English

Nonequilibrium Zeeman-splitting in quantum transport through nanoscale junctions

Strongly Correlated Electrons 2015-03-18 v2 Mesoscale and Nanoscale Physics

Abstract

We calculate the nonequilibrium differential conductance G(V)G(V) through a quantum dot as function of bias voltage VV and applied magnetic field HH. We use a Keldysh conserving approximation for weakly correlated and the scattering states numerical renormalization group for the intermediate and strongly correlated regime out of equilibrium. In the weakly correlated regime, the Zeeman splitting observable in G(V)G(V) strongly depends on the asymmetry of the coupling to the two leads, as well as on particle-hole asymmetry of the quantum dot. In contrast, in the strongly correlated regime, where Kondo-correlations dominate, the position ΔK\Delta_K of the Zeeman-split zero-bias anomaly is independent of such asymmetries and always found to be of the order of the Zeeman energy Δ0\Delta_0. We find a crossover from the purely spin-fluctuation driven Kondo regime at small magnetic fields with ΔK<Δ0\Delta_K<\Delta_0 to a regime at large fields where the contribution of charge fluctuations induces larger splittings with ΔK>Δ0\Delta_K>\Delta_0 as it was observed in recent experiments.

Keywords

Cite

@article{arxiv.1102.0159,
  title  = {Nonequilibrium Zeeman-splitting in quantum transport through nanoscale junctions},
  author = {Sebastian Schmitt and Frithjof B. Anders},
  journal= {arXiv preprint arXiv:1102.0159},
  year   = {2015}
}

Comments

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R2 v1 2026-06-21T17:19:57.481Z