Sensitivity of Collective Plasmon Modes of Gold Nanoresonators to Local Environment
arXiv:1003.2624 · doi:10.1364/OL.35.000956
Abstract
We present the first experimental study of optical response of collective plasmon resonances in regular arrays of nanoresonators to local environment. Recently observed collective plasmon modes arise due to diffractive coupling of localised plasmons and yield almost an order of magnitude improvement in resonance quality. We measure the response of these modes to tiny variations of the refractive index of both gaseous and liquid media. We show that the phase sensitivity of the collective resonances can be more than two orders of magnitude better than the best amplitude sensitivity of the same nanodot array as well as an order of magnitude better than the phase sensitivity in SPR sensors.
10 pages. 2 Figures, 1 Table, accepted to Optics Letters
References in corpus (1)
Cited by in corpus (13)
- Graphene plasmonics
- Singular-phase nanooptics: towards label-free single molecule detection
- Ultra-high-Q resonances in plasmonic metasurfaces
- Diffractive arrays of gold nanoparticles near an interface: critical role of the substrate
- Boosting the Figure Of Merit of LSPR-based refractive index sensing by phase-sensitive measurements
- Topological engineering of interfacial optical Tamm states for highly-sensitive near-singular-phase optical detection
- Topological phase singularities in atomically thin high-refractive-index materials
- Quantum spectroscopy of plasmonic nanostructures
- Topological Darkness: How to Design a Metamaterial for Optical Biosensing with Virtually Unlimited Sensitivity
- Sensitive singular-phase optical detection without phase measurements with Tamm plasmons
- Ultra-narrowband selective tunable filters for visible and infrared wavelength ranges
- Tuning the Fano resonance between localized and propagating surface plasmon resonances for refractive index sensing applications
- Plasmonic Nano-Gap Tilings: Light-Concentrating Surfaces for Low-Loss Photonic Integration