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Plasmonic nanoarcs: a versatile platform with tunable localized surface plasmon resonances in octave intervals
Optics Express
|October 29, 2020
Summary
Metallic nanoarcs exhibit tunable longitudinal localized surface plasmon resonances (LSPRs) in the infrared. Geometric parameters allow independent tuning for applications in nonlinear and chiroptical devices.
Area of Science:
- Plasmonics
- Nanophotonics
- Infrared Spectroscopy
Background:
- Localized surface plasmon resonances (LSPRs) are crucial for nanophotonic applications.
- Metallic nanoarcs offer unique plasmonic properties due to their geometry.
- Controlling LSPR modes is essential for advanced optical devices.
Purpose of the Study:
- To demonstrate the tunability of longitudinal LSPRs in metallic nanoarcs.
- To establish relationships between nanoarc geometry and LSPR characteristics.
- To enable independent tuning of fundamental and second-order LSPRs for octave intervals.
Main Methods:
- Investigated metallic nanoarcs with varying geometric parameters.
- Analyzed the impact of mid-arc length on LSPR wavelength.
- Correlated nanoarc central angle with LSPR attenuation ratios.
- Utilized non-uniform arc-width profiles for independent resonance tuning.
Main Results:
- LSPR wavelength is tunable via mid-arc length.
- Nanoarc central angle governs the ratio of fundamental to second-order LSPR attenuation.
- Independent tuning of resonances to achieve octave intervals is demonstrated.
- Fundamental LSPR mode exhibits combined electric and magnetic dipole character.
Conclusions:
- Metallic nanoarcs provide tunable plasmonic resonances in the infrared.
- Geometric control allows for independent tuning of LSPR modes.
- Tunable plasmonic nanoarcs are promising building blocks for chiroptical and nonlinear optical devices.

