Proximity-enhanced valley Zeeman splitting at the WS$_2$/graphene interface
Paulo E. Faria Junior, Thomas Naimer, Kathleen M. McCreary, Berend T., Jonker, Jonathan J. Finley, Scott A. Crooker, Jaroslav Fabian, Andreas V., Stier

TL;DR
This study investigates how the proximity of graphene influences valley Zeeman splitting in monolayer WS$_2$, revealing band-specific effects and hybridization mechanisms that can be used to engineer spin-valley properties in layered heterostructures.
Contribution
The paper demonstrates that proximity interactions in WS$_2$/graphene heterostructures cause band-dependent modifications of valley Zeeman effects, highlighting the role of wave function hybridization at the orbital level.
Findings
Valley Zeeman effect for A-exciton aligns with dielectric screening expectations.
B-exciton shows marked deviations due to conduction band hybridization.
Conduction band at the Q point mediates interlayer coupling via resonant conditions.
Abstract
The valley Zeeman physics of excitons in monolayer transition metal dichalcogenides provides valuable insight into the spin and orbital degrees of freedom inherent to these materials. Being atomically-thin materials, these degrees of freedom can be influenced by the presence of adjacent layers, due to proximity interactions that arise from wave function overlap across the 2D interface. Here, we report 60 T magnetoreflection spectroscopy of the A- and B- excitons in monolayer WS, systematically encapsulated in monolayer graphene. While the observed variations of the valley Zeeman effect for the A- exciton are qualitatively in accord with expectations from the bandgap reduction and modification of the exciton binding energy due to the graphene-induced dielectric screening, the valley Zeeman effect for the B- exciton behaves markedly different. We investigate prototypical…
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Taxonomy
Topics2D Materials and Applications · Graphene research and applications · Molecular Junctions and Nanostructures
