This paper reported a three-dimensional microfluidic channel structure, which was fabricated by Yb:YAG 1026?nm femtosecond laser irradiation on a single-crystalline diamond substrate. The femtosecond laser irradiation energy level was optimized at 100?kHz repetition rate with a sub-500 femtosecond pulse duration. The morphology and topography of the microfluidic channel were characterized by a scanning electron microscope and an atomic force microscope. Raman spectroscopy indicated that the irradiated area was covered by graphitic materials. By comparing the cross-sectional profiles before/after removing the graphitic materials, it could be deduced that the microfluidic channel has an average depth of ~410?nm with periodical ripples perpend...
Diamond is a wide bandgap semiconductor with excellent physical properties which allow it to operate...
We describe how the ultrafast laser micromachining technique applied with different writing methods ...
The extreme nonlinear interaction betweenfemtosecond laser pulses and large-band-gapmaterials has en...
This paper reported a three-dimensional microfluidic channel structure, which was fabricated by Yb:Y...
This paper reported a three-dimensional microfluidic channel structure, which was fabricated by Yb:Y...
We present a laser machining method based on the use of pulsed Bessel beams to create, by single pas...
Different microstructures were created on the surface of a polycrystalline diamond plate (obtained b...
Femtosecond lasers have revolutionized the processing of materials, since their ultrashort pulse wid...
This paper provides an overview of the rather new field concerning the applications of femtosecond l...
Diamond samples are irradiated with 140fs pulses of 800nm wavelength. The pulse repetition rate is 1...
The femtosecond laser has been a powerful tool to achieve laser processing and microfabrication due ...
Diamond is a wide bandgap semiconductor with excellent physical properties which allow it to operate...
A femtosecond laser can be used for single or multiple writing processes to create sub 10-μm lines o...
Diamond has attracted great interest in the quantum optics community thanks to its nitrogen vacancy ...
Diamond is a wide bandgap semiconductor with excellent physical properties which allow it to operate...
We describe how the ultrafast laser micromachining technique applied with different writing methods ...
The extreme nonlinear interaction betweenfemtosecond laser pulses and large-band-gapmaterials has en...
This paper reported a three-dimensional microfluidic channel structure, which was fabricated by Yb:Y...
This paper reported a three-dimensional microfluidic channel structure, which was fabricated by Yb:Y...
We present a laser machining method based on the use of pulsed Bessel beams to create, by single pas...
Different microstructures were created on the surface of a polycrystalline diamond plate (obtained b...
Femtosecond lasers have revolutionized the processing of materials, since their ultrashort pulse wid...
This paper provides an overview of the rather new field concerning the applications of femtosecond l...
Diamond samples are irradiated with 140fs pulses of 800nm wavelength. The pulse repetition rate is 1...
The femtosecond laser has been a powerful tool to achieve laser processing and microfabrication due ...
Diamond is a wide bandgap semiconductor with excellent physical properties which allow it to operate...
A femtosecond laser can be used for single or multiple writing processes to create sub 10-μm lines o...
Diamond has attracted great interest in the quantum optics community thanks to its nitrogen vacancy ...
Diamond is a wide bandgap semiconductor with excellent physical properties which allow it to operate...
We describe how the ultrafast laser micromachining technique applied with different writing methods ...
The extreme nonlinear interaction betweenfemtosecond laser pulses and large-band-gapmaterials has en...