Plasmonic enhancement of the third order nonlinear optical phenomena: figures of merit
arXiv:1309.1887 · doi:10.1364/OE.21.027460
Abstract
Recent years have seen increased interest to plasmonic enhancement of nonlinear optical effects, yet there remains an uncertainty of what are the limits of this enhancement. We present a simple and physically transparent theory of plasmonic enhancement of third order nonlinear optical processes achieved in plasmonic structures and show that while huge enhancement of effective nonlinear index can be attained, the most relevant figure of merit, the of phase shift per one absorption length remains very low. This means that while on one hand nonlinear plasmonic materials are not well suitable for applications requiring high efficiency, e.g. all-optical switching and wavelength conversion, on the other hand they can be very useful for the applications where the overall high efficiency is not a must, such as sensing.
References in corpus (2)
Cited by in corpus (7)
- Extraordinary nonlinear plasmonics in graphene nanoislands
- Graphene - a rather ordinary nonlinear optical material
- Post-2000 Nonlinear Optical Materials and Measurements: Data Tables and Best Practices
- Second-order nonlinear optical metamaterials: ABC-type nanolaminates
- Metal nanospheres under intense continuous wave illumination - a unique case of non-perturbative nonlinear nanophotonics
- The thermo-optic nonlinearity of single metal nanoparticles under intense continuous-wave illumination
- The photothermal nonlinearity in plasmon-assisted photocatalysis