Electron spin relaxation in graphene with random Rashba field: Comparison of D'yakonov-Perel' and Elliott-Yafet--like mechanisms
P. Zhang, M. W. Wu

TL;DR
This paper investigates the dominant spin relaxation mechanisms in graphene with random Rashba fields, comparing D'yakonov-Perel' and Elliott-Yafet-like processes, and finds D'yakonov-Perel' as the primary mechanism consistent with experimental data.
Contribution
The study introduces a kinetic spin Bloch equation approach to distinguish spin relaxation mechanisms in graphene influenced by random Rashba fields, highlighting the dominance of D'yakonov-Perel' mechanism.
Findings
D'yakonov-Perel' mechanism dominates spin relaxation in graphene.
Model reproduces nonmonotonic spin relaxation time dependence on diffusion coefficient.
Both mechanisms are sensitive to the correlation length of the Rashba field.
Abstract
Aiming to understand the main spin relaxation mechanism in graphene, we investigate the spin relaxation with random Rashba field induced by both adatoms and substrate, by means of the kinetic spin Bloch equation approach. The charged adatoms on one hand enhance the Rashba spin-orbit coupling locally and on the other hand serve as Coulomb potential scatterers. Both effects contribute to spin relaxation limited by the D'yakonov-Perel' mechanism. In addition, the random Rashba field also causes spin relaxation by spin-flip scattering, manifesting itself as an Elliott-Yafet--like mechanism. Both mechanisms are sensitive to the correlation length of the random Rashba field, which may be affected by the environmental parameters such as electron density and temperature. By fitting and comparing the experiments from the Groningen group [J\'ozsa {\it et al.}, Phys. Rev. B {\bf 80}, 241403(R)…
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