Application of ultrafast laser beam shaping in micro-optical elements

IF 1.7 4区 工程技术 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Journal of Laser Applications Pub Date : 2023-08-01 DOI:10.2351/7.0001033
Zhihao Qu, S. Sun, Jin Wang, M. Jiang, Fengyun Zhang, Xi Wang, J. Shao, Guanglei Liang, P. Wang
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Abstract

The manufacturing and application of micro-optical elements are constantly evolving toward miniaturization, integration, and intelligence and have important applications in holographic displays, optical imaging, laser processing, information processing, and other fields. Ultrafast lasers, with their ultrashort pulse width, extremely high peak power, high processing resolution, small thermal influence zone, and nondestructive material processing advantages, have become an important processing method for preparing micro-optical elements. However, the laser output from the laser usually has a Gaussian distribution, with limitations in spatial and temporal energy and shape distribution, making it difficult to meet the requirements of processing efficiency and quality, which poses new challenges to ultrafast laser manufacturing technology. Therefore, by shaping the ultrafast laser beam and regulating nonlinear optical effects, the optimization and adjustment of the beam shape can be achieved, thus improving the quality and efficiency of micro-optical element processing. Ultrafast laser beam shaping technology provides a new method for the manufacture of micro-optical elements. This article first introduces the commonly used manufacturing methods for micro-optical elements. Second, from the perspective of the temporal domain, spatial domain, and spatiotemporal domain, the basic principles, methods, and existing problems of ultrafast laser beam shaping are summarized. Then, the application of these shaping technologies in the preparation of micro-optical elements is elaborated. Finally, the challenges and future development prospects of ultrafast laser beam shaping technology are discussed.
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超快激光光束整形在微光学元件中的应用
微光学元件的制造和应用不断向小型化、集成化和智能化发展,在全息显示器、光学成像、激光加工、信息处理等领域有着重要的应用。超快激光器以其超短脉冲宽度、极高峰值功率、高加工分辨率、小热影响区和无损材料加工优势,已成为制备微光学元件的重要加工方法。然而,激光器输出的激光通常具有高斯分布,在空间和时间能量以及形状分布方面受到限制,难以满足加工效率和质量的要求,这对超快激光制造技术提出了新的挑战。因此,通过对超快激光束进行整形并调节非线性光学效应,可以实现光束形状的优化和调整,从而提高微光学元件加工的质量和效率。超快激光光束整形技术为微光学元件的制造提供了一种新的方法。本文首先介绍了常用的微光学元件的制造方法。其次,从时间域、空间域和时空域的角度,总结了超快激光束整形的基本原理、方法和存在的问题。然后,阐述了这些成型技术在微光学元件制备中的应用。最后,讨论了超快激光光束整形技术的挑战和未来发展前景。
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来源期刊
CiteScore
3.60
自引率
9.50%
发文量
125
审稿时长
>12 weeks
期刊介绍: The Journal of Laser Applications (JLA) is the scientific platform of the Laser Institute of America (LIA) and is published in cooperation with AIP Publishing. The high-quality articles cover a broad range from fundamental and applied research and development to industrial applications. Therefore, JLA is a reflection of the state-of-R&D in photonic production, sensing and measurement as well as Laser safety. The following international and well known first-class scientists serve as allocated Editors in 9 new categories: High Precision Materials Processing with Ultrafast Lasers Laser Additive Manufacturing High Power Materials Processing with High Brightness Lasers Emerging Applications of Laser Technologies in High-performance/Multi-function Materials and Structures Surface Modification Lasers in Nanomanufacturing / Nanophotonics & Thin Film Technology Spectroscopy / Imaging / Diagnostics / Measurements Laser Systems and Markets Medical Applications & Safety Thermal Transportation Nanomaterials and Nanoprocessing Laser applications in Microelectronics.
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