酰肼)为燃料,在500℃下制备了1mol%、3mol%和5mol%的氧化锌掺杂氧化铜纳米复合材料(CuO-ZnO NPs),并在1000℃下煅烧两小时,通过实验和理论方法研究了其结构、光催化和电化学性能。X射线衍射(XRD)图谱显示,纯CuO以及1mol%、3mol%和5mol%的CuO-ZnO NPs的微晶尺寸(D)范围为25至31nm。根据计算,这些纳米颗粒的光学能带隙(Eg)在2.1至2.5eV之间。在紫外光照射下,评估了CuO + 3%ZnO NPs对刚果红(CR)和亚甲基蓝(MB)染料的光催化降解情况。降解效率随催化剂用量(10 - 60mg/L)的增加而提高。在催化剂浓度为60mg时,120分钟后降解效率甚至可达70%。使用循环伏安法和电化学阻抗谱(EIS)研究了所制备纳米颗粒的电化学性能。使用修饰的碳糊电极有效地检测了葡萄糖和抗坏血酸溶液。这些创新成果可用于扩展新型资源,以扩大其在光催化和传感器领域的双重应用规模。