Anodic growth of copper oxide nanostructures in glow discharge

Q3 Materials Science
A. Breus, S. Abashin, I. Lukashov, O. Serdiuk
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引用次数: 1

Abstract

Purpose: Application of plasma glow discharge to copper oxide nanostructure growth is studied. The simplicity of the proposed technique may be beneficial for the development of new plasma reactors for large-scale production of diverse metal oxide nanostructures. Design/methodology/approach: Copper sample was placed on anode of a setup designed to ignite plasma glow discharge. The proposed approach allows eliminating the negative effects of ion bombardment, like sputtering and generation of defects on a surface of the growing nanostructures, but preserves the advantages of thermal growth. The growth process was explained in terms of thermal processes interaction occurring on a surface of the anode with the glow discharge plasma. Findings: Plasma treatment resulted in generation of reach and diverse nanostructures that was confirmed by SEM images. Nanowire-like, flower-like, anemone-like nanostructures and nanodisks composed into the nanoassemblies are observed; the nanostructures are associated with microbabbles on CuO layer. These findings allow concluding about the possible implementation of the proposed method in industry. Research limitations/implications: The main limitation is conditioned by the lack of heat supplied to the anode, and absence of independent control of the heat and ion fluxes; thus, the additional heater should be installed under the anode in order to expand the nomenclature of the nanospecies in the future studies. Practical implications: High-productivity plasma process in copper oxide nanostructures synthesis was confirmed in this research. It may be applied for field emitter and supercapacitor manufacturing. Originality/value: Oxide nanostructure synthesis is conducted by use of a simple and well-known glow discharge technique in order to expand the production yield and diversity of nanostructure obtained in the processes of thermal growth.
辉光放电中氧化铜纳米结构的阳极生长
目的:研究等离子体辉光放电在氧化铜纳米结构生长中的应用。该技术的简单性可能有助于开发用于大规模生产各种金属氧化物纳米结构的新型等离子体反应器。设计/方法/方法:将铜样品放置在用于点燃等离子体辉光放电装置的阳极上。提出的方法可以消除离子轰击的负面影响,如溅射和在生长的纳米结构表面产生缺陷,但保留了热生长的优点。根据阳极表面与辉光放电等离子体发生的热过程相互作用来解释生长过程。结果:等离子体处理导致了纳米结构的产生,并通过扫描电镜图像证实了这一点。观察到纳米线状、花状、海葵状纳米结构和纳米圆盘组成的纳米组件;纳米结构与CuO层上的微泡有关。这些发现使我们能够对所建议的方法在工业上的可能实施作出结论。研究局限/启示:主要局限于缺乏向阳极提供的热量,以及缺乏对热和离子通量的独立控制;因此,为了在未来的研究中扩大纳米物种的命名范围,应该在阳极下安装额外的加热器。实际意义:本研究证实了等离子体法制备氧化铜纳米结构的高生产率。可应用于磁场发射极和超级电容器的制造。原创性/价值:为了扩大热生长过程中获得的纳米结构的产量和多样性,利用一种简单而广为人知的辉光放电技术进行氧化物纳米结构的合成。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Archives of materials science and engineering
Archives of materials science and engineering Materials Science-Materials Science (all)
CiteScore
2.90
自引率
0.00%
发文量
15
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