Issue 4, 2020, Issue in Progress

Coulomb decay rates in monolayer doped graphene

Abstract

Excited conduction electrons, conduction holes, and valence holes in monolayer electron-doped graphene exhibit unusual Coulomb decay rates. The deexcitation processes are studied using the screened exchange energy. They might utilize the intraband and interband single-particle excitations, as well as the plasmon modes, depending on the quasiparticle states and the Fermi energies. The low-lying valence holes can decay through the undamped acoustic plasmon, so that they present very fast Coulomb deexcitations, nonmonotonous energy dependence, and anisotropic behavior. However, the low-energy conduction electrons and holes are similar to those in a two-dimensional electron gas. The higher-energy conduction states and the deeper-energy valence ones behave similarly in the available deexcitation channels and have a similar dependence of decay rate on the wave vector.

Graphical abstract: Coulomb decay rates in monolayer doped graphene

Article information

Article type
Paper
Submitted
31 Jul 2019
Accepted
16 Dec 2019
First published
13 Jan 2020
This article is Open Access
Creative Commons BY-NC license

RSC Adv., 2020,10, 2337-2346

Coulomb decay rates in monolayer doped graphene

C. Chiu, Y. Chung, C. Yang, C. Liu and C. Lin, RSC Adv., 2020, 10, 2337 DOI: 10.1039/C9RA05953A

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