Microscopic theory for the light-induced anomalous Hall effect in graphene
Abstract
We employ a quantum Liouville equation with relaxation to model the recently observed anomalous Hall effect in graphene irradiated by an ultrafast pulse of circularly polarized light. In the weak-field regime, we demonstrate that the Hall effect originates from an asymmetric population of photocarriers in the Dirac bands. By contrast, in the strong-field regime, the system is driven into a non-equilibrium steady state that is well-described by topologically non-trivial Floquet-Bloch bands. Here, the anomalous Hall current originates from the combination of a population imbalance in these dressed bands together with a smaller anomalous velocity contribution arising from their Berry curvature. This robust and general finding enables the simulation of electrical transport from light-induced Floquet-Bloch bands in an experimentally relevant parameter regime and creates a pathway to designing ultrafast quantum devices with Floquet-engineered transport properties.
Keywords
Cite
@article{arxiv.1905.04508,
title = {Microscopic theory for the light-induced anomalous Hall effect in graphene},
author = {S. A. Sato and J. W. McIver and M. Nuske and P. Tang and G. Jotzu and B. Schulte and H. Hübener and U. De Giovannini and L. Mathey and M. A. Sentef and A. Cavalleri and A. Rubio},
journal= {arXiv preprint arXiv:1905.04508},
year = {2019}
}