Publication | Open Access
Proximity Effects Induced in Graphene by Magnetic Insulators: First-Principles Calculations on Spin Filtering and Exchange-Splitting Gaps
335
Citations
51
References
2013
Year
EngineeringSpin-charge ConversionSpin SystemsSpin TexturesMagnetic ResonanceSpintronic MaterialProximity EffectProximity Effects InducedGraphene NanomeshesMagnetismMagnetic InsulatorsQuantum MaterialsMagnetic Topological InsulatorMaterials ScienceSpin-orbit EffectsSpin-charge-orbit ConversionPhysicsSpin FilteringNearby Magnetic InsulatorSpintronicsGraphene π OrbitalsNatural SciencesGraphene FiberApplied PhysicsCondensed Matter PhysicsGrapheneGraphene Nanoribbon
We report on first-principles calculations of spin-dependent properties in graphene induced by its interaction with a nearby magnetic insulator (europium oxide, EuO). The magnetic proximity effect results in spin polarization of graphene π orbitals by up to 24%, together with a large exchange-splitting band gap of about 36 meV. The position of the Dirac cone is further shown to depend strongly on the graphene-EuO interlayer. These findings point toward the possible engineering of spin gating by the proximity effect at a relatively high temperature, which stands as a hallmark for future all-spin information processing technologies.
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