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I. M. Dmitruk et al.
Fig. 5 SEM images of the surfaces of Zr samples treated with femtosecond laser with the wavelength of 800 nm representing examples of macroscopic homogeneous (a, Sample No. 26) and
inhomogeneous (b, Sample No. 2-0) surfaces
Fig. 6 SEM image of the surface of Ti–Zr alloy (No. 33) treated with femtosecond laser with the
wavelength of 266 nm (a), the cross section of 2D Fourier transform of presented SEM image (b)
4 Morphology Study of Laser-Treated Surfaces of Zirconia
Ceramics
The specimens of zirconia ceramics with or without preliminary mechanical
processing have been treated with femtosecond laser with a wavelength of 800 nm
at different laser fluencies and scanning velocities. SEM images of the surfaces of
some zirconia samples are presented in Figs. 7 and 8. A distinctive feature of this
I. M. Dmitruk et al.
Fig. 5 SEM images of the surfaces of Zr samples treated with femtosecond laser with the wavelength of 800 nm representing examples of macroscopic homogeneous (a, Sample No. 26) and
inhomogeneous (b, Sample No. 2-0) surfaces
Fig. 6 SEM image of the surface of Ti–Zr alloy (No. 33) treated with femtosecond laser with the
wavelength of 266 nm (a), the cross section of 2D Fourier transform of presented SEM image (b)
4 Morphology Study of Laser-Treated Surfaces of Zirconia
Ceramics
The specimens of zirconia ceramics with or without preliminary mechanical
processing have been treated with femtosecond laser with a wavelength of 800 nm
at different laser fluencies and scanning velocities. SEM images of the surfaces of
some zirconia samples are presented in Figs. 7 and 8. A distinctive feature of this
