4 CONCLUSIONS
In this work, we presented a roadmap for fabricating
microchannels with a same aspect ratio by direct laser
writing techniques. In particular, there were used
pulsed lasers working at the nanosecond, picosecond
and femtosecond regime. The microchannels were
fabricated on a soda-lima glass substrate. They were
characterized in terms of height and width as well as
in terms of their vale of the surface roughness. Laser
direct writing is shown as a fast, accurate, versatile
and non-contact technique for the manufacturing of
microchannels over soda-lime glass, advantageous
material due to its robustness and competitive cost. It
has been shown that channel with the same aspect
ratio can be obtained with lasers working in the three
temporal regimes. However, the roughness obtained
are very different due to the physical mechanism
involved in each ablative process. Depending on the
application the roughness of the wall of the channel
can be more appropriated. In particular a higher
roughness is more suitable for applications in the
biological area since the cell attachment is higher as
the roughness increases.
ACKNOWLEDGEMENTS
This work has been supported under contracts
RTI2018-097063-B-100, AEI/FEDER, UE,
FIS2017-87970-R Ministerio de Economía y
Competitividad, ED431E 2018/08, Xunta de
Galicia/FEDER, SA046U16, Junta de Castilla y León
and FIS2015-71933-REDT Ministerio de
Competitividad, Spain.
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