Core-shell-structured dielectric-metal circular nanodisk antenna: Gap plasmon assisted magnetic toroid-like cavity modes

  • Qiang Zhang
  • , Jun Jun Xiao*
  • , Xiao Ming Zhang
  • , Dezhuan Han
  • , Lei Gao
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Plasmonic nanoantennas, the properties of which are essentially determined by their resonance modes, are of interest both fundamentally and for various applications. Antennas with various shapes, geometries, and compositions have been demonstrated, each possessing unique properties and potential applications. Here, we propose the use of a sidewall coating as an additional degree of freedom to manipulate plasmonic gap cavity modes in strongly coupled metallic nanodisks. It is demonstrated that for a dielectric middle layer with a thickness of a few tens of nanometers and a sidewall plasmonic coating of more than ten nanometers, the usual optical magnetic resonance modes are eliminated, and only magnetic toroid-like modes are sustainable in the infrared and visible regime. All of these deep-subwavelength modes can be interpreted as an interference effect from the gap surface plasmon polaritons. Our results will be useful in nanoantenna design, high-Q cavity sensing, structured light-beam generation, and photon emission engineering.

Original languageEnglish
Pages (from-to)60-65
Number of pages6
JournalACS Photonics
Volume2
Issue number1
DOIs
StatePublished - 21 Jan 2015
Externally publishedYes

Keywords

  • nanoantenna
  • optical magnetic resonance
  • plasmonics
  • toroidal mode

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