Abstract
Simulation techniques were used to investigate the properties of a deep subwavelength-scale on-chip optical cavity composed of a highly efficient metal-insulator-metal 3D-tapered plasmonic nanofocusing waveguide and easily tailorable metal-insulator-metal plasmonic crystals. The configuration described here significantly enhanced the highly efficient field localization in the plasmonic nanofocusing waveguide at the center of the cavity due to the impedance tuning capabilities of the plasmonic crystals. The plasmonic crystals served as nanoscale input and output couplers with designable reflectivities and a clear band-stop regime around the telecommunication wavelength, λ0 = 1.55 μm. Simulation studies indicated that this configuration could efficiently confine electromagnetic waves on the nanometer length scale through a field intensity enhancement of 7 × 103 and a Purcell enhancement of 8 × 103 within a volume of 1.4 × 10-5 λ03. To evaluate the performance of the highly efficient metal-insulator-metal 3D-tapered plasmonic nanofocusing waveguide structure itself, the overall focusing efficiency, that is, the transmission rate from the wavelength-scale input side to the deep subwavelength-scale focusing core in the tapered waveguide, was calculated to be around 85%. (Figure Presented).
Original language | English |
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Pages (from-to) | 944-953 |
Number of pages | 10 |
Journal | ACS Photonics |
Volume | 1 |
Issue number | 10 |
DOIs | |
Publication status | Published - 2014 Oct 15 |
Externally published | Yes |
Keywords
- nanofocusing
- nanoscale optical cavity
- on-chip nanophotonics
- plasmonics
- surface plasmon polaritons
- tailorable nanoscale mirrors
ASJC Scopus subject areas
- Electronic, Optical and Magnetic Materials
- Biotechnology
- Atomic and Molecular Physics, and Optics
- Electrical and Electronic Engineering