Revisiting the physics of Fano resonances for nanoparticle oligomers
Переосмысление физики резонансов Фано в олигомерах наночастиц
2013-11-14
SCID: 54.1/6c44a6mm
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Fano resonancescollective eigenmodescoupled-dipole approximationnanoparticle oligomersplasmonic and all-dielectric oligomers
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Abstract (AI)
We present a robust approach for interpreting the physics of Fano resonances in planar oligomer structures of both metallic and dielectric nanoparticles. We reveal a key mechanism for Fano resonances by demonstrating that such resonances can be generated purely from the interference of nonorthogonal collective eigenmodes, which are clearly identified based on the coupled-dipole approximation. We prove analytically a general theorem to identify the number of collective eigenmodes that can be excited in ring-type nanoparticle oligomers and further demonstrate that no dark-mode excitation is necessary for the existence of Fano resonances in symmetric oligomers. As a consequence, we unify the understanding of Fano resonances for both plasmonic and all-dielectric oligomers.
Key Findings
1
An analytical theorem determines the number of collective eigenmodes excitable in ring-type nanoparticle oligomers.
2
Dark-mode excitation is not necessary for Fano resonances in symmetric oligomers.
3
Fano resonances in planar metallic and dielectric nanoparticle oligomers can arise purely from interference between nonorthogonal collective eigenmodes.
4
The coupled-dipole approximation provides a clear framework for identifying the collective eigenmodes responsible for Fano resonances.
5
The findings unify the physical interpretation of Fano resonances in plasmonic and all-dielectric oligomers.
Research Object
planar ring-type oligomers of metallic and dielectric nanoparticles
Research Subject
the physical mechanism and collective-eigenmode interference underlying Fano resonances, including their excitation in symmetric oligomers
Publication Details
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2013-11-14
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