Department of Chemistry, College of Science, University of Ha'il, Ha'il 81451, Saudi Arabia.
Institute of Chemical Sciences, Gomal University, Dera Ismail Khan 29050, Pakistan.
Molecules. 2023 Feb 10;28(4):1705. doi: 10.3390/molecules28041705.
With the increasing demand for wastewater treatment and multidrug resistance among pathogens, it was necessary to develop an efficient catalyst with enhanced photocatalytic and antibacterial applications. The present study proposes a facile and green strategy for synthesizing zinc oxide (ZnO) decorated nickel (Ni) nanomaterials. The synthesized Ni/ZnO nanocomposite displays a high crystallinity and spherical morphology, which was systematically characterized by XRD, SEM, FT-IR, UV-visible spectroscopy, EDX, HRTEM, and XPS techniques. In addition, the bacteriological tests indicated that Ni/ZnO nanocomposite exhibits potent antibacterial activity against human pathogens, i.e., (), (), and (. The inhibition zone observed in light and dark conditions for was 16 (±0.3) mm and 8 (±0.4) mm, respectively, which confirms the high efficacy of the nanocomposite in the presence of light compared to dark conditions. The detailed inhibition mechanism of said bacterium and damage were also studied through fluorescence spectroscopy and SEM analysis, respectively. Evaluation of antioxidant activity based on free radical scavenging activity revealed that the Ni/ZnO nanocomposite effectively scavenges DPPH. In the photocatalytic performance, the Ni/ZnO nanocomposite exhibited a remarkable degradation ability under the optimized condition, which was attributed to their controllable size, high surface area, and exceptional morphology. Good selectivity, high photodegradation, and antibacterial activities and satisfactory hemolytic behavior of the as-prepared nanocomposite make them able to become a potential candidate for superior biological performance and environmental remediation.
随着对废水处理和病原体多药耐药性需求的增加,有必要开发一种具有增强光催化和抗菌应用的高效催化剂。本研究提出了一种简便且绿色的策略,用于合成氧化锌(ZnO)修饰的镍(Ni)纳米材料。所合成的 Ni/ZnO 纳米复合材料具有高结晶度和球形形态,这通过 XRD、SEM、FT-IR、UV-可见光谱、EDX、HRTEM 和 XPS 技术进行了系统表征。此外,细菌学测试表明,Ni/ZnO 纳米复合材料对人体病原体具有强大的抗菌活性,即 ()、 ()和 (。在光照和黑暗条件下,观察到对 的抑制区分别为 16(±0.3)mm 和 8(±0.4)mm,这证实了纳米复合材料在光照条件下的高效性,与黑暗条件相比。还通过荧光光谱和 SEM 分析分别研究了该细菌的详细抑制机制和损伤。基于自由基清除活性评估抗氧化活性表明,Ni/ZnO 纳米复合材料能有效地清除 DPPH。在光催化性能方面,Ni/ZnO 纳米复合材料在优化条件下表现出显著的降解能力,这归因于其可控的尺寸、高表面积和优异的形态。所制备的纳米复合材料具有良好的选择性、高光降解率和抗菌活性以及令人满意的溶血行为,使其成为具有优越生物性能和环境修复能力的潜在候选材料。