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Updated: Jul 11, 2026

Carrier Lifetime Measurements in Semiconductors through the Microwave Photoconductivity Decay Method
Published on: April 18, 2019
Velocity renormalization and carrier lifetime in graphene from the electron-phonon interaction
Cheol-Hwan Park1, Feliciano Giustino, Marvin L Cohen
1Department of Physics, University of California at Berkeley, Berkeley, CA 94720, USA. cheolwhan@civet.berkeley.edu
Abstract:
We present a first-principles investigation of the phonon-induced electron self-energy in graphene. The energy dependence of the self-energy reflects the peculiar linear band structure of graphene and deviates substantially from the usual metallic behavior. The effective band velocity of the Dirac fermions is found to be reduced by 4%-8%, depending on doping, by the interaction with lattice vibrations. Our results are consistent with the observed linear dependence of the electronic linewidth on the binding energy in photoemission spectra.
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