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Monitoring of Femtosecond Laser Micromachining Using Ultra-high Speed Photodiodes: The Effect of Feature Depth on the Optical Process Emission

材料科学 光电二极管 表面微加工 飞秒 激光器 光电子学 过程(计算) 光学 特征(语言学) 计算机科学 制作 物理 医学 哲学 病理 操作系统 替代医学 语言学
作者
Yildirim, Kerim,Nagarajan, Balasubramanian,Tjahjowidodo, Tegoeh,Castagne, Sylvie
出处
期刊:Journal of Laser Micro Nanoengineering [Japan Laser Processing Society]
被引量:1
标识
DOI:10.2961/jlmn.2024.03.2009
摘要

The femtosecond (fs) pulsed laser is a versatile tool to produce microstructures down to a few microns on all kinds of materials including metals, ceramics and polymers. Generally, the topog-raphy of the fabricated structures is characterized using ex-situ measurement techniques such as confocal microscopy or white light interferometry, which significantly increases the process cycle time. Besides, it is difficult to control the laser process parameters in real-time with offline char-acterization methods. To closed loop the fs laser micromachining (FLµM) process, an in-process sensing strategy is required. However, unlike for laser processing with continuous and short-pulsed lasers, the process monitoring for FLµM has not been fully explored. In this work, a monitoring system based on off-axis ultra-high speed photodiodes was integrated and applied to the detection of optical process emissions during FLµM of stainless steel. Three photodiodes, whose specifica-tions are described hereafter, were used. The reflected process radiation passes through a filter, with a specific wavelength range of visible (500-900 nm), laser beam reflection (1030 nm) and in-frared (1100-1700 nm), focused onto the photodiode with an amplifier circuit. FLµM of a single line ablation at different pulse energies and scanning passes were performed to study the effect of the feature depth on the off-axis photodiode-based monitoring. In addition, a high-speed spectrom-eter was implemented in the FLµM working station to capture the spectral distribution of the plasma emission. The characteristics of process optical emission, temporal evolution of the spec-trometer and photodiode signals, and the effects from laser machining factors were discussed. The proposed monitoring technique using optical emission-based sensor has the potential to facilitate the process control for femtosecond laser micromachining, which will ultimately result in in-creased productivity and quality.

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