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Fabrication and Deposition of Copper and Copper Oxide Nanoparticles by Laser Ablation in Open Air

DOI:10.3390/nano10020300 期刊:Nanomaterials 出版年份:2020 更新时间:2025-09-19 17:13:59
摘要: The proximity of the “post-antibiotic era”, where infections and minor injuries could be a cause of death, there are urges to seek an alternative for the cure of infectious diseases. Copper nanoparticles and their huge potential as a bactericidal agent could be a solution. In this work, Cu and Cu oxide nanoparticles were synthesized by laser ablation in open air and in argon atmosphere using 532 and 1064 nm radiation generated by nanosecond and picosecond Nd:YVO4 lasers, respectively, to be directly deposited onto Ti substrates. Size, morphology, composition and the crystalline structure of the produced nanoparticles have been studied by the means of field emission scanning electron microscopy (FESEM), high resolution transmission electron microscopy (HRTEM), the energy dispersive spectroscopy of X-rays (EDS), selected area electron diffraction (SAED) and X-ray diffraction (XRD). The UV-VIS absorbance of the thin layer of nanoparticles was also measured, and the antibacterial capacity of the obtained deposits tested against Staphylococcus aureus. The obtained deposits consisted of porous coatings composed of copper and copper oxide nanoparticles interconnected to form chain-like aggregates. The use of the argon atmosphere contributed to reduce significantly the formation of Cu oxide species. The synthesized and deposited nanoparticles exhibited an inhibitory effect upon S. aureus.
作者: M. Fernández-Arias,M. Boutinguiza,J. del Val,A. Riveiro,D. Rodríguez,F. Arias-González,J. Gil,J. Pou
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Investigating the synthesis and deposition of copper and copper oxide nanoparticles by laser ablation in open air and in argon atmosphere for antibacterial applications.

Crystalline copper and copper oxide nanoparticles have been obtained by means of a laser ablation technique in gaseous media, using two different nanosecond Nd:YVO4 lasers. The antibacterial assay proved the strong antibacterial activity of the obtained copper nanoparticles against S. aureus. The best inhibitory effects are provided by copper nanoparticles obtained by laser ablation in argon with 1064 nm of wavelength.

The adhesion between titanium and nanoparticles seems to be weak due to the small contact surface between them. The study also notes the influence of titanium surface topography on bacterial adhesion, which could affect the reproducibility of the antibacterial assay results.

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