Plasmons Driven by Single Electrons in Graphene Nanoislands
arXiv:1303.2088 · doi:10.1515/nanoph-2012-0035
Abstract
Plasmons produce large confinement and enhancement of light that enable applications as varied as cancer therapy and catalysis. Adding to these appealing properties, graphene has emerged as a robust, electrically tunable material exhibiting plasmons that strongly depend on the density of doping charges. Here we show that adding a single electron to a graphene nanoisland consisting of hundreds or thousands of atoms switches on infrared plasmons that were previously absent from the uncharged structure. Remarkably, the addition of each further electron produces a dramatic frequency shift. Plasmons in these islands are shown to be tunable down to near infrared wavelengths. These phenomena are highly sensitive to carbon edges. Specifically, armchair nanotriangles display sharp plasmons that are associated with intense near-field enhancement, as well as absorption cross-sections exceeding the geometrical area occupied by the graphene. In contrast, zigzag triangles do not support these plasmons. Our conclusions rely on realistic quantum-mechanical calculations, which are in ostensible disagreement with classical electromagnetic simulations, thus revealing the quantum nature of the plasmons. This study shows a high sensitivity of graphene nanoislands to elementary charges, therefore emphasizing their great potential for novel nano-optoelectronics applications.
12 pages, 10 figures, Nanophotonics, in press
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- Quantum Effects in the Nonlinear Response of Graphene Plasmons
- Molecular Sensing with Tunable Graphene Plasmons
- How To Identify Plasmons from the Optical Response of Nanostructures
- Plasmon-enhanced nonlinear wave mixing in nanostructured graphene
- Plasmonic eigenmodes in individual and bow-tie graphene nanotriangles
- Optical Properties of Graphene Nanoflakes: Shape Matters
- Plasmonics in Atomically Thin Materials
- Graphene Plasmonics: a Novel Fully Atomistic Approach for Realistic Structures
- Strong plasmon-phonon splitting and hybridization in 2D materials revealed through a self-energy approach
- From single-particle-like to interaction-mediated plasmonic resonances in graphene nanoantennas