Strong Plasmon-Phonon Splitting and Hybridization in 2D Materials Revealed through a Self-Energy Approach

Mikkel Settnes, J. R. M. Saavedra, Kristian Sommer Thygesen, Antti-Pekka Jauho, F. Javier Garcia de Abajo, N. Asger Mortensen

Research output: Contribution to journalJournal articleResearchpeer-review

290 Downloads (Pure)

Abstract

We reveal new aspects of the interaction between plasmons and phonons in 2D materials that go beyond a mere shift and increase in plasmon width due to coupling to either intrinsic vibrational modes of the material or phonons in a supporting substrate. More precisely, we predict strong plasmon splitting due to this coupling, resulting in a characteristic avoided crossing scheme. We base our results on a computationally efficient approach consisting in including many-body interactions through the electron self-energy. We specify this formalism for a description of plasmons based upon a tight-binding electron Hamiltonian combined with the random-phase approximation. This approach is valid provided vertex corrections can be neglected, as is the case in conventional plasmon-supporting metals and Dirac-Fermion systems. We illustrate our method by evaluating plasmonic spectra of doped graphene nanotriangles with varied size, where we predict remarkable peak splittings and other radical modifications in the spectra due to plasmon interactions with intrinsic optical phonons. Our method is equally applicable to other 2D materials and provides a simple approach for investigating coupling of plasmons to phonons, excitons, and other excitations in hybrid thin nanostructures.
Original languageEnglish
JournalA C S Photonics
Volume4
Issue number11
Pages (from-to)2908-2915
Number of pages8
ISSN2330-4022
DOIs
Publication statusPublished - 2017

Keywords

  • Graphene plasmons
  • Quantum plasmonics
  • Nanophotonics
  • 2D materials
  • Molecular plasmonics
  • Many-body interactions

Fingerprint

Dive into the research topics of 'Strong Plasmon-Phonon Splitting and Hybridization in 2D Materials Revealed through a Self-Energy Approach'. Together they form a unique fingerprint.

Cite this