Direct Laser Interference Patterning of Zirconia Using Infra‐Red Picosecond Pulsed Laser: Effect of Laser Processing Parameters on the Surface Topography and Microstructure

Author:

Henriques Bruno123,Fabris Douglas1ORCID,Voisiat Bogdan3,Boccaccini Aldo R.4,Lasagni Andrés Fabián35

Affiliation:

1. Ceramic and Composite Materials Research Group (CERMAT) Federal University of Santa Catarina (UFSC) Campus Trindade Florianópolis SC 88040–900 Brazil

2. CMEMS‐UMinho University of Minho Campus de Azurém Guimarães 4800‐058 Portugal

3. Institute for Manufacturing Technology Technische Universität Dresden 01062 Dresden Germany

4. Institute of Biomaterials University of Erlangen‐Nuremberg 91058 Erlangen Germany

5. Fraunhofer IWS Winterbergstr. 28 01277 Dresden Germany

Abstract

AbstractThis study investigates the influence of processing parameters when applying direct laser interference patterning (DLIP) on the morphology and microstructure of zirconia surfaces using a 10 ps‐pulsed laser source with 1064 nm wavelength. An experimental testing matrix is built with different values of laser fluence (5.718.2 J cm−2) and pulse overlap (6698%). Surface morphology and microstructure are characterized by confocal microscopy and scanning electron microscopy. Homogeneous line‐like patterns with periodic spatial repetition of 5.0 µm, with varying depths, widths, and aspect ratio, are fabricated using proper processing parameters (5.77.6 J cm−2 and 9296%). Structures with maximum depth of 1.5 µm and sharp edges are obtained (7.6 J cm−2 and 96% overlap). Ablated regions presented a morphology typical of photophysical ablation mechanism, with signs of molten material at the surface. Sub‐micrometric pores and nanodroplets are registered for all conditions, while sub‐micrometric cracks developed only for higher fluences. A processing window conducing to homogenous DLIP structures is set based on experimental data. Periodic structures with multiscale topographic features are successfully obtained on zirconia surfaces using DLIP technology in this study. These outcomes open new perspectives for fabrication of multifunctional zirconia surfaces for advanced biomedical and engineering applications.

Funder

Fundação de Amparo à Pesquisa e Inovação do Estado de Santa Catarina

Alexander von Humboldt-Stiftung

Deutscher Akademischer Austauschdienst

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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