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Ultrashort pulsed laser induced complex surface structures generated by tailoring the melt hydrodynamics

Fotis Fraggelakis et al · Editorial Office of Opto-Electronic Journals Group, Institute of Optics and Electronics, CAS, China · 2022

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We present a novel approach for tailoring the laser induced surface topography upon femtosecond (fs) pulsed laser irradiation. The method employs spatially controlled double fs laser pulses to actively regulate the hydrodynamic microfluidic motion of the melted layer that gives rise to the structures formation. The pulse train used, in particular, consists of a previously unexplored spatiotemporal intensity combination including one pulse with Gaussian and another with periodically modulated intensity distribution created by Direct Laser Interference Patterning (DLIP). The interpulse delay is appropriately chosen to reveal the contribution of the microfluidic melt flow, while it is found that the sequence of the Gaussian and DLIP pulses remarkably influences the surface profile attained. Results also demonstrate that both the spatial intensity of the double pulse and the effective number of pulses per irradiation spot can further be modulated to control the formation of complex surface morphologies. The underlying physical processes behind the complex patterns’ generation were interpreted in terms of a multiscale model combining electron excitation with melt hydrodynamics. We believe that this work can constitute a significant step forward towards producing laser induced surface structures on demand by tailoring the melt microfluidic phenomena.

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APA 7

al, F. F. E. (2022). Ultrashort pulsed laser induced complex surface structures generated by tailoring the melt hydrodynamics. https://doi.org/10.29026/oea.2022.210052

MLA

al, Fotis Fraggelakis et. "Ultrashort pulsed laser induced complex surface structures generated by tailoring the melt hydrodynamics." 2022. https://doi.org/10.29026/oea.2022.210052.

Chicago

al, Fotis Fraggelakis et. 2022. "Ultrashort pulsed laser induced complex surface structures generated by tailoring the melt hydrodynamics.". https://doi.org/10.29026/oea.2022.210052.

Harvard

al, F. F. E. 2022, Ultrashort pulsed laser induced complex surface structures generated by tailoring the melt hydrodynamics, Editorial Office of Opto-Electronic Journals Group, Institute of Optics and Electronics, CAS, China, available at: https://doi.org/10.29026/oea.2022.210052 [Accessed 8 Aug. 2026].

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Title
Ultrashort pulsed laser induced complex surface structures generated by tailoring the melt hydrodynamics
Author / contributors
Fotis Fraggelakis et al
Publisher
Editorial Office of Opto-Electronic Journals Group, Institute of Optics and Electronics, CAS, China
Publication year
2022
ISSN
2096-4579
ISSN
2096-4579
Language
English

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