We determine from first principles the finite-temperature properties-linewidths, line shifts, and lifetimes-of the key vibrational modes that dominate inelastic losses in graphitic materials. In graphite, the phonon linewidth of the Raman-active E-2g mode is found to decrease with temperature; such anomalous behavior is driven entirely by electron-phonon interactions, and does not appear in the nearly degenerate infrared-active E-1u mode. In graphene, the phonon anharmonic lifetimes and decay channels of the A(1) mode at K dominate over E-2g at Gamma and couple strongly with acoustic phonons, highlighting how ballistic transport in carbon-based interconnects requires careful engineering of phonon decays and thermalization.
Phonon anharmonicities in graphite and graphene / Bonini, Nicola; Lazzeri, Michele; Marzari, Nicola; Mauri, Francesco. - In: PHYSICAL REVIEW LETTERS. - ISSN 0031-9007. - 99:17(2007). [10.1103/PhysRevLett.99.176802]
Phonon anharmonicities in graphite and graphene
Marzari, Nicola;Mauri , Francesco
2007
Abstract
We determine from first principles the finite-temperature properties-linewidths, line shifts, and lifetimes-of the key vibrational modes that dominate inelastic losses in graphitic materials. In graphite, the phonon linewidth of the Raman-active E-2g mode is found to decrease with temperature; such anomalous behavior is driven entirely by electron-phonon interactions, and does not appear in the nearly degenerate infrared-active E-1u mode. In graphene, the phonon anharmonic lifetimes and decay channels of the A(1) mode at K dominate over E-2g at Gamma and couple strongly with acoustic phonons, highlighting how ballistic transport in carbon-based interconnects requires careful engineering of phonon decays and thermalization.I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.