Matei Andrei Teodor, Visan Anita Ioana, Negut Irina
IT Center for Science and Technology, 25 No. Av. Radu Beller, 011702 Bucharest, Romania.
National Institute for Laser, Plasma and Radiation Physics, 409 Atomistilor Street, P.O. Box MG 36, 077125 Magurele, Romania.
Micromachines (Basel). 2025 May 13;16(5):573. doi: 10.3390/mi16050573.
The rapid evolution of optoelectronic devices necessitates innovative fabrication techniques to improve their performance and functionality. This review explores the advancements in laser processing as a versatile method for creating micro- and nanostructured surfaces, tailored to enhance the efficiency of optoelectronic applications. We begin by elucidating the fundamental mechanisms underlying laser interactions with materials, which facilitate the precise engineering of surface topographies. Following this, we systematically review various micro/nanostructures fabricated by laser techniques, such as laser ablation, laser-induced periodic surface structures (LIPSS), and two-photon polymerization, highlighting their unique properties and fabrication parameters. The review also delves into the significant applications of these laser-fabricated surfaces in optoelectronic devices, including photovoltaics, photodetectors, and sensors, emphasizing how tailored surface structures can lead to improved light absorption, enhanced charge carrier dynamics, and optimized device performance. By synthesizing current knowledge and identifying emerging trends, this work aims to inspire future research directions in the design and application of laser-fabricated micro/nanostructures within the field of optoelectronics. Our findings underscore the critical role of laser technology in advancing the capabilities of next-generation optoelectronic devices, aligning with the scope of emerging trends in device engineering.
光电器件的快速发展需要创新的制造技术来提高其性能和功能。本综述探讨了激光加工作为一种通用方法在创建微纳结构表面方面的进展,这些表面经过定制以提高光电子应用的效率。我们首先阐明激光与材料相互作用的基本机制,这有助于精确设计表面形貌。在此之后,我们系统地回顾了通过激光技术制造的各种微/纳米结构,如激光烧蚀、激光诱导周期性表面结构(LIPSS)和双光子聚合,突出它们的独特性能和制造参数。该综述还深入探讨了这些激光制造表面在光电器件中的重要应用,包括光伏、光电探测器和传感器,强调定制表面结构如何能够实现更好的光吸收、增强电荷载流子动力学以及优化器件性能。通过综合当前知识并识别新兴趋势,这项工作旨在激发光电子领域中激光制造微/纳米结构的设计和应用的未来研究方向。我们的研究结果强调了激光技术在推进下一代光电器件能力方面的关键作用,这与器件工程新兴趋势的范围相一致。