Computing parametrized solutions for plasmonic nanogap structures
Ferran Vidal-Codina, Ngoc-Cuong Nguyen, Jaime Peraire

TL;DR
This paper introduces a reduced order modeling framework for rapid, accurate simulation of electromagnetic responses in plasmonic nanogap structures, accounting for geometric and material uncertainties.
Contribution
It develops a novel computational approach combining advanced numerical methods and model reduction techniques for efficient design of plasmonic nanostructures.
Findings
Accurately predicts electromagnetic responses across parameter ranges.
Analyzes geometry sensitivities of nanogap structures.
Facilitates optimal design of 3D periodic nanogaps.
Abstract
The interaction of electromagnetic waves with metallic nanostructures generates resonant oscillations of the conduction-band electrons at the metal surface. These resonances can lead to large enhancements of the incident field and to the confinement of light to small regions, typically several orders of magnitude smaller than the incident wavelength. The accurate prediction of these resonances entails several challenges. Small geometric variations in the plasmonic structure may lead to large variations in the electromagnetic field responses. Furthermore, the material parameters that characterize the optical behavior of metals at the nanoscale need to be determined experimentally and are consequently subject to measurement errors. It then becomes essential that any predictive tool for the simulation and design of plasmonic structures accounts for fabrication tolerances and measurement…
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