9 research outputs found
Direct patterning of periodic semiconductor nanostructures using single-pulse nanosecond laser interference
We demonstrate an effective method for fabricating large area periodic two-dimensional
semiconductor nanostructures by means of single-pulse laser interference. Utilizing a pulsed
nanosecond laser with a wavelength of 355 nm, precisely ordered square arrays of nanoholes
with a periodicity of 300 nm were successfully obtained on UV photoresist and also directly
via a resist-free process onto semiconductor wafers. We show improved uniformity using a
beam-shaping system consisting of cylindrical lenses with which we can demonstrate highly
regular arrays over hundreds of square micrometers. We propose that our novel observation of
direct pattern transfer to GaAs is due to local congruent evaporation and subsequent droplet
etching of the surface. The results show that single-pulse interference can provide a rapid and
highly efficient route for the realization of wide-area periodic nanostructures on semiconductors
and potentially on other engineering materials
Direct patterning of periodic semiconductor nanostructures using single-pulse nanosecond laser interference
We demonstrate an effective method for fabricating large area periodic two-dimensional
semiconductor nanostructures by means of single-pulse laser interference. Utilizing a pulsed
nanosecond laser with a wavelength of 355 nm, precisely ordered square arrays of nanoholes
with a periodicity of 300 nm were successfully obtained on UV photoresist and also directly
via a resist-free process onto semiconductor wafers. We show improved uniformity using a
beam-shaping system consisting of cylindrical lenses with which we can demonstrate highly
regular arrays over hundreds of square micrometers. We propose that our novel observation of
direct pattern transfer to GaAs is due to local congruent evaporation and subsequent droplet
etching of the surface. The results show that single-pulse interference can provide a rapid and
highly efficient route for the realization of wide-area periodic nanostructures on semiconductors
and potentially on other engineering materials