Recent optical measurements in bilayer graphene have reported a strong dependence on phonon peak intensity, as well on the asymmetric Fano lineshape, on the charge doping and on the bandgap, tuned by gate voltage. In this paper, we show how these features can be analyzed and predicted on a microscopic quantitative level using the charge-phonon theory applied to the specific case of graphene systems. We present a phase diagram where the infrared activity of both the symmetric (E-g) and antisymmetric (E-u) phonon modes is evaluated as a function of doping and gap. We also show how a switching mechanism between these two modes can occur, governing the dominance of the optical response of one mode with respect to the other. The theory presented here can be also generalized to bulk graphite and to multilayer systems with different stacking orders, providing a useful roadmap for the characterization of graphenic systems by optical infrared means.

Infrared phonon activity and Fano interference in multilayer graphenes

E. Cappelluti;L. Benfatto;
2014

Abstract

Recent optical measurements in bilayer graphene have reported a strong dependence on phonon peak intensity, as well on the asymmetric Fano lineshape, on the charge doping and on the bandgap, tuned by gate voltage. In this paper, we show how these features can be analyzed and predicted on a microscopic quantitative level using the charge-phonon theory applied to the specific case of graphene systems. We present a phase diagram where the infrared activity of both the symmetric (E-g) and antisymmetric (E-u) phonon modes is evaluated as a function of doping and gap. We also show how a switching mechanism between these two modes can occur, governing the dominance of the optical response of one mode with respect to the other. The theory presented here can be also generalized to bulk graphite and to multilayer systems with different stacking orders, providing a useful roadmap for the characterization of graphenic systems by optical infrared means.
2014
Istituto dei Sistemi Complessi - ISC
Inglese
T162
014018
4
http://iopscience.iop.org/article/10.1088/0031-8949/2014/T162/014018/meta;jsessionid=E31AAAC5BE73669F299D2FA1DCF5EBF3.c3.iopscience.cld.iop.org
Sì, ma tipo non specificato
Fano interference
graphene
infrared spectroscopy
phonon modes
Published 19 September 2014. PHOTONICA'13: 4th International School and Conference on Photonics. EC acknowledges support from the European project FP7-PEOPLE-2013-CIG 'LSIE_2D' and Italian National MIUR Prin project 20105ZZTSE, ABK from Swiss National Science Foundation (SNSF), and LB from the Italian MIUR under the project FIRB-HybridNanoDev-RBFR1236VV.
3
info:eu-repo/semantics/article
262
Cappelluti, E.; Benfatto, L.; Kuzmenko, A. B.
01 Contributo su Rivista::01.01 Articolo in rivista
restricted
   Strain, Lattice, Interactions and Entanglement in novel Two-Dimensional materials.
   LSIE_2D
   FP7
   618337
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/300896
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