Coherent Transport of Levitons Through the Kondo Resonance
arXiv:1703.05198 · doi:10.1103/PhysRevB.95.241302
Abstract
We study coherent transport of levitons through a single-level quantum dot system driven by Lorentzian-shaped voltage pulses. We demonstrate the repeated emergence of the Kondo resonance in the dynamical regimes where the Fermi sea is driven by optimal pulses free of particle-hole excitations. The formation of the Kondo resonance significantly enhances the dc transport of levitons.
5 pages, 3 figures
References in corpus (11)
- Minimal excitation states of electrons in one-dimensional wires
- Correlated electron systems periodically driven out of equilibrium: Floquet + DMFT formalism
- Real time decoherence of Landau and Levitov quasi-particles in quantum Hall edge channels
- Evolution of the Kondo Effect in a Quantum Dot Probed by the Shot Noise
- Minimal excitations in the fractional quantum Hall regime
- Elementary Charge Transfer Processes in Mesoscopic Conductors
- Half-levitons -- zero-energy excitations of a driven Fermi sea
- Time-resolved energy dynamics after single electron injection into an interacting helical liquid
- Time-controlled charge injection in a quantum Hall fluid
- Effects of Coulomb interaction on photon-assisted current noises through a quantum dot
- Periodically-driven Kondo impurity in nonequilibrium steady states
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- Spectral properties of interacting helical channels driven by Lorentzian pulses
- Single-electron function at nonzero temperatures
- Minimal alternating current injection into carbon nanotubes