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Preparation and antibacterial properties of titanium-doped ZnO from different zinc salts

机译:不同锌盐掺杂钛的ZnO的制备及其抗菌性能

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摘要

To research the relationship of micro-structures and antibacterial properties of the titanium-doped ZnO powders and probe their antibacterial mechanism, titanium-doped ZnO powders with different shapes and sizes were prepared from different zinc salts by alcohothermal method. The ZnO powders were characterized by X-ray powder diffraction (XRD), Fourier transform infrared spectroscopy (FT-IR), ultraviolet-visible spectroscopy (UV-vis), scanning electron microscopy (SEM), transmission electron microscopy (TEM), and selected area electron diffraction (SAED), and the antibacterial activities of titanium-doped ZnO powders on Escherichia coli and Staphylococcus aureus were evaluated. Furthermore, the tested strains were characterized by SEM, and the electrical conductance variation trend of the bacterial suspension was characterized. The results indicate that the morphologies of the powders are different due to preparation from different zinc salts. The XRD results manifest that the samples synthesized from zinc acetate, zinc nitrate, and zinc chloride are zincite ZnO, and the sample synthesized from zinc sulfate is the mixture of ZnO, ZnTiO3, and ZnSO4 · 3Zn (OH)2 crystal. UV-vis spectra show that the absorption edges of the titanium-doped ZnO powders are red shifted to more than 400 nm which are prepared from zinc acetate, zinc nitrate, and zinc chloride. The antibacterial activity of titanium-doped ZnO powders synthesized from zinc chloride is optimal, and its minimum inhibitory concentration (MIC) and minimum bactericidal concentration (MBC) are lower than 0.25 g L−1. Likewise, when the bacteria are treated by ZnO powders synthesized from zinc chloride, the bacterial cells are damaged most seriously, and the electrical conductance increment of bacterial suspension is slightly high. It can be inferred that the antibacterial properties of the titanium-doped ZnO powders are relevant to the microstructure, particle size, and the crystal. The powders can damage the cell walls; thus, the electrolyte is leaked from cells.
机译:为研究掺钛ZnO粉体的微观结构与抗菌性能的关系,并探讨其抑菌机理,采用醇热法从不同的锌盐中制备出不同形状和尺寸的掺钛锌粉体。 ZnO粉末通过X射线粉末衍射(XRD),傅立叶变换红外光谱(FT-IR),紫外可见光谱(UV-vis),扫描电子显微镜(SEM),透射电子显微镜(TEM)和选择区域电子衍射(SAED),并评估了掺钛的ZnO粉对大肠杆菌和金黄色葡萄球菌的抗菌活性。此外,通过SEM表征了所测试的菌株,并且表征了细菌悬液的电导率变化趋势。结果表明,由于由不同的锌盐制备而使粉末的形态不同。 XRD结果表明,由醋酸锌,硝酸锌和氯化锌合成的样品为锌矿ZnO,由硫酸锌合成的样品为ZnO,ZnTiO3和ZnSO4·3Zn(OH)2晶体的混合物。紫外可见光谱表明,掺钛的ZnO粉末的吸收边发生红移,移至400纳米以上,这是由乙酸锌,硝酸锌和氯化锌制得的。由氯化锌合成的掺钛ZnO粉体具有最佳的抑菌活性,其最低抑菌浓度(MIC)和最低杀菌浓度(MBC)均低于0.25 g L -1 。同样,当用氯化锌合成的ZnO粉末处理细菌时,细菌细胞受到的破坏最严重,并且细菌悬浮液的电导率增量略高。可以推断,掺杂钛的ZnO粉末的抗菌性能与微观结构,粒度和晶体有关。这些粉末会损坏细胞壁。因此,电解质从电池泄漏。

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