Department of Applied Sciences, Gauhati University, Guwahati, 781014, India.
Department of Bioengineering and Technology, Gauhati University, Guwahati, 781014, India.
Sci Rep. 2020 Feb 13;10(1):2598. doi: 10.1038/s41598-020-59534-x.
The present study reports the antibacterial properties of flower-shaped ZnO (FZnO) microstructures and its comparison with that of hexagon-shaped bulk ZnO (BZnO) nanostructures. The samples are prepared successfully by wet chemical method and the surface morphologies, structures and size of the ZnO samples are characterized by X-ray diffraction (XRD), Scanning Electron Microscopy (SEM), Transmission Electron Microscopy (TEM), BET adsorption isotherm, and Photoluminescence (PL) Spectroscopy. The SEM and TEM images of the sample have confirmed flower-shaped structure of the ZnO. The materials are also analyzed by using an innovative tool called Lacunarity, a nonlinear dynamical (NLD) tool for proper understanding of the inherent surface properties of the particles formed, comparing the results estimated with the BET results obtained, thereby confirming our proposition to use it as an important parameter in predictive models. In this new approach, geometry of the surface structure is being associated with biological properties, in order to come up with easier ways to identify materials for any such applications where rich surface structure is desired. The photocatalytic activity of the flower-shaped material is carried out to find out its optical properties as another marker for confirming the antimicrobial activities. It has been reported for the first time that the prominent antibacterial activities are favoured by the FZnO microstructure having lesser Lacunarity, significantly better than its bulk counterpart, for inhibiting gram negative - Escherichia coli microorganism.
本研究报告了花状 ZnO(FZnO)微结构的抗菌性能,并将其与六方块状 ZnO(BZnO)纳米结构进行了比较。采用湿法化学法成功制备了样品,并通过 X 射线衍射(XRD)、扫描电子显微镜(SEM)、透射电子显微镜(TEM)、BET 吸附等温线和光致发光(PL)光谱对 ZnO 样品的表面形貌、结构和尺寸进行了表征。SEM 和 TEM 图像证实了 ZnO 的花状结构。还使用一种称为空隙度的创新工具对材料进行了分析,这是一种用于适当理解形成颗粒固有表面特性的非线性动力学(NLD)工具,将估计结果与 BET 结果进行比较,从而证实了我们提出的将其用作预测模型中的重要参数的主张。在这种新方法中,表面结构的几何形状与生物特性相关联,以便为任何需要丰富表面结构的应用找到识别材料的更简单方法。对花状材料的光催化活性进行了研究,以发现其光学性质,作为确认抗菌活性的另一个标志物。据报道,FZnO 微结构的抗菌活性明显优于其块状对应物,这是首次报道其具有较小空隙度的花状结构有利于抑制革兰氏阴性 - 大肠杆菌微生物,这是首次报道。