Fabrication of Multiscale and Periodically Structured Zirconia Surfaces Using Direct Laser Interference Patterning

被引:0
|
作者
Henriques, Bruno [1 ,2 ,3 ]
Fabris, Douglas [1 ]
Voisiat, Bogdan [3 ]
Lasagni, Andres Fabian [3 ,4 ]
机构
[1] Fed Univ Santa Catarina UFSC, Ceram & Composite Mat Res Grp CERMAT, Campus Trindade, BR-88040900 Florianopolis, SC, Brazil
[2] Univ Minho, CMEMS UMinho, Campus Azurem, P-4800058 Guimaraes, Portugal
[3] Tech Univ Dresden, Inst Mfg Technol, D-01062 Dresden, Germany
[4] Fraunhofer IWS, Winterbergstr 28, D-01277 Dresden, Germany
关键词
direct laser interference patterning; hierarchical structures; surface structuring; ultra-short pulsed laser; zirconia; SHEAR BOND STRENGTH; STABILIZED ZIRCONIA; CERAMICS; PORCELAIN; TRANSFORMATION; ENHANCEMENT; WETTABILITY; RESISTANCE; ROUGHNESS; BEHAVIOR;
D O I
10.1002/adfm.202408949
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The functionalization of zirconia surfaces by accurate and fast printing of periodical patterns embedding sub-micrometric features is of great interest to many engineering fields and is yet to be explored. This study aims to assess the influence of the Direct Laser Interference Patterning processing parameters on the morphology and microstructure of zirconia surfaces using a 532 nm 10 ps-pulsed laser source. Well-defined linear structures with a period of 3 mu m are successfully produced. Depending on the laser parameters, the structures are developed at or below the surface level, with higher depths (approximate to 1 mu m) being seen for increasing values of laser fluence and pulse overlap. Line-like hierarchical structures with smaller interference spatial structures (3 mu m period) and higher secondary structures with different periods (18, 15, and 12 mu m) and heights (7, 5, and 3 mu m, respectively) are also obtained on zirconia surface. Ablated regions presented few traces of molten material, nano-droplets, and sub-micrometric (<1 <mu>m) pores, while no (sub) micrometric cracks are detected. A slight amount of tetragonal to monoclinic phase transformation (approximate to 5%) is detected by X-ray diffractometry. A processability map for ps-laser processing of zirconia is proposed based on the experimental data.
引用
收藏
页数:13
相关论文
共 50 条
  • [41] To use or not to use (direct laser interference patterning), that is the question
    Lasagni, A. F.
    Roch, T.
    Berger, J.
    Kunze, T.
    Lang, V.
    Beyer, E.
    LASER-BASED MICRO- AND NANOPROCESSING IX, 2015, 9351
  • [42] Plasmonic nanostructuring through direct laser interference patterning
    Lin, Yuanhai
    Zhai, Tianrui
    Zhang, Xinping
    PLASMONICS: METALLIC NANOSTRUCTURES AND THEIR OPTICAL PROPERTIES XII, 2014, 9163
  • [43] Direct laser interference patterning combined with mask imaging
    Lechthaler, Bjoern
    Fox, Tobias
    Slawik, Sebastian
    Muecklich, Frank
    OPTICS AND LASER TECHNOLOGY, 2020, 123
  • [44] Direct Laser Interference Patterning for decreased bacterial attachment
    Guenther, Denise
    Valle, Jaoine
    Burgui, Saioa
    Gil, Carmen
    Solano, Cristina
    Toledo-Arana, Alejandro
    Helbig, Ralf
    Werner, Carsten
    Lasa, Inigo
    Lasagni, Andres F.
    LASER-BASED MICRO AND NANOPROCESSING X, 2016, 9736
  • [45] On the wetting behavior of laser-microtextured stainless steel using Direct Laser Interference Patterning
    Schell, Frederic
    Alamri, Sabri
    Steege, Tobias
    Zwahr, Christoph
    Kunze, Tim
    Lasagni, Andres
    SURFACE & COATINGS TECHNOLOGY, 2022, 447
  • [46] Determination of the interference spot size using photo-acoustic emission in Direct Laser Interference Patterning
    Steege, Tobias
    Schell, Frederic
    Belkin, Adrian
    Lasagni, Andres Fabian
    LASER APPLICATIONS IN MICROELECTRONIC AND OPTOELECTRONIC MANUFACTURING (LAMOM) XXVII, 2022, 11988
  • [47] Fabrication of gold nanostructures through pulsed laser interference patterning
    Yuan, Dajun
    Acharya, Ranadip
    Das, Suman
    APPLIED PHYSICS LETTERS, 2013, 103 (22)
  • [48] Optimization for high speed surface processing of metallic surfaces utilizing direct laser interference patterning.
    Lang, Valentin
    Hoffmann, Tim
    Lasagni, Andres Fabian
    LASER-BASED MICRO- AND NANOPROCESSING XII, 2018, 10520
  • [49] In-situ laser interference patterning of MBE growth surfaces
    Wang, Yun Ran
    Hopkinson, Mark
    Han, Im Sik
    Jin, Chao Yuan
    LASER-BASED MICRO- AND NANOPROCESSING XIV, 2020, 11268
  • [50] In-volume structuring of a bilayered polymer foil using direct laser interference patterning
    Roessler, Florian
    Guenther, Katja
    Lasagni, Andres F.
    APPLIED SURFACE SCIENCE, 2018, 440 : 1166 - 1171