Magnetic field induced mixed-level Kondo effect in two-level systems
arXiv:1607.03968 · doi:10.1103/PhysRevB.94.155130
Abstract
We consider a two-orbital impurity system with intra and inter-level Coulomb repulsion that is coupled to a single conduction channel. This situation can generically occur in multilevel quantum dots or in systems of coupled quantum dots. For finite energy-spacing between spin-degenerate orbitals, an in-plane magnetic field drives the system from a local singlet ground state to a "mixed-level" Kondo regime, where the Zeeman-split levels are degenerate for opposite spin states. We use the numerical renormalization group approach to fully characterize this mixed level Kondo state and discuss its properties in terms of the applied Zeeman field, temperature and system parameters. Under suitable conditions, the total spectral function is shown to develop a Fermi level resonance, so that the linear conductance of the system peaks at a finite Zeeman field while it decreases as function of temperature. These features, as well as the local moment and entropy contribution of the impurity system are commensurate with Kondo physics, which can be studied in suitably tuned quantum dot systems.
A new section II discusses the low-energy effective model. Figure 1 has been replaced by a new version
References in corpus (12)
- The numerical renormalization group method for quantum impurity systems
- Orbital Kondo effect in carbon nanotubes
- Observation of the SU(4) Kondo state in a double quantum dot
- Multi-impurity Anderson model for quantum dots coupled in parallel
- Kondo decoherence: finding the right spin model for iron impurities in gold and silver
- Correlated electron tunneling through two separate quantum dot systems with strong capacitive interdot coupling
- Correlated electron physics in multilevel quantum dots: phase transitions, transport, and experiment
- Singlet-triplet transition in a lateral quantum dot
- Conductance via Multi orbital Kondo Effect in Single Quantum Dot
- Magnetic-Field-Induced Crossover to a Nonuniversal Regime in a Kondo Dot
- Spin-orbit interaction and asymmetry effects on Kondo ridges at finite magnetic field
- Capacitive interactions and Kondo effect tuning in double quantum impurity systems