Chirality-induced Dynamic Kohn Anomalies in Graphene

Abstract

We develop a theory for the renormalization of the phonon energy dispersion in graphene due to the combined effects of both Coulomb and electron-phonon (e-ph) interactions. We obtain the renormalized phonon energy spectrum by an exact analytic derivation of the phonon self-energy, finding three distinct Kohn anomalies (KAs) at the phonon wavevector q = ω/v, 2kFω/v for LO phonons and one at q = ω/v for TO phonons. The presence of these new KAs in graphene, in contrast to the usual KA q = 2kF in ordinary metals, originates from the dynamical screening of e-ph interaction (with a concomitant breakdown of the Born-Oppenheimer approximation) and the peculiar chirality of the graphene e-ph coupling.

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