Two–step pulsed laser ablation for preparation NiO@ZnO core-shell nanostructure and evaluation of their antibacterial activity

Hadeel J Imran, Kadhim A Aadim, Kadhim A Hubeatir
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Abstract

Abstract The excessive use of antibiotics led to the appearance of many strains of resistant bacteria, so it became necessary to use new antibacterial techniques. The aim of this work is the synthesis of novel core–shell NPs (NiO@ZnO) for antibacterial applications. A novel NiO@ZnO core–shell nanomaterial with a nanosize and uniform shape has been synthesised using the two-step pulsed laser ablation in liquid (PLAL) method. The first step is the laser ablation of the nickel target and the production of NiO NPs (core) colloidal, followed by the second step, the ablation of ZnO (shell) inside NiO NPs colloidal. The transmission electron microscopy results approve the formation of NiO@ZnO core–shell NPs with an average particle size of 54.4 nm for NiO particles and 60.7 nm for the NiO@ZnO core–shell. The antibacterial activity was examined against the pathogenic bacterial strains E. coli and S. aureus . We found that in the case of NiO, the inhibition rates were 62.4 and 59.2% for E. coli and S. aureus , respectively. While with NiO@ZnO NPs, this result was improved to 74.8% for E. coli and 71.2% for S. aureus . So, it was found that using the core–shell NPs increased the antibacterial activity of NPs, and the use of NiO NPs and core approved their effect as antibacterial agents due to their special properties. This behaviour is primarily because of the accumulation of the NiO@ZnO NPs on the surface of the bacteria, which leads to cytotoxic bacteria and a relatively increased ZnO, causing cell death. Furthermore, the use of a NiO@ZnO core–shell material will inhibit the bacteria from nourishing themselves on the culture medium. Therefore, core shelling metal oxides with another metal oxide or other material improves their antibacterial activity compared with using them alone.
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两步脉冲激光烧蚀法制备NiO@ZnO核壳纳米结构及其抗菌活性评价
摘要抗生素的过度使用导致了许多耐药菌的出现,因此有必要采用新的抗菌技术。这项工作的目的是合成新的核-壳NPs (NiO@ZnO)抗菌应用。采用两步脉冲激光烧蚀(PLAL)方法合成了一种具有纳米尺寸和均匀形状的新型NiO@ZnO核壳纳米材料。第一步是激光烧蚀镍靶,制备NiO NPs(核)胶体,第二步是烧蚀NiO NPs胶体内部的ZnO(壳)。透射电镜结果证实了NiO@ZnO核壳NPs的形成,NiO颗粒的平均粒径为54.4 nm, NiO@ZnO核壳NPs的平均粒径为60.7 nm。对病原菌大肠杆菌和金黄色葡萄球菌进行了抑菌活性测定。我们发现在NiO的情况下,对大肠杆菌和金黄色葡萄球菌的抑制率分别为62.4%和59.2%。而使用NiO@ZnO NPs时,大肠杆菌和金黄色葡萄球菌的这一结果分别提高到74.8%和71.2%。因此,我们发现使用核-壳NPs可以提高NPs的抗菌活性,并且NiO NPs和核的使用由于其特殊的性能而证实了它们作为抗菌剂的效果。这种行为主要是由于NiO@ZnO NPs在细菌表面的积累,导致细胞毒性细菌和相对增加的ZnO,导致细胞死亡。此外,使用NiO@ZnO核壳材料将抑制细菌在培养基上滋养自己。因此,与另一种金属氧化物或其他材料一起使用核壳金属氧化物比单独使用核壳金属氧化物提高了核壳金属氧化物的抗菌活性。
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来源期刊
Advances in Natural Sciences: Nanoscience and Nanotechnology
Advances in Natural Sciences: Nanoscience and Nanotechnology Engineering-Industrial and Manufacturing Engineering
CiteScore
3.80
自引率
0.00%
发文量
60
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