Laser-Excited Elastic Guided Waves Reveal the Complex Mechanics of Nanoporous Silicon
Abstract
Nanoporosity in silicon leads to completely new functionalities of this mainstream semiconductor. A difficult to assess mechanics has however significantly limited its application in fields ranging from nanofluidics and biosensorics to drug delivery, energy storage and photonics. Here, we present a study on laser-excited elastic guided waves detected contactless and non-destructively in dry and liquid-infused single-crystalline porous silicon. These experiments reveal that the self-organised formation of 100 billions of parallel nanopores per square centimetre cross section results in a nearly isotropic elasticity perpendicular to the pore axes and an 80% effective stiffness reduction, altogether leading to significant deviations from the cubic anisotropy observed in bulk silicon. Our thorough assessment of the wafer-scale mechanics of nanoporous silicon provides the base for predictive applications in robust on-chip devices and evidences that recent breakthroughs in laser ultrasonics open up entirely new frontiers for in-situ, non-destructive mechanical characterisation of dry and liquid-functionalised porous materials.
Keywords
Cite
@article{arxiv.2010.14947,
title = {Laser-Excited Elastic Guided Waves Reveal the Complex Mechanics of Nanoporous Silicon},
author = {Marc Thelen and Nicolas Bochud and Manuel Brinker and Claire Prada and Patrick Huber},
journal= {arXiv preprint arXiv:2010.14947},
year = {2021}
}
Comments
12 pages, 8 figures, Supplementary information available as ancillary file, in press