Published May 30, 2016 | Version Published
Journal Article Open

Three-dimensional concentration of light in deeply sub-wavelength, laterally tapered gap-plasmon nanocavities

  • 1. ROR icon ETH Zurich
  • 2. ROR icon California Institute of Technology

Abstract

Gap-plasmons (GP) in metal-insulator-metal (MIM) structures have shown exceptional performance in guiding and concentrating light within deep subwavelength layers. Reported designs to date exploit tapered thicknesses of the insulating layer in order to confine and focus the GP mode. Here, we propose a mechanism for the three dimensional concentration of light in planar MIM structures which exploits exclusively the lateral tapering of the front metallic layer while keeping a constant thickness of the insulating layer. We demonstrate that an array of tapered planar GP nanocavities can efficiently concentrate light in all three dimensions. A semi-analytical, one-dimensional model provides understanding of the underlying physics and approximately predicts the behavior of the structure. Three-dimensional simulations are then used to precisely calculate the optical behavior. Cavities with effective volumes as small as 10^(−5) λ^3 are achieved in an ultrathin MIM configuration. Our design is inherently capable of efficiently coupling with free-space radiation. In addition, being composed of two electrically continuous layers separated by an ultrathin dielectric spacer, it could find interesting applications in the area of active metamaterials or plasmonic photocatalysis where both electrical access and light concentration are required.

Additional Information

© 2016 Published by AIP Publishing. Received 29 March 2016; accepted 20 May 2016; published online 3 June 2016. The authors would like to thank Ruzan Sokhoyan for useful discussion over the simulations and Artur Davoyan and Ravishankar Sundararaman for useful discussions over the manuscript. G.T. acknowledges support from the Swiss National Science Foundation, Early Postdoc Mobility Fellowship No. P2EZP2_159101.

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Identifiers

Eprint ID
67951
Resolver ID
CaltechAUTHORS:20160615-155242934

Funding

Swiss National Science Foundation (SNSF)
P2EZP2_159101

Dates

Created
2016-06-15
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Updated
2021-11-11
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