High efficiency switching using graphene based electron 'optics'
arXiv:1107.2383 · doi:10.1063/1.3640224
Abstract
The absence of a band-gap in graphene limits the gate modulation of its electron conductivity, both in regular graphene as well as in PN junctions, where electrostatic barriers prove transparent to Klein tunneling. We demonstrate a novel way to directly open a gate-tunable transmission gap across graphene PN junctions (GPNJ) by introducing an additional barrier in the middle that replaces Klein tunneling with regular tunneling, allowing us to electrostatically modulate the current by several orders of magnitude. The gap arises by angularly sorting electrons by their longitudinal energy and filtering out the hottest, normally incident electrons with the tunnel barrier, and the rest through total internal reflection. Using analytical and atomistic numerical studies of quantum transport, we show that the complete filtering of all incident electrons causes the GPNJ to act as a novel metamaterial with a unique gate-tunable transmission-gap that generates a sharp non-thermal switching of electrons. In fact, the transmission gap gradually diminishes to zero as we electrostatically reduce the voltage gradient across the junction towards the homogeneous doping limit. The resulting gate tunable metal-insulator transition enables the electrons to overcome the classic room temperature switching limit of kTln10/q = 60mV/decade for subthreshold conduction.
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Cited by in corpus (20)
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- Graphene Transistor Based on Tunable Dirac-Fermion-Optics
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- Ultra-sharp lateral junctions in modulation-doped graphene
- Nonlinear transport of ballistic Dirac electrons tunneling through a tunable potential barrier in graphene
- Impact of geometry and non-idealities on electron 'optics' based graphene p-n junction devices
- Atomistic deconstruction of current flow in graphene based hetero-junctions
- Gradient-index electron optics in graphene pn junctions
- Phosphorene pnp junctions as perfect electron waveguides
- A corner reflector of graphene Dirac fermions as a phonon-scattering sensor
- Atomic scale characterization of graphene p-n junctions for electron-optical applications
- A new coupling mechanism between two graphene electron waveguides for ultrafast switching
- Perfect transmission at oblique incidence by trigonal warping in graphene P-N junctions
- Metasurface electron optics in graphene
- Transmission Engineering as a route to Subthermal Switching
- Subthermal switching with nanomechanical relays
- Geometric interference in a high-mobility graphene annulus p-n junction device
- Strong equilibration of Landau levels edge-states at the graphene edge
- Observation of angle-dependent transmission of Dirac electrons in graphene hetero junctions