Quantum Effects in the Nonlinear Response of Graphene Plasmons
arXiv:1704.03440 · doi:10.1021/acsnano.5b06110
Abstract
The ability of graphene to support long-lived, electrically tunable plasmons that interact strongly with light, combined with its highly nonlinear optical response, has generated great expectations for application of the atomically-thin material to nanophotonic devices. These expectations are mainly reinforced by classical analyses performed using the response derived from extended graphene, neglecting finite-size and nonlocal effects that become important when the carbon layer is structured on the nanometer scale in actual device designs. Here we show that finite-size effects produce large contributions that increase the nonlinear response of nanostructured graphene to significantly higher levels than those predicted by classical theories. We base our analysis on a quantum-mechanical description of graphene using tight-binding electronic states combined with the random-phase approximation. While classical and quantum descriptions agree well for the linear response when either the plasmon energy is below the Fermi energy or the size of the structure exceeds a few tens of nanometers, this is not always the case for the nonlinear response, and in particular, third-order Kerr-type nonlinearities are generally underestimated by the classical theory. Our results reveal the complex quantum nature of the optical response in nanostructured graphene, while further supporting the exceptional potential of this material for nonlinear nanophotonic devices.
18 pages, 8 figures
References in corpus (20)
- Electric Field Effect in Atomically Thin Carbon Films
- The electronic properties of graphene
- Universal Dynamic Conductivity and Quantized Visible Opacity of Suspended Graphene
- Graphene plasmonics
- Measurement of the Optical Conductivity of Graphene
- Graphene Plasmonics: Challenges and Opportunities
- Manipulating infrared photons using plasmons in transparent graphene superlattices
- Mid-infrared plasmons in scaled graphene nanostructures
- 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
- Extraordinary nonlinear plasmonics in graphene nanoislands
- Optical bistability of graphene in the terahertz range
- Graphene supports the propagation of subwavelength optical solitons
- Nonlinear graphene plasmonics: amplitude equation
- Classical and Quantum Plasmonics in Graphene Nanodisks: the Role of Edge States
- Plasmon-enhanced nonlinear wave mixing in nanostructured graphene
- Plasmonics of coupled graphene micro-structures
- Plasmonic eigenmodes in individual and bow-tie graphene nanotriangles
- Dissipative plasmon solitons in graphene nanodisk arrays
Cited by in corpus (29)
- Plasmon-assisted high-harmonic generation in graphene
- Quantum Nanophotonics in Two-Dimensional Materials
- Integrated Plasmonics: Broadband Dirac Plasmons in Borophene
- Theory of plasmonic effects in nonlinear optics: the case of graphene
- Density Response of the Warm Dense Electron Gas beyond Linear Response Theory: Excitation of Harmonics
- Nonlinear density response from imaginary-time correlation functions: Ab initio path integral Monte Carlo simulations of the warm dense electron gas
- Nonlinear light mixing by graphene plasmons
- Theory of the strongly nonlinear electrodynamic response of graphene: A hot electron model
- High-Q Dual-Band Graphene Absorbers by Selective Excitation of Graphene Plasmon Polaritons: Circuit Model Analysis
- Fully Atomistic Modeling of Realistic Plasmonic Materials: Assessing the Performance of Iterative Solvers
- Graphene Plasmonics: a Novel Fully Atomistic Approach for Realistic Structures
- Tunable and Dual-broadband Giant Enhancement of SHG and THG in a Highly-engineered Graphene-Insulator-Graphene Metasurface
- Optical Kerr Effect in Graphene: Theoretical Analysis of the Optical Heterodyne Detection Technique
- Third harmonic generation from graphene lying on different substrates: Optical-phonon resonances and interference effects
- Computational Analysis of Dispersive and Nonlinear 2D Materials by Using a Novel GS-FDTD Method
- Nonlinear and anisotropic polarization rotation in two dimensional Dirac materials
- Tunable plasmon-enhanced second-order optical nonlinearity in transition metal dichalcogenide nanotriangles
- Nonlinear quantum logic with colliding graphene plasmons
- Nonlinear thermoplasmonics in graphene nanostructures
- Quantum plasmon enhanced nonlinear wave mixing in graphene nanoflakes
- Plasmon-induced nonlinearity enhancement and homogenization of graphene metasurfaces
- Plasmons in phosphorene nanoribbons
- Unusual Low-Energy Collective Charge Excitations in High- Cuprate Superconductors
- Impact of structural defects on the performance of graphene plasmon-based molecular sensors
- Ultrahigh free-electron Kerr nonlinearity in all-semiconductor waveguides for all-optical nonlinear modulation of mid-infrared light
- Gate-Tunable Optical Extinction of Graphene Nanoribbon Nanoclusters
- Nonreciprocal plasmons in one-dimensional carbon nanostructures
- Preservation of dynamics in coupled cavity system using second order nonlinearity
- Nonlocal and nonlinear plasmonics in atomically thin heterostructures