Periodic Surface Structuring of Copper with Spherical and Cylindrical Lenses

Author:

Hu Meilin1,Nivas Jijil JJ1ORCID,D’Andrea Martina1,Valadan Mohammadhassan2ORCID,Fittipaldi Rosalba3ORCID,Lettieri Mariateresa3ORCID,Vecchione Antonio3ORCID,Altucci Carlo2,Amoruso Salvatore1ORCID

Affiliation:

1. Dipartimento di Fisica “Ettore Pancini”, Università degli Studi di Napoli Federico II, Complesso Universitario di Monte S. Angelo, Via Cintia, I-80126 Napoli, Italy

2. Dipartimento di Scienze Biomediche Avanzate, Università degli Studi di Napoli Federico II, Via Pansini 5, I-80131 Napoli, Italy

3. CNR-SPIN SuPerconducting and Other INnovative Materials and Devices Institute, UOS Salerno, Via Giovanni Paolo II 132, I-84084 Fisciano, Italy

Abstract

The use of a cylindrical lens in femtosecond laser surface structuring is receiving attention to improve the processing efficiency. Here, we investigate the structures produced on a copper target, in air, by exploiting both spherical and cylindrical lenses for beam focusing, aiming at elucidating similarities and differences of the two approaches. The morphological features of the surface structures generated by ≈180 fs laser pulses at 1030 nm over areas of 8 × 8 mm2 were analyzed. For the spherical lens, micron-sized parallel channels are formed on the target surface, which is covered by subwavelength ripples and nanoparticles. Instead, the cylindrical lens leads to a surface decorated with ripples and nanoparticles with a negligible presence of micro-channels. Moreover, the morphological features achieved by focusing ≈180 fs laser pulses at 515 nm with the cylindrical lens and varying the scanning parameters were also studied. The experimental results evidence a direct effect of the hatch distance used in the scanning process on the target surface that contains dark and bright bands corresponding to regions where the rippled surface contains a richer decoration or a negligible redeposition of nanoparticles. Our findings can be of interest in large area surface structuring for the selection of the more appropriate focusing configuration according to the final application of the structured surface.

Funder

Italian Ministry of University and Research

Publisher

MDPI AG

Subject

General Materials Science,General Chemical Engineering

Reference48 articles.

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3. Stratakis, E., Bonse, J., Heitz, J., Siegel, J., Tsibidis, G.D., Skoulas, E., Papadopoulos, A., Mimidis, A., Joel, A.C., and Comanns, P. (2020). Materials Science and Engineering R: Reports, Elsevier Ltd.

4. Bonse, J. (2020). Quo Vadis LIPSS?—Recent and Future Trends on Laser-Induced Periodic Surface Structures. Nanomaterials, 10.

5. Bonse, J., Kirner, S.V., and Krüger, J. (2020). Handbook of Laser Micro- and Nano-Engineering, Springer Nature.

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