脉冲纳秒Nd:YVO4激光微加工金刚石、蓝宝石和熔融石英玻璃

3区 物理与天体物理 Q1 Materials Science
D. Waugh, C. Walton
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引用次数: 2

摘要

在汽车和通信等行业中,光学透明材料的技术应用越来越广泛。这些行业开始意识到实施表面工程技术以提高材料表面性能的重要性。考虑到表面工程的重要性,本文详细介绍了使用相对便宜的二极管泵浦固体(DPSS) Nd:YVO4激光器在微米尺度上修饰熔融石英玻璃,钻石和蓝宝石的表面。利用阈值丰度分析,确定了在这个特定的激光系统中,当激光波长为355nm时,钻石和蓝宝石的阈值丰度范围在10 Jcm−2到35 Jcm−2之间,这取决于入射脉冲数量引起的累积效应。通过光学显微镜和扫描电镜观察,发现不同材料的Nd:YVO4激光的加工质量不同。对于熔融石英玻璃,发生了相当大的开裂和变形。对于蓝宝石而言,虽然形成了碎屑,但却产生了良好的质量特征,这表明需要进行后处理以去除观察到的碎屑。与飞秒激光表面工程等替代技术相比,金刚石材料产生了最好的质量结果,具有非常明确的微米特征和最小的碎片形成。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Micro-Machining of Diamond, Sapphire and Fused Silica Glass Using a Pulsed Nano-Second Nd:YVO4 Laser
Optically transparent materials are being found in an ever-increasing array of technological applications within industries, such as automotive and communications. These industries are beginning to realize the importance of implementing surface engineering techniques to enhance the surface properties of materials. On account of the importance of surface engineering, this paper details the use of a relatively inexpensive diode-pumped solid state (DPSS) Nd:YVO4 laser to modify the surfaces of fused silica glass, diamond, and sapphire on a micrometre scale. Using threshold fluence analysis, it was identified that, for this particular laser system, the threshold fluence for diamond and sapphire ranged between 10 Jcm−2 and 35 Jcm−2 for a laser wavelength of 355 nm, dependent on the cumulative effects arising from the number of incident pulses. Through optical microscopy and scanning electron microscopy, it was found that the quality of processing resulting from the Nd:YVO4 laser varied with each of the materials. For fused silica glass, considerable cracking and deformation occurred. For sapphire, good quality features were produced, albeit with the formation of debris, indicating the requirement for post-processing to remove the observed debris. The diamond material gave rise to the best quality results, with extremely well defined micrometre features and minimal debris formation, comparative to alternative techniques such as femtosecond laser surface engineering.
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来源期刊
Progress in Optics
Progress in Optics 物理-光学
CiteScore
4.50
自引率
0.00%
发文量
8
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