Plasmonic eigenmodes in individual and bow-tie graphene nanotriangles
arXiv:1410.0537 · doi:10.1038/srep09535
Abstract
Serving as a new two-dimensional plasmonic material, graphene has stimulated an intensive study of its optical properties which benefit from the unique electronic band structure of the underlying honeycomb lattice of carbon atoms. In classical electrodynamics, nanostructured graphene is commonly modeled by the computationally demanding problem of a three-dimensional conducting film of atomic-scale thickness. Here, we propose an efficient alternative two-dimensional electrostatic approach where all the calculation procedures are restricted to the plane of the graphene sheet. To explore possible quantum effects, we perform tight-binding calculations, adopting a random-phase approximation. We investigate the multiple plasmon modes in triangles of graphene, treating the optical response classically as well as quantum mechanically in the case of both armchair and zigzag edge termination of the underlying atomic lattice. Compared to the classical plasmonic spectrum which is "blind" to the edge termination, we find that the quantum plasmon frequencies exhibit blueshifts in the case of armchair edge termination, while redshifts are found for zigzag edges. Furthermore, we find spectral features in the zigzag case which are associated with electronic edge states not present for armchair termination. Merging pairs of such triangles into dimers, the plasmon hybridization leads to energy splitting in accordance with plasmon-hybridization theory, with a lower energy for the antisymmetric modes and a smaller splitting for modes with less confinement to the gap region. The hybridization appears strongest in classical calculations while the splitting is lower for armchair edges and even more reduced for zigzag edges. Our various results illustrate a surprising phenomenon: Even 20 nm large graphene structures clearly exhibit quantum plasmonic features due to atomic-scale details in the edge termination.
27 pages including 7 figures. Supplementary information available upon request to authors
References in corpus (18)
- The electronic properties of graphene
- Dyadic Green's Functions and Guided Surface Waves for a Surface Conductivity Model of Graphene
- Dielectric function, screening, and plasmons in 2D graphene
- Graphene Plasmonics for Terahertz to Mid-Infrared Applications
- Graphene Plasmonics: Challenges and Opportunities
- Dynamical polarization of graphene at finite doping
- Mid-infrared plasmons in scaled graphene nanostructures
- Space-time dispersion of graphene conductivity
- Graphene Antidot Lattices - Designed Defects and Spin Qubits
- A comparison of graphene, superconductors and metals as conductors for metamaterials and plasmonics
- A Primer on Surface Plasmon-Polaritons in Graphene
- Graphene for terahertz applications
- Nonlocal Response of Metallic Nanospheres Probed by Light, Electrons, and Atoms
- Bends and splitters in graphene nanoribbon waveguides
- Experimental observation of plasmons in a graphene monolayer resting on a two-dimensional subwavelength silicon grating
- Electrical Control of Optical Emitter Relaxation Pathways enabled by Graphene
- Classical and Quantum Plasmonics in Graphene Nanodisks: the Role of Edge States
- Quantum Junction Plasmons in Graphene Dimers
Cited by in corpus (4)
- Hybridized Plasmons in 2D Nanoslits: From Graphene to Anisotropic 2D Materials
- Strong plasmon-phonon splitting and hybridization in 2D materials revealed through a self-energy approach
- Plasmons in Two-Dimensional Topological Insulators
- From single-particle-like to interaction-mediated plasmonic resonances in graphene nanoantennas