Variable gaseous ion beams from plasmas driven by electromagnetic waves for nano-micro structuring: a tutorial and an overview of recent works and future prospects

IF 1.3 Q3 ORTHOPEDICS Plasma Research Express Pub Date : 2020-08-04 DOI:10.1088/2516-1067/aba07c
S. Maurya, S. Bhattacharjee
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引用次数: 1

Abstract

A compact microwave plasma has been employed as an ion source for focused ion beam applications, that can provide non-toxic ions and facilitate rapid processing of materials without introducing any metallic contamination. A variety of microstructures with high aspect ratio (line width/depth) (∼100–1000) relevant to the energy and current regimes, are created on copper thin films using 26 keV Ne, Ar and Kr ion beams. A mathematical formulation is developed to calculate the impact of the ion beams, which act as energetic projectiles falling onto the target sample, by defining a new parameter called ‘current normalized force’ which is the total momentum transferred per unit time, normalized with the beam current. Capillary guiding of the plasma ion beams has demonstrated beam self-focusing which can be employed to further reduce the beam source size (plasma electrode aperture) for demagnification. Particle-in-cell (PIC) simulations are performed to interpret the experimental results of self-focusing. Hysteresis in beam current with extraction voltage (ion energy) is observed and the hysteresis area is used to calculate the dissipated charge from the beam during capillary transmission. The effect of plasma and beam parameters on focal dimensions has been investigated, and a unique feature of enhanced nonlinear demagnification is observed when the aperture size of the plasma electrode is reduced to below the Debye length. Submicron focusing of plasma ion beams is observed by minimizing the space charge effects and reducing the plasma electrode aperture (source size).
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用于纳米微结构的电磁波驱动等离子体中的可变气体离子束:教程以及最近工作和未来前景的概述
紧凑的微波等离子体已被用作聚焦离子束应用的离子源,它可以提供无毒离子,并促进材料的快速处理,而不会引入任何金属污染。利用26 keV的Ne、Ar和Kr离子束,在铜薄膜上产生了与能量和电流制度相关的具有高纵横比(线宽/深度)(~ 100-1000)的各种微结构。通过定义一个称为“电流归一化力”的新参数,开发了一个数学公式来计算离子束的影响,离子束作为高能抛射物落在目标样品上,该参数是单位时间内传递的总动量,与光束电流归一化。等离子体离子束的毛细引导已经证明了光束的自聚焦,这可以用来进一步减小光束源尺寸(等离子体电极孔径)以实现消放大。通过粒子池(PIC)模拟来解释自聚焦的实验结果。观察了光束电流随萃取电压(离子能量)的迟滞,利用迟滞面积计算了毛细管传输过程中光束的耗散电荷。研究了等离子体和光束参数对焦点尺寸的影响,当等离子体电极孔径减小到德拜长度以下时,观察到非线性退放大增强的独特特征。通过减小空间电荷效应和等离子体电极孔径(源尺寸),可以观察到等离子体离子束的亚微米聚焦。
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来源期刊
Plasma Research Express
Plasma Research Express Energy-Nuclear Energy and Engineering
CiteScore
2.60
自引率
0.00%
发文量
15
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