Extraordinary nonlinear plasmonics in graphene nanoislands
arXiv:1410.2111 · doi:10.1038/ncomms6725
Abstract
Nonlinear optical processes rely on the intrinsically weak interactions between photons enabled by their coupling with matter. Unfortunately, many applications in nonlinear optics are severely hindered by the small response of conventional materials. Metallic nanostructures partially alleviate this situation, as the large light enhancement associated with their localized plasmons amplifies their nonlinear response to record high levels. Graphene hosts long-lived, electrically tunable plasmons that also interact strongly with light. Here we show that the nonlinear polarizabilities of graphene nanoislands can be electrically tuned to surpass by several orders of magnitude those of metal nanoparticles of similar size. This extraordinary behavior extends over the visible and near-infrared for islands consisting of hundreds of carbon atoms doped with moderate carrier densities. Our quantum-mechanical simulations of the plasmon-enhanced optical response of nanographene reveal this material as an ideal platform for the development of electrically tunable nonlinear optical nanodevices.
16 pages, 12 figures, 54 references
References in corpus (8)
- Electric Field Effect in Atomically Thin Carbon Films
- The electronic properties of graphene
- Graphene plasmonics
- Graphene Plasmonics: Challenges and Opportunities
- Manipulating infrared photons using plasmons in transparent graphene superlattices
- Non-linear electromagnetic response of graphene
- Third harmonic generation in graphene and few-layer graphite films
- Magnetic field tuning of terahertz Dirac plasmons in graphene
Cited by in corpus (8)
- Multipolar nonlinear nanophotonics
- Plasmon-assisted high-harmonic generation in graphene
- How To Identify Plasmons from the Optical Response of Nanostructures
- Plasmon-enhanced nonlinear wave mixing in nanostructured graphene
- Quantum Effects in the Acoustic Plasmons of Atomically-Thin Heterostructures
- Nonlinear atom-plasmon interactions enabled by nanostructured graphene
- Third harmonic generation from graphene lying on different substrates: Optical-phonon resonances and interference effects
- Classical route to quantum chaotic motions