Laser-induced ultrasonics for detection of low-amplitude grating through metal layers with finite roughness

Open Access
Authors
Publication date 03-08-2020
Journal Optics Express
Volume | Issue number 28 | 16
Pages (from-to) 23374-23387
Number of pages 14
Organisations
  • Faculty of Science (FNWI) - Institute of Physics (IoP)
  • Faculty of Science (FNWI) - Institute of Physics (IoP) - Van der Waals-Zeeman Institute (WZI)
Abstract

We report on the use of laser-induced ultrasonics for the detection of gratings with amplitudes as small as 0.5 nm, buried underneath an optically opaque nickel layer. In our experiments, we use gratings fabricated on top of a nickel layer on glass, and we optically pump and probe the sample from the glass side. The diffraction of the probe pulse from the acoustic echo from the buried grating is measured as a function of time. We use a numerical model to show how the various physical phenomena such as interface displacement, strain-optic effects, thermo-optic effects, and surface roughness influence the shape and strength of the time-dependent diffraction signal. More importantly, we use a Rayleigh-Rice scattering theory to quantify the amount of light scattering, which is then used as in input parameter in our numerical model to predict the time-dependent diffracted signal.

Document type Article
Language English
Published at https://doi.org/10.1364/OE.398134
Other links https://www.scopus.com/pages/publications/85089130964
Downloads
oe-28-16-23374 (Final published version)
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