ZnO/CuO纳米结构通过脉冲电沉积固定在Ni/Cu管状膜上,用于光催化和抗菌应用

Hrudaya Jyoti Biswal , Pandu R. Vundavilli , Kunal Mondal , Nagaraj P. Shetti , Ankur Gupta
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引用次数: 8

摘要

本文报道了用脉冲电沉积法制备镍和铜管基底,并在其上合成了ZnO/CuO纳米复合材料。通过场发射扫描电镜、x射线衍射、傅里叶变换红外光谱和紫外微分反射光谱分析,发现ZnO基体中CuO掺入量的系统变化和加工工艺对ZnO的结构、光学、光催化和抗菌性能都有影响。通过对亚甲基蓝(MB)染料在太阳照射下的降解,评价了光催化底物的修复能力。优化ZnO纳米棒中CuO的掺入,可在40 min内降解20 ppm的MB染料溶液,在95 min内降解更高浓度的50 ppm染料溶液。Ni和Cu电铸管作为衬底,不仅为ZnO/CuO纳米复合材料的生长提供了可重复使用的支撑框架,而且为ZnO/CuO纳米复合材料的生长提供了较大的表面积。本研究还探讨了上述底物对大肠杆菌的抑菌效果。因此,研究了ZnO/CuO复合纳米棒的Ni和Cu管状薄膜衬底,用于去除废水中的有机和生物污染物。
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ZnO/CuO nanostructures anchored over Ni/Cu tubular films via pulse electrodeposition for photocatalytic and antibacterial applications

In this work, we report the fabrication of Ni and Cu tubular substrates and the synthesis of ZnO/CuO nanocomposite on them through the process of pulse electrodeposition. The systematic variation in CuO incorporation in the ZnO matrix and the processing technique were noticed to affect the structural, optical, photocatalytic, and anti-bacterial properties, which are well in accordance with the Field Emission-Scanning Electron Microscope, X-ray Diffraction, Fourier transform Infrared Spectroscopy and UV-Differential reflectance spectroscopy results. The remediation capabilities of the photocatalytic substrates were assessed through the degradation of methylene blue (MB) dye under solar irradiation. Optimized CuO incorporation within the ZnO nanorods resulted in the degradation of a 20 ppm of MB dye solution within 40 min and a higher concentration of 50 ppm within 95 min. The Ni and Cu electroformed tubes as substrates provided not only a reusable supporting frame but also a large surface-area for the growth of ZnO/CuO nanocomposite. The current study also dealt with the anti-bacterial efficacy of the above-mentioned substrates against E.coli. Hence, the Ni and Cu tubular thin film substrates with nanorods of ZnO/CuO composite were explored for the removal of organic as well as biological contaminants from waste water.

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来源期刊
Materials Science for Energy Technologies
Materials Science for Energy Technologies Materials Science-Materials Science (miscellaneous)
CiteScore
16.50
自引率
0.00%
发文量
41
审稿时长
39 days
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