Vibrations of Dimers of Mechanically Coupled Nanostructures: Analytical and Numerical Modeling
Jean Lerm\'e (ILM), J\'er\'emie Margueritat (ILM), Aur\'elien Crut, (ILM)

TL;DR
This paper investigates how mechanical coupling affects the vibrational eigenfrequencies of nanostructure dimers using analytical and numerical models, revealing frequency shifts due to spacer thickness and avoided crossing effects.
Contribution
It provides a combined analytical and numerical analysis of vibrational coupling in nanostructure dimers, highlighting the impact of spacer properties on eigenfrequencies.
Findings
Frequency shifts depend on spacer thickness.
Analytical solutions for stacked slabs are derived.
Numerical models show avoided crossing effects.
Abstract
The coupling effects affecting the vibrations of two close nanostructures (e.g., two metal nanoplates or nanospheres separated by a thin dielectric layer) may considerably alter their vibrational eigenfrequencies, as demonstrated by several recent experimental studies. In this work, we present theoretical investigations of these coupling processes based on a continuum mechanics approach, considering various systems composed by two identical nanostructures mechanically coupled by a spacer made of a different material and computing their eigenfrequencies as a function of the spacer thickness. We first discuss the vibrations of stacked slabs, a one-dimensional problem which can be treated analytically. The more complex configurations of dimers of rods or spheres coupled by a finite cylindrical spacer are then treated numerically. In all cases, the frequency shifts occurring for thin…
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