Boosting the Figure Of Merit of LSPR-based refractive index sensing by phase-sensitive measurements
arXiv:1201.0974 · doi:10.1021/nl300044a
Abstract
Localized surface plasmon resonances possess very interesting properties for a wide variety of sensing applications. In many of the existing applications only the intensity of the reflected or transmitted signals is taken into account, while the phase information is ignored. At the center frequency of a (localized) surface plasmon resonance, the electron cloud makes the transition between in- and out-of-phase oscillation with respect to the incident wave. Here we show that this information can experimentally be extracted by performing phase-sensitive measurements, which result in linewidths that are almost one order of magnitude smaller than those for intensity based measurements. As this phase transition is an intrinsic property of a plasmon resonance, this opens up many possibilities for boosting the figure of merit (FOM) of refractive index sensing by taking into account the phase of the plasmon resonance. We experimentally investigated this for two model systems: randomly distributed gold nanodisks and gold nanorings on top of a continuous gold layer and a dielectric spacer and observed FOM values up to 8.3 and 16.5 for the respective nanoparticles.
References in corpus (2)
Cited by in corpus (7)
- High-sensitivity plasmonic refractive index sensing using graphene
- Fourier modal method for the description of nanoparticle lattices in the dipole approximation
- Coupling phenomena and collective effects in resonant meta-molecules supporting plasmonic and magnetic functionalities: a review
- Nanoparticle lattices with bases: Fourier modal method and dipole approximation
- Twist-tunable moiré optical resonances
- Thickness-independent narrow resonance in a stack of two plasmonic lattices
- The effect of shape anisotropy on the spectroscopic characterization of the magneto-optical activity of nanostructures