光纤PROES:通过光纤的相位分辨光学发射光谱,用于基于知识的等离子体工艺开发和监测。

IF 1.7 4区 工程技术 Q3 INSTRUMENTS & INSTRUMENTATION Review of Scientific Instruments Pub Date : 2025-03-01 DOI:10.1063/5.0244243
Florian Beckfeld, Matthias Janssen, Constantin Neuroth, Ihor Korolov, Julian Schulze
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引用次数: 0

摘要

高频技术低温等离子体在各种具有高度社会相关性的工业过程中发挥关键作用,例如半导体制造和气体转换。由于其复杂性,其操作的基本原理通常不被理解,并且过程开发是经验性的。然而,在精度和可再现性方面,工艺需求的持续增长需要以知识为基础的工艺开发和监控方法。用于此的诊断技术应是非侵入性的,测量时间短,设备成本低。了解等离子体过程的一个有价值的工具是用相分辨光学发射光谱(PROES)测量高能电子的时空分辨动力学,因为这些电子通过电离产生等离子体,通过中性气体解离产生活性自由基。然而,PROES通常是基于昂贵的强化电荷耦合器件(ICCD)相机来执行的,速度慢,并且需要大的窗口来光学进入等离子体,这在商业反应堆中是不存在的。为了克服这些限制,我们提出了这种诊断的改进版本,光纤PROES,它基于光纤与在光子计数模式下工作的光倍增管的组合。与传统的PROES相比,它只需要一个小的光纤接入端口,这在商业等离子体反应器中是常见的,大大降低了成本,提高了测量速度。通过比较基于两种PROES变体的几何对称电容耦合射频等离子体的测量结果,我们证明光纤PROES与基于iccd相机的经典PROES产生相似的结果。
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Fiber PROES: Phase resolved optical emission spectroscopy via optical fibers for knowledge-based plasma process development and monitoring.

High-frequency technological low-temperature plasmas play a key role in various industrial processes of high societal relevance, such as semiconductor manufacturing and gas conversion. Due to their complexity, the fundamentals of their operation are typically not understood and process development is done empirically. The continuous increase in process requirements with respect to precision and reproducibility, however, necessitates knowledge-based approaches toward process development and monitoring. Diagnostic techniques used for this should be non-invasive, have short measuring times, and have low equipment costs. A valuable tool to understand plasma processes is to measure the spatio-temporally resolved dynamics of energetic electrons with phase resolved optical emission spectroscopy (PROES), as these electrons generate the plasma through ionization and reactive radicals through dissociation of the neutral gas. However, PROES is typically performed based on expensive intensified charge-coupled device (ICCD) cameras, is slow, and requires large windows for optical access to the plasma, which do not exist in commercial reactors. To overcome these limitations, we present a modified version of this diagnostic, Fiber PROES, which is based on an optical fiber in combination with a photo-multiplier tube operated in a photon-counting mode. Compared to classical PROES, only a small fiber access port is required, which is typically available in commercial plasma reactors, the costs are strongly reduced, and the measurement speed is increased. We demonstrate that Fiber PROES yields similar results compared to classical ICCD-camera-based PROES by comparing measurements taken in geometrically symmetric capacitively coupled radio frequency plasma based on both PROES variants.

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来源期刊
Review of Scientific Instruments
Review of Scientific Instruments 工程技术-物理:应用
CiteScore
3.00
自引率
12.50%
发文量
758
审稿时长
2.6 months
期刊介绍: Review of Scientific Instruments, is committed to the publication of advances in scientific instruments, apparatuses, and techniques. RSI seeks to meet the needs of engineers and scientists in physics, chemistry, and the life sciences.
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