Physical Review B · 2009 · 1.4K citations · 18 references
EngineeringDirac ConeGraphene RibbonPhotovoltaicsGraphene NanomeshesElectronic DevicesOptical PropertiesNanoelectronicsNanophotonicsElectrical EngineeringPhysicsIntense LightsGraphene Quantum DotPhotovoltaic Hall EffectGraphene FiberApplied PhysicsGrapheneGraphene NanoribbonOptoelectronics
Response of electronic systems in intense lights (ac electric fields) to dc source-drain fields is formulated with the Floquet method. We have then applied the formalism to graphene, for which we show that a nonlinear effect of a circularly polarized light can open a gap in the Dirac cone, which is predicted to lead to a photoinduced dc Hall current. This is numerically confirmed for a graphene ribbon attached to electrodes with the Keldysh Green's function.
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Electric Field Effect in Atomically Thin Carbon Films
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Two-dimensional atomic crystals
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Quantized Hall Conductance in a Two-Dimensional Periodic Potential
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