Exciton Condensation and Perfect Coulomb Drag
arXiv:1203.3208 · doi:10.1038/nature11302
Abstract
Coulomb drag is a process whereby the repulsive interactions between electrons in spatially separated conductors enable a current flowing in one of the conductors to induce a voltage drop in the other. If the second conductor is part of a closed circuit, a net current will flow in that circuit. The drag current is typically much smaller than the drive current owing to the heavy screening of the Coulomb interaction. There are, however, rare situations in which strong electronic correlations exist between the two conductors. For example, bilayer two-dimensional electron systems can support an exciton condensate consisting of electrons in one layer tightly bound to holes in the other. One thus expects "perfect" drag; a transport current of electrons driven through one layer is accompanied by an equal one of holes in the other. (The electrical currents are therefore opposite in sign.) Here we demonstrate just this effect, taking care to ensure that the electron-hole pairs dominate the transport and that tunneling of charge between the layers is negligible.
12 pages, 4 figures
References in corpus (5)
- Coherence Length of Cold Exciton Gases in Coupled Quantum Wells
- Critical tunneling currents in the regime of bilayer excitons
- Exciton condensate at a total filling factor of 1 in Corbino 2D electron bilayers
- Dominant parameters for the critical tunneling current in bilayer exciton condensates
- Breakdown of counterflow superfluidity in a disordered quantum Hall bilayer
Cited by in corpus (31)
- Evidence of high-temperature exciton condensation in 2D atomic double layers
- Spatially-indirect Exciton Condensate Phases in Double Bilayer Graphene
- AA-stacked bilayer graphene in an applied electric field: Tunable antiferromagnetism and coexisting exciton order parameter
- Evidence of ideal excitonic insulator in bulk MoS2 under pressure
- Anomalous Quantum Oscillations of Interacting Electron-hole Gases in Inverted Type-II InAs/GaSb Quantum Wells
- Coulomb drag and counterflow Seebeck coefficient in bilayer-graphene double layers
- PT-symmetric spectral singularity and negative frequency resonance
- Roton-maxon spectrum and instability for weakly interacting dipolar excitons in a semiconductor layer
- Potential Coexistence of Exciton and Fermion Pair Condensations
- Excitonic condensation in spatially separated one-dimensional systems
- Fluctuation and Commensurability Effect of Exciton Density Wave
- Ultrafast charge carrier and exciton dynamics in an excitonic insulator probed by time-resolved photoemission spectroscopy
- A complete laboratory for transport studies of electron-hole interactions in GaAs/AlGaAs systems
- Resistive signature of excitonic coupling in an electron-hole double layer with a middle barrier
- Photoemission spectra of massless Dirac fermions on the verge of exciton condensation
- Nonlocal Andreev reflection, fractional charge and current-phase relation in topological bilayer exciton condensate junctions
- Holographic D3-probe-D5 Model of a Double Layer Dirac Semimetal
- Diamagnetism and suppression of screening as hallmarks of electron-hole pairing in a double layer graphene system
- Coulomb drag in topological materials
- Superfluidity of a rarefied gas of electron-hole pairs in a bilayer system
- Quantum Hall effects of exciton condensate in topological flat bands
- Interplay between the coherent and incoherent transport in quantum Hall bilayers
- Exciton Quasi-Condensation in One Dimensional Systems
- Quantum Oscillation in Excitonic Insulating Electron-Hole Bilayer
- Stationary waves in a superfluid gas of electron-hole pairs in bilayers
- Accumulation of spin-polarized states of charge carriers and a spintronic battery
- Hall Coulomb drag induced by electron-electron skew scattering
- Strong enhancement of third harmonic generation in a double layer graphene system caused by electron-hole pairing
- Realization of independent contacts in barrier-separated InAs/GaSb quantum wells
- Near-field heat transfer and drag resistance in bilayers of composite fermions
- Holographic model of exciton condensation in double monolayer Dirac semimetal