Asymptotic approximations for the plasmon resonances of nearly touching spheres
Ory Schnitzer

TL;DR
This paper develops asymptotic approximations for plasmon resonances in nearly touching nanosphere dimers, providing analytical formulas for eigenvalues and eigenfunctions in the near-contact limit, validated against exact calculations.
Contribution
The paper introduces a novel asymptotic method for analyzing surface-plasmon modes in nearly touching spheres, extending previous work to include a broader set of modes and detailed eigenvalue approximations.
Findings
Asymptotic formulas accurately predict eigenvalues and eigenfunctions.
Logarithmic dependence on gap width for certain symmetric modes.
Excellent agreement with exact numerical calculations.
Abstract
Excitation of surface-plasmon resonances of closely spaced nanometallic structures is a key technique used in nanoplasmonics to control light on subwavelength scales and generate highly confined electric-field hotspots. In this paper we develop asymptotic approximations in the near-contact limit for the entire set of surface-plasmon modes associated with the prototypical sphere dimer geometry. Starting from the quasi-static plasmonic eigenvalue problem, we employ the method of matched asymptotic expansions between a gap region, where the boundaries are approximately paraboloidal, pole regions within the spheres and close to the gap, and a particle-scale region where the spheres appear to touch at leading order. For those modes that are strongly localised to the gap, relating the gap and pole regions gives a set of effective eigenvalue problems formulated over a half space representing…
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Taxonomy
TopicsPlasmonic and Surface Plasmon Research · Near-Field Optical Microscopy · Optical Coatings and Gratings
