Novel mid-infrared plasmonic properties of bilayer graphene
arXiv:1310.4693 · doi:10.1103/PhysRevLett.112.116801
Abstract
We study the mid-infrared plasmonic response in Bernal-stacked bilayer graphene. Unlike its monolayer counterpart, bilayer graphene accommodates optically active phonon modes and a resonant interband transition at infrared frequencies. They strongly modifies the plasmonic properties of bilayer graphene, leading to Fano-type resonances, giant plasmonic enhancement of infrared phonon absorption, narrow window of optical transparency, and a new plasmonic mode at higher energy than the classical plasmon.
see also accompanying experiments i.e. http://arxiv.org/abs/1310.4394
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Cited by in corpus (21)
- Graphene Plasmonics for Terahertz to Mid-Infrared Applications
- Polaritons in layered 2D materials
- Electronic properties of graphene-based bilayer systems
- Tunable light-matter interaction and the role of hyperbolicity in graphene-hBN system
- Precision Measurement of the Optical Conductivity of Atomically Thin Crystals via Photonic Spin Hall Effect
- Plasmon modes of graphene nanoribbons with periodic planar arrangements
- Dopant-induced plasmon decay in graphene
- Plasmon properties and hybridization effects in Silicene
- Coulomb interactions and screening effects in few-layer black phosphorus: a tight-binding consideration beyond the long-wavelength limit
- Superluminal plasmons with resonant gain in population inverted bilayer graphene
- Dynamic local strain in graphene generated by surface acoustic waves
- Flat-band plasmons in twisted bilayer transition metal dichalcogenides
- Localized plasmons in bilayer graphene nanodisks
- Graphene plasmon-phonon coupled modes at the exceptional point
- Optical conductivity of ABA stacked graphene trilayer: mid-IR resonance due to band nesting
- Plasmons in realistic graphene/hexagonal boron nitride moiré patterns
- Strong plasmon-phonon splitting and hybridization in 2D materials revealed through a self-energy approach
- Gate-tunable infrared plasmons in electron-doped single-layer antimony
- Collective magnetic excitations in AA- and AB-stacked graphene bilayers
- Quantum plasmons with optical-range frequencies in doped few-layer graphene
- On the plasmon dispersion in biased graphene bilayer