Orbital magnetic moments in insulating Dirac systems: Impact on magnetotransport in graphene van der Waals heterostructures
Marko M. Gruji\'c, Milan \v{Z}. Tadi\'c, Fran\c{c}ois M. Peeters

TL;DR
This paper explores how orbital magnetic moments in insulating Dirac systems influence magnetotransport in graphene heterostructures, revealing spin-dependent effects and Zeeman-like phenomena observable in experiments.
Contribution
It demonstrates the impact of orbital magnetic moments on transport properties in graphene barriers with enhanced spin-orbit coupling, highlighting their experimental accessibility.
Findings
Orbital moments cause spin-dependent transmission and conductance.
Zeeman-like effects emerge without explicit Zeeman terms.
A quasiclassical model explains observed phenomena.
Abstract
In honeycomb Dirac systems with broken inversion symmetry, orbital magnetic moments coupled to the valley degree of freedom arise due to the topology of the band structure, leading to valley-selective optical dichroism. On the other hand, in Dirac systems with prominent spin-orbit coupling, similar orbital magnetic moments emerge as well. These moments are coupled to spin, but otherwise have the same functional form as the moments stemming from spatial inversion breaking. After reviewing the basic properties of these moments, which are relevant for a whole set of newly discovered materials, such as silicene and germanene, we study the particular impact that these moments have on graphene nanoengineered barriers with artificially enhanced spin-orbit coupling. We examine transmission properties of such barriers in the presence of a magnetic field. The orbital moments are found to manifest…
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