Prediction of Self-Assembled Dewetted Nanostructures for Photonics Applications via a Continuum Mechanics Framework
Louis Martin-Monier, Pier Giuseppe Ledda, Pierre-Luc Piveteau,, Francois Gallaire, Fabien Sorin

TL;DR
This paper introduces a continuum mechanics model to predict the dewetting process of thin films on patterned substrates, enabling precise control of nanostructure formation for photonics applications.
Contribution
The work presents a novel continuum framework that accurately predicts dewetting dynamics and final nanostructure distributions, bridging experimental measurements and simulations.
Findings
Model accurately predicts final nanostructure distributions.
Framework links macroscopic measurements to microscopic interactions.
Enables tailored optical responses in nanophotonic devices.
Abstract
When a liquid film lies on a non-wettable substrate, the configuration is unstable and the film then retracts from a solid substrate to form droplets. This phenomenon, known as dewetting, commonly leads to undesirable morphological changes. Nevertheless, recent works have demonstrated the possibility to harness dewetting by employing templated substrates with a degree of precision on par with advanced lithographic processes for high-performance nanophotonic applications. Since resonant behavior is highly sensitive to geometrical changes, predicting quantitatively dewetting dynamics is of high interest. In this work, we develop a continuum model that predicts the evolution of a thin film on a patterned substrate, from the initial reflow to the nucleation and growth of holes. We provide an operative framework based on macroscopic measurements to model the intermolecular interactions at…
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